WO2010027423A2 - Compositions of pd-1 antagonists and methods of use - Google Patents

Compositions of pd-1 antagonists and methods of use Download PDF

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Publication number
WO2010027423A2
WO2010027423A2 PCT/US2009/004825 US2009004825W WO2010027423A2 WO 2010027423 A2 WO2010027423 A2 WO 2010027423A2 US 2009004825 W US2009004825 W US 2009004825W WO 2010027423 A2 WO2010027423 A2 WO 2010027423A2
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polypeptide
cancer
amino acids
compound
contiguous amino
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WO2010027423A3 (en
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Solomon Langerman
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Amplimmune Inc
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Amplimmune Inc
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Priority to JP2011524986A priority Critical patent/JP5798919B2/ja
Priority to SI200931266T priority patent/SI2350129T1/sl
Priority to NZ591130A priority patent/NZ591130A/xx
Priority to PL09811805T priority patent/PL2350129T3/pl
Priority to DK09811805.2T priority patent/DK2350129T3/en
Priority to AU2009288730A priority patent/AU2009288730B2/en
Priority to HRP20150933TT priority patent/HRP20150933T1/hr
Priority to MX2011002252A priority patent/MX2011002252A/es
Priority to UAA201103619A priority patent/UA106050C2/uk
Priority to EP09811805.2A priority patent/EP2350129B1/en
Priority to ES09811805.2T priority patent/ES2545609T3/es
Application filed by Amplimmune Inc filed Critical Amplimmune Inc
Priority to BRPI0917320A priority patent/BRPI0917320A2/pt
Priority to EA201170373A priority patent/EA023148B1/ru
Priority to CN2009801422563A priority patent/CN102203132A/zh
Priority to RS20150547A priority patent/RS54233B1/sr
Priority to CA2734908A priority patent/CA2734908A1/en
Publication of WO2010027423A2 publication Critical patent/WO2010027423A2/en
Publication of WO2010027423A3 publication Critical patent/WO2010027423A3/en
Priority to ZA2011/01120A priority patent/ZA201101120B/en
Priority to IL211298A priority patent/IL211298A0/en
Anticipated expiration legal-status Critical
Priority to MA33714A priority patent/MA32646B1/fr
Priority to SM201500212T priority patent/SMT201500212B/xx
Ceased legal-status Critical Current

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    • AHUMAN NECESSITIES
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    • A61K38/00Medicinal preparations containing peptides
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    • A61K38/17Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • A61K38/177Receptors; Cell surface antigens; Cell surface determinants
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    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K31/00Medicinal preparations containing organic active ingredients
    • A61K31/66Phosphorus compounds
    • A61K31/675Phosphorus compounds having nitrogen as a ring hetero atom, e.g. pyridoxal phosphate
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K45/00Medicinal preparations containing active ingredients not provided for in groups A61K31/00 - A61K41/00
    • A61K45/06Mixtures of active ingredients without chemical characterisation, e.g. antiphlogistics and cardiaca
    • AHUMAN NECESSITIES
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    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • AHUMAN NECESSITIES
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    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
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    • A61P31/04Antibacterial agents
    • AHUMAN NECESSITIES
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    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • AHUMAN NECESSITIES
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    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • A61P31/14Antivirals for RNA viruses
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • A61P31/14Antivirals for RNA viruses
    • A61P31/16Antivirals for RNA viruses for influenza or rhinoviruses
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • A61P31/14Antivirals for RNA viruses
    • A61P31/18Antivirals for RNA viruses for HIV
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • A61P31/20Antivirals for DNA viruses
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/12Antivirals
    • A61P31/20Antivirals for DNA viruses
    • A61P31/22Antivirals for DNA viruses for herpes viruses
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P33/00Antiparasitic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P33/00Antiparasitic agents
    • A61P33/02Antiprotozoals, e.g. for leishmaniasis, trichomoniasis, toxoplasmosis
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P33/00Antiparasitic agents
    • A61P33/02Antiprotozoals, e.g. for leishmaniasis, trichomoniasis, toxoplasmosis
    • A61P33/06Antimalarials
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • A61P35/02Antineoplastic agents specific for leukemia
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • A61P37/04Immunostimulants
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K14/00Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • C07K14/435Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • C07K14/705Receptors; Cell surface antigens; Cell surface determinants
    • C07K14/70503Immunoglobulin superfamily
    • C07K14/70532B7 molecules, e.g. CD80, CD86
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K2319/00Fusion polypeptide
    • C07K2319/33Fusion polypeptide fusions for targeting to specific cell types, e.g. tissue specific targeting, targeting of a bacterial subspecies
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A50/00TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE in human health protection, e.g. against extreme weather
    • Y02A50/30Against vector-borne diseases, e.g. mosquito-borne, fly-borne, tick-borne or waterborne diseases whose impact is exacerbated by climate change

Definitions

  • compositions of PD-1 Antagonists Compositions of PD-1 Antagonists and Methods of Use
  • the present invention relates to therapeutic compositions containing a compound that prevents inhibitory signal transduction on T cells in combination with potentiating agents and the use of said components together or separately for the induction of T cell responses valuable in disease therapy.
  • T lymphocytes to disease states, such as infection and chronic diseases like cancer, is complicated and involves intercellular interactions and the production of soluble mediators (called cytokines or lymphokines).
  • cytokines soluble mediators
  • Activation of T cells normally depends on an antigen-specific signal following contact of the T cell receptor (TCR) with an antigenic peptide presented via the major histocompatibility complex (MHC) while the extent of this reaction is controlled by positive and negative antigen-independent signals eminating from a variety of co-stimulatory molecules.
  • TCR T cell receptor
  • MHC major histocompatibility complex
  • the latter are commonly members of the CD28/B7 family.
  • PD-1 is a member of the CD28 family of receptors that delivers a negative immune response when induced on T cells.
  • Contact between PD-1 and one of its ligands (B7-H1 or B7-DC) induces an inhibitory response that decreases T cell multiplication and/or the strength and/or duration of a T cell response.
  • the T lymphocyte response is regulated by various factors, including cell surface molecules that act as receptors, where the latter include both the TCR complex as well as other surface molecules.
  • an antigen specific T cell response is mediated by two signals: 1) engagement of the TCR with antigenic peptide presented in the context of HC (signal 1), and 2) a second antigen-independent signal delivered by contact between different receptor/ligand pairs (signal 2).
  • This "second signal” is critical in determining the type of T cell response (activation vs tolerance) as well as the strength and duration of that response, and is regulated by both positive and negative signals from costimulatory molecules, such as the B7 family of proteins.
  • T cell costimulatory pathway is B7- CD28, in which B7-1 (CD80) and B7-2 (CD86) each can engage the stimulatory CD28 receptor and the inhibitory CTLA-4 (CD152) receptor.
  • B7-1 CD80
  • B7-2 CD86
  • CD28 ligation increases antigen-specific proliferation of T cells, enhances production of cytokines, stimulates differentiation and effector function, and promotes survival of T cells (Lenshow, et al., Annu. Rev. Immunol., 14:233-258 (1996); Chambers and Allison, Curr. Opin. Immunol., 9:396-404 (1997); and Rathmell and Thompson, Annu. Rev. Immunol., 17:781-828 (1999)).
  • B7-H5 (described in WO 2006/012232) is a newly discovered member of the B7 family.
  • B7 family molecules have a membrane proximal IgC (constant) domain and a membrane distal IgV (variable) domain.
  • the CD28-like family of receptors for these ligands share a common extracellular IgV-like domain. Interactions of receptor-ligand pairs are mediated predominantly through residues in the IgV domains of the ligands and receptors (Schwartz, et al., Nature Immunol., 3:427-434 (2002)).
  • IgV domains are described as having two sheets that each contains a layer of ⁇ -strands (Williams and Barclay, Annu. Rev. Immunol., 6:381-405 (1988)).
  • the front and back sheets of CTLA-4 contain strands A'GFC'C and ABEDC, respectively (Ostrov, et al., Science, 290:816-819 (2000)), whereas the front and back sheets of the B7 IgV domains are composed of strands AGFCCC" and BED, respectively (Schwartz, et al., Nature, 410:604-608 (2001); Stamper, et al., Nature, 410:608-611 (2001); and Ikemizu, et al., Immunity, 12:51-60 (2000)).
  • B7-DC also called PD-L2 or CD273
  • B7 family and has an amino acid sequence that is about 34% identical to B7-
  • B7-H1 and B7-DC transcripts are found in various tissues (Dong, et al., Nature Med., 5:1365-1369 (1999); Latchman, et al., Nature Immunol., 2:261-268 (2001); and Tamura, Blood, 97:1809-1816
  • B7-H1 is broadly expressed on a wide variety of tissue and cell types, while B7-DC expression is predominantly restricted to activated dendritic cells (DC) and macrophages.
  • B7-H1 and B7-DC bind to PD-1 (Freeman, et al., J. Exp. Med., 192:1027-1034 (2000)), a distant member of the CD28 family with an immunoreceptor tyrosine-based inhibitory motif (ITIM) in its cytoplasmic domain (Ishida, et al., EMBO J., 11 :3887-3895 (1992)).
  • ITIM immunoreceptor tyrosine-based inhibitory motif
  • PD-1 a member of the CD28 family of receptors, is inducibly expressed on activated T cells, B cells, natural killer (NK) cells, monocytes, DC, and macrophages (Keir, et al Curr. Opin. Immunol. 19:309-314 (2007)).
  • the primary result of PD-1 ligation by its ligands is to inhibit signaling downstream of the T cell Receptor (TCR). Therefore, signal transduction via PD-1 usually provides a suppressive or inhibitory signal to the T cell that results in decreased T cell proliferation or other reduction in T cell activation.
  • B7-H1 is the predominant PD-1 ligand causing inhibitory signal transduction in T cells.
  • the present invention solves the problem of undesired T cell inhibition by providing agents that bind to PD-1 and thus prevent inhibitory signal transduction, or else bind to ligands of PD-1 such as B7-H1 , thereby preventing the ligand from binding to PD-1 to deliver an inhibitory signal. In either case, T cell responses, such as T cell proliferation or activation, are stimulated.
  • B7-H1 is the predominant PD-1 ligand, likely due to its broader distribution and higher expression levels. PD-1 inhibition occurs only when PD-1 and TCR are ligated in close proximity to each other, in the context of the immune synapse. PD-1 and its ligands have been the topic of several review articles.
  • B7-H1 is also over expressed in many cancers (including breast cancer, colon cancer, esophageal cancer, gastric cancer, glioma, leukemia, lung cancer, melanoma, multiple myeloma, ovarian cancer, pancreatic cancer, renal cell carcinoma, and urothelial cancer), and has been linked to poor prognosis.
  • B7-H1 is expressed by many tumor cell lines, especially following stimulation with interferon gamma (IFN- ⁇ ), and is also upregulated on tumor infiltrating myeloid derived suppressor cells (MDSC).
  • IFN- ⁇ interferon gamma
  • MDSC tumor infiltrating myeloid derived suppressor cells
  • PD-1 is up-regulated on tumor specific CD8 T cells and is associated with functional impairment, anergy, exhaustion, and apoptosis.
  • PD-1 upregulation has also been associated with dysfunctional and/or suppressive phenotypes on additional cell types, such as regulatory T cells (T
  • the present invention makes use of such molecular functions by providing treatment regimens for treating diseases through increased T cell activity, especially cancer and infectious diseases.
  • the present invention relates to a method of increasing T cell responses, for example, to an antigen, in a mammal in need of such increase, comprising administering to said mammal a compound that reduces inhibitory signal transduction in immune cells, especially T cells, and a potentiating agent, wherein said treatment regimen is effective to increase the T cell response of said mammal.
  • Compounds useful in the treatment regimen of the invention include those that bind to and block PD-1 receptors on T cells without triggering inhibitory signal transduction, compounds that bind to PD-1 ligands to prevent their binding to PD-1 , compounds that do both and compounds that prevent expression of genes that encode either PD-1 or natural ligands of PD-1. Such compounds are referred to herein as "PD-1 antagonists.”
  • PD-1 antagonists Compounds that bind to natural ligands of PD-1 include PD-1 itself, as well as active fragments of PD-1 , and in the case of the B7-H1 ligand, B7.1 proteins and fragments.
  • Such antagonists include proteins, antibodies, anti-sense molecules and small organics.
  • said T cell response is greater than that produced by either of said PD-1 antagonist or said potentiating agent when either is administered without the other.
  • compounds useful in the methods of the invention are those that bind to T cell surface molecules such as CTLA4 to prevent the inhibitory signals triggered by binding of natural ligands thereof or that bind to said natural ligands.
  • Such antagonists include proteins, antibodies, anti-sense molecules and small organics.
  • compounds useful in treatment regimens and compositions of the present invention include those that bind to PD-1 without triggering, inducing, increasing, facilitating and/or permitting co- ligation of PD-1 with TCR.
  • B7-DC comprises the amino acid sequence of SEQ ID NO: 1 , 2, 3 or 4.
  • Preferred such compounds are those incorporating the soluble domain of B7-DC (i.e., without transmembrane sequence).
  • Suitable fragments of B7-DC polypeptides include fragments containing the IgV and/or IgC domains or fragments containing only the IgV domain, with the latter being a preferred embodiment, with amino acids 20-121 of SEQ ID NO: 1 being a preferred example of an IgV domain.
  • Preferred PD-1 antagonists also include, but are not limited to, active fragments of natural ligands of PD-1 , such as B7-H1 polypeptides (disclosed in U.S. Patent No. 6,803,192, incorporated by reference herein in its entirety), especially soluble portions of these, including variants and homologs of these, as well as fusion proteins incorporating any of the foregoing, that bind to PD-1 without triggering inhibitory signal transduction.
  • active fragments of natural ligands of PD-1 such as B7-H1 polypeptides (disclosed in U.S. Patent No. 6,803,192, incorporated by reference herein in its entirety), especially soluble portions of these, including variants and homologs of these, as well as fusion proteins incorporating any of the foregoing, that bind to PD-1 without triggering inhibitory signal transduction.
  • Preferred compounds of the invention also include, but are not limited to, compounds, including active fragments, variants and homologs, that bind to natural ligands of PD-1 , such as fragments of B7-1 that bind to B7-H1 , as well as fusion proteins incorporating any of the foregoing, that bind to ligands of PD-1 to prevent the latter from binding to PD-1 to trigger inhibitory signal transduction.
  • compositions and methods of use thereof include a combination of a PD-1 receptor antagonist that binds to and blocks the PD-1 receptor, and a separate PD-1 receptor antagonist that binds to and blocks PD-1 receptor ligands.
  • a PD-1 receptor antagonist that binds to and blocks the PD-1 receptor
  • a separate PD-1 receptor antagonist that binds to and blocks PD-1 receptor ligands.
  • Another embodiment of the present invention provides PD-1 receptor antagonists that bind to the PD-1 receptor without triggering inhibitory signal transduction through the PD-1 receptor and also have the ability to bind and antagonize PD-1 receptor ligands, such as B7-H1 , that would otherwise trigger inhibitory signal transduction through the PD-1 receptor.
  • Other contemplated PD-1 receptor antagonists include bi-specific antibodies that can bind both the PD-1 receptor and PD-1 receptor ligands.
  • Preferred embodiments of compounds useful in the present invention also include antibodies that bind to PD-1 or CTLA4, thereby reducing, or abolishing, inhibitory signal transduction mediated by these sources.
  • Preferred compounds for use in the methods of the invention also include, but are not limited to, active fragments of ligands of CTLA4 (such as B7-1 and B7-2) that bind to CTLA4 to reduce subsequent inhibitory signals yet do not bind to CD28 or otherwise inhibit positive signal transduction by CD28.
  • Preferred compounds that prevent inhibitory signal transduction through PD-1 and thus act as PD-1 antagonists include, but are not limited to,
  • B7-DC antagonists especially soluble portions of these, including active fragments of these, variants and homologs of these, as well as fusion proteins incorporating any of the foregoing, that bind to B7-DC.
  • B7-DC polypeptides, fragments or variants thereof are coupled to other polypeptides to form fusion proteins that antagonize the PD-1 receptor by binding to the PD-1 receptor without causing inhibitory signal transduction through PD-1 , thereby reducing, or interfering with, ligand binding to PD-1 , particularly B7-H1 binding, and thereby interfering with inhibitory signal transduction through the PD-1 receptor.
  • fusion proteins are polypeptides comprising the amino acid sequence of SEQ ID NO: 9, 10, 12 or 13, as well as homologs thereof.
  • all or a portion of the extracellular domain (ECD) of B7-DC is part of a fusion protein wherein it is linked to a second polypeptide containing an Fc portion of an immunoglobulin.
  • ECD extracellular domain
  • B7-DC-lg especially where this structure is part of a homodimer wherein two B7-DC-lg molecules are linked to each other, such as by a disulfide linkage.
  • fragments useful in the compounds of the invention consist of at least 10, 15, 25, 50, 75, 100, 150, 200 or more contiguous amino acids of a polypeptide having the desired antagonist activity. Such fragments are also commonly part of fusion proteins for use in the invention.
  • the present invention relates to a method of increasing T cell responses in a mammal in need thereof, comprising administering to said mammal an effective treatment regimen comprising an anti-PD-1 antibody and a potentiating agent, wherein said treatment regimen is effective to increase the T cell response of said mammal.
  • the present invention relates to a method of increasing T cell responses in a mammal in need thereof, comprising administering to said mammal an effective treatment regimen comprising an immunomodulator, and a potentiating agent, wherein said treatment regimen is effective to increase the T cell response of said mammal.
  • immunomodulators include molecules that antagonize other CD28 family receptors (such as CTLA4) that inhibit T cell responses.
  • CTLA4 CD28 family receptors
  • a preferred embodiment uses an anti-CTLA4 antibody and a potentiating agent.
  • Additional immunomodulators include: molecules that agonize CD28 family receptors (such as CD28 and ICOS) that activate T cell responses; molecules that antagonize B7 family ligands (such as B7-H1 , B7-DC, B7-H4) that inhibit T cell responses; and molecules that agonize B7 family ligands (such as B7.1 and B7.2) that activate T cell responses.
  • CD28 family receptors such as CD28 and ICOS
  • B7 family ligands such as B7-H1 , B7-DC, B7-H4
  • agonize B7 family ligands such as B7.1 and B7.2
  • the treatment regimen of a PD-1 antagonist compound and a potentiating agent further comprises at least one additional therapeutic agent.
  • Additional therapeutic agents contemplated include immunomodulatory agents.
  • Exemplary immunomodulating agents for such methods include anti-PD-1 and anti-CTLA4 antibodies.
  • the potentiating agent is selected from cyclophosphamide and analogs of cyclophosphamide, Sunitinib (Sutent), anti- TGF ⁇ and lmatinib (Gleevac), a mitosis inhibitor, such as paclitaxel, an aromatase inhibitor, such as letrozole, an A2a adenosine receptor (A2AR) antagonist, an angiogenesis inhibitor, anthracyclines, oxaliplatin, doxorubicin, TLR4 antagonists, and IL-18 antagonists.
  • Some of these agents reduce the number of Tregs (i.e., regulatory T lymphocytes or T-regs) within the tumor microenvironment.
  • the methods and/or compositions of the invention specifically contemplate use of any suitable adjuvant as part of said method and/or composition.
  • T cells can be contacted with PD-1 receptor antagonist and/or compositions thereof containing a potentiating agent in vitro, ex vivo or in vivo. Contacting T cells using PD-1 receptor antagonists and/or compositions thereof containing a potentiating agent can occur before, during or after activation of the T cell.
  • a molecule that prevents or reduces inhibitory signal transduction through PD-1 and the potentiating agent are administered at different times, such as where the potentiating agent is administered prior to administering the PD-1 antagonist. Such administration may be in conjunction with an additional therapeutic agent.
  • the treatment regimen includes administration of the potentiating agent at least 1 hour, or at least 2 hours, or at least 3 hours, or at least 5 hours, or at least 10 hours, or at least 15 hours, or at least 20 hours, or at least 24 hours, or at least 30 hours or even longer before administering any or all of the PD-1 antagonist, the anti-PD-1 antibody, the anti-CTLA4 antibody, and/or additional therapeutic agents.
  • Administration of the potentiating agent may also occur after administering any or all of the PD-1 antagonist, the anti-PD-1 antibody, the anti-CTLA4 antibody and/or additional therapeutic agents, such as no more than 1 hour, 2 hours, 3 hours, 5 hours, 10 hours, 15 hours, 20 hours, 24 hours, or even up to 30 hours after administering a PD-1 antagonist, or may occur in conjunction with administering the PD-1 antagonist.
  • the increased T cell response achieved as a result of the methods of the invention is sufficient to treat a disease, including one or more of cancer, viral infection, bacterial infection and parasitic infection.
  • a disease including one or more of cancer, viral infection, bacterial infection and parasitic infection.
  • the disease is cancer
  • such cancer is any one or more of bladder, brain, breast, cervical, colo-rectal, esophageal, kidney, liver, lung, nasopharangeal, pancreatic, prostate, skin, stomach, uterine, ovarian, testicular, or hematologic cancer.
  • the present invention includes compositions of the antagonists used in the methods of the invention, in a pharmaceutically acceptable carrier and wherein said PD-1 binding molecule and said potentiating agent are each present in an amount effective to produce increased T cell stimulation.
  • the invention includes medical kits comprising containers holding one or more of the agents for use in the invention together with pharmaceutical carriers for dilution thereof and instructions for administration.
  • both of said PD-1 receptor antagonist and potentiating agent may be present as components in a single container, in a pharmaceutically acceptable carrier, when said components are to be administered at the same time.
  • FIG. 1 shows that B7-DC-lg binds to PD-1.
  • Labeled B7-DC-lg was incubated at various concentrations with a CHO cell line constitutively expressing PD-1 or parent CHO cells that do not express PD-1. Binding was analyzed by flow cytometry. The median fluorescence intensity (MFI) of B7- DC-Ig (y-axis) is shown as a function of the concentration of probe (x-axis).
  • MFI median fluorescence intensity
  • B7-DC-lg binds to CHO.PD-1 cells (solid circle) but not untransfected CHO cells (gray triangle).
  • FIG. 2 shows that B7-DC-lg competes with B7-H1 for binding to PD- 1.
  • Unlabeled B7-DC-lg at various concentrations was first incubated with a CHO cell line constitutively expressing PD-1 before adding labeled B7-H1-lg to the cell mixture.
  • the median fluorescence intensity (MFI) of B7-H1-lg (y- axis) is shown as a function of the concentration of unlabeled B7-DC-lg competitor (x-axis) added.
  • B7-DC-lg As the concentration of unlabeled B7-DC-lg is increased the amount of labeled B7-H1-lg bound to CHO cells decreases, demonstrating that B7-DC-lg competes with B7-H1 for binding to PD-1.
  • Figure 3 shows the results of experiments wherein the combination of cyclophosphamide (CTX or Cytoxan®) and dimeric murine B7-DC-lg resulted in eradication of established CT26 tumors (colon carcinoma) in mice.
  • Graph A shows tumor volume (mm 3 ) versus days post tumor challenge in mice treated with 100 mg/kg of CTX on Day 10 while
  • Graph B shows tumor volume (mm 3 ) versus days post tumor challenge in mice treated with CTX on Day 10 followed a day later by the first B7-DC-lg administration. Each line in each graph represents one mouse.
  • Black arrow stands for B7-DC-lg administration.
  • Graph C shows average tumor volume.
  • Figure 4 shows the results of experiments wherein the combination of CTX and dimeric murine B7-DC-lg eradicated established CT26 tumors (colon carcinoma) in mice and protected against re-challenge with CT26.
  • Mice that were treated with CTX and B7-DC-lg and found to be free of tumor growth on day 44 following tumor inoculation were rechallenged with tumors. The mice were later rechallenged again on on Day 70. None of the mice displayed tumor growth by day 100.
  • FIG. 5 shows CTX and B7-DC-lg treatment resulted in generation of tumor specific memory CTL. Mice eradicated established CT26 subcutenous tumors post CTX and B7-DC-lg treatment were re-challenged with CT26 cells. Seven days later, splenocytes were isolated and pulsed with either ovalbumin, an irrelevant peptide, or AH1 , a CT26 specific peptide. Cells were stained with anti-CD8 antibody first followed by intracellular staining with anti- IFN ⁇ antibody prior to FACS analysis.
  • Figure 6 shows the effects of different doses of B7-DC-lg in combination with CTX on the eradication of established CT26 tumors in mice.
  • mice at age of 9 to 11 weeks were implanted subcutaneously with 1 E05 CT26 cells. On Day 9, mice were injected IP with 100 mg/kg of CTX. Twenty four hours later, on Day 10, mice were treated with 30, 100, or 300 ug of B7-DC-lg followed by 2 injections every week up to total 8 treatments. Tumor growth was measured two times per week.
  • Figure 7 shows the results of experiments wherein the combination of CTX and anti-PD-1 antibody resulted in eradication of established CT26 tumors (colon carcinoma) in mice.
  • Graph A shows tumor volume (mm 3 ) versus days post tumor challenge in untreated mice (i.e., mice treated with vehicle alone)
  • Graph B shows tumor volume (mm 3 ) versus days post tumor challenge in mice treated with anti-PD-1 alone starting on Day 11 at 300 ⁇ g per injection, 3 times per week, up to 12 injections
  • Graph C shows tumor volume (mm 3 ) versus days post tumor challenge in mice treated with CTX on Day 11 and the first anti-PD-1 administration on Day 12 at 300 ⁇ g per injection, 3 times per week, up to 12 injections.
  • Each line in each graph represents one mouse.
  • Black arrow stands for anti-PD-1 administration.
  • Figure 8 shows the results of experiments wherein the combination of CTX and anti-CTLA4 antibody resulted in eradication of established CT26 tumors (colon carcinoma) in mice.
  • Graph A shows tumor volume (mm 3 ) versus days post tumor challenge in mice treated with 100 mg/kg of CTX on Day 11
  • Graph B shows tumor volume (mm 3 ) versus days post tumor challenge in mice treated with CTX on Day 11 and anti-CTLA4 on Day 12 at 100 ⁇ g per injection, 2 times per week, up to 8 injections.
  • Each line in each graph represents one mouse.
  • Black arrow stands for anti-CTLA-4 administration.
  • Figure 9 shows the results of experiments wherein Balb/C mice at age of 9 to 11 weeks of age were implanted with 1 X 10 5 CT26 cells subcutaneously. On Day 9, mice were injected with 100 mg/kg of CTX, IP. Twenty four hours later, on Day 10, mice were treated with 100 ug of B7-DC- Ig. There were 5 groups: naive mice that did not receive any tumor cells, vehicle injected, CTX alone, CTX + B7-DC-lg or B7-DC-lg alone. Two naive mice and 4 mice from other groups were removed from the study on Day 11 (2 days post CTX) and Day 16 (7 days post CTX) for T cell analysis.
  • CTX and B7-DC-lg resulted in increased survival in mice with tail vein injection of a mouse prostate tumor cell line.
  • SP-1 cells were isolated from mouse lungs that were metastasized from TRAMP prostate tumor cell injection.
  • B10.D2 mice were first injected with 3x105 SP-1 cells via tail vein injection. On Day 5, 12 and 19, mice were injected with 50 mg/kg of CTX where was indicated. On Day 6, 13 and 20, mice were administered with 5 mg/kg of B7-DC-lg were it was indicated.
  • NT refers to "not treated”.
  • FIG. 11 Balb/C mice at age of 11-13 weeks were given isolated hepatic metastases using a hemispleen injection technique. The spleens of anesthetized mice were divided into two halves and the halves were clipped.
  • CT26 cells (1 E05) were injected into one hemispleen, and after 30 seconds, that hemispleen was resected and the splenic draining vein was clipped. On
  • mice received 1 injection of CTX at 50 mg/kg, IP. Twenty four hours later, on Day 11 , mice were treated with recombinant Listeria carrying AH 1 peptide, an immunodominant epitope of CT26, at 0.1 x LD 5O (1 x10 7 CFU), then on Day 14 and 17. Mice were also treated with B7-DC-lg on Day 11 and then on Day 18. Mouse overall survival was monitored. DEFINITIONS
  • inhibitory signal transduction is intended to mean any signal transduction having the effect of abolishing, or otherwise reducing, T cell responses against an antigen, whether by reducing T cell proliferation or by any other inhibitory mechanism, whereby the extent or duration of an immunogenic T cell response is decreased.
  • Such inhibitory signal transduction may be due to PD-1 binding to a natural ligand, such as binding of PD-1 by B7-H1 or some other member of this class of ligands, B7-DC, or may be due to binding of CTLA4 to ligands, such as B7-1 or B7-2.
  • compounds of the invention reduce such inhibitory signal transduction and include, but are not limited to, PD-1 antagonists and CTLA4 antagonists.
  • PD-1 antagonist means any molecule that attenuates inhibitory signal transduction mediated by PD-1 , found on the surface of T cells, B cells, natural killer (NK) cells, monocytes, DC, and macrophages.
  • Such an antagonist includes a molecule that disrupts any inhibitory signal generated by a PD-1 molecule on a T cell.
  • a PD-1 antagonist is a molecule that inhibits, reduces, abolishes or otherwise reduces inhibitory signal transduction through the PD-1 receptor signaling pathway. Such decrease may result where: (i) the PD-1 antagonist of the invention binds to a PD-1 receptor without triggering signal transduction, to reduce or block inhibitory signal transduction,; (ii) the PD-1 antagonist binds to a ligand (e.g.
  • a PD-1 antagonist of the invention is a molecule that effects a decrease in PD-1 inhibitory signal transduction, thereby increasing T cell response to one or more antigens.
  • CTLA4 antagonist means a compound that reduces CTLA4-mediated inhibition of T cell reactions.
  • CTLA4 delivers an inhibitory impulse upon binding of B7 ligands, such B7-1 and B7-2.
  • a CTLA4 antagonist is one that dirupts binding of said ligands to CTLA4 on activated T cells.
  • the antagonist is an anti- CTLA4 antibody that binds CTLA4 to prevent ligand binding.
  • active fragment refers to a portion of a natural polypeptide, or a polypeptide with high sequence homology (for example, at least 80%, 85%, 90%, 95%, 98%, or 99% amino acid sequence identity) to a natural polypeptide and that exhibits PD-1 antagonist activity, for example, by binding PD-1 or by binding to a ligand of PD-1.
  • a fragment would consist of the extracellular domain (ECD) of a B7-DC protein that binds to PD-1 , such as SEQ ID NO: 3, preferably amino acids 20 to 221 thereof.
  • an active fragment would be a portion of said polypeptide comprising a binding domain that binds to a natural ligand of PD-1 to prevent stimulation of PD-1 mediated inhibitory signal transduction by said ligand.
  • Active fragments may be identified by their ability to compete with the molecule they are derived from for binding to a natural binding site. For example, active fragments will compete with wild-type B7-DC for binding to PD-1.
  • active fragment means an antigen binding portion of an antibody that is less than an entire immunoglobulin.
  • fragments include Fab and F(ab 2 )' fragments, capable of reacting with and binding to any of the polypeptides disclosed herein as being receptors or ligands.
  • Fab and F(ab') 2 fragments lack the Fc portion of an intact antibody, clear more rapidly from the circulation, and may have less non-specific tissue binding than an intact antibody (Wahl et al., J. Nuc. Med. 24:316-325 (1983)).
  • Fv fragments Hochman, J. et al. (1973) Biochemistry 12:1130-1135; Sharon, J.
  • soluble portion of a PD-1 antagonist means that portion of the full length polypeptide that does not include any part of the transmembrane portion or segment.
  • a soluble portion would include the extracellular portion (with or without the N- terminal signal sequence) but would not include any part of the transmembrane portion (or, at least, not enough to reduce solubility).
  • ECD of human B7-DC is shown as SEQ ID NO: 3 and consists of both the
  • IgV-like and IgC-like domains of the full length molecule i.e., amino acids 20-
  • a "co-stimulatory polypeptide” is a polypeptide that, upon interaction with a cell-surface molecule on T cells, modulates the activity of the T cell.
  • the response of the T cell can be an effector (e.g., CTL or antibody-producing B cell) response, a helper response providing help for one or more effector (e.g., CTL or antibody-producing B cell) responses, or a suppressive response.
  • treatment regimen refers to a treatment of a disease or a method for achieving a desired physiological change, such as increased or decreased response of the immune system to an antigen or immunogen, such as an increase or decrease in the number or activity of one or more cells, or cell types, that are involved in such response, wherein said treatment or method comprises administering to an animal, such as a mammal, especially a human being, a sufficient amount of two or more chemical agents or components of said regimen to effectively treat a disease or to produce said physiological change, wherein said chemical agents or components are administered together, such as part of the same composition, or administered separately and independently at the same time or at different times (i.e., administration of each agent or component is separated by a finite period of time from one or more of the agents agents or components) and where administration of said one or more agents or components achieves a result greater than that of any of said agents or components when administered alone or in isolation.
  • a desired physiological change such as increased or decreased response of the immune system to an antigen or immunogen, such as an increase or
  • isolated is meant to describe a compound of interest (e.g., either a polynucleotide or a polypeptide) that is in an environment different from that in which the compound naturally occurs e.g. separated from its natural milieu such as by concentrating a peptide to a concentration at which it is not found in nature. "Isolated” is meant to include compounds that are within samples that are substantially enriched for the compound of interest and/or in which the compound of interest is partially or substantially purified.
  • polypeptide refers to a chain of amino acids of any length, regardless of modification (e.g., phosphorylation or glycosylation).
  • a polypeptide of the present invention may be a recombinant polypeptide, a natural polypeptide or a synthetic polypeptide, preferably a recombinant polypeptide.
  • a "variant" polypeptide contains at least one amino acid sequence alteration as compared to the amino acid sequence of the corresponding wild-type polypeptide.
  • an “amino acid sequence alteration” can be, for example, a substitution, a deletion, or an insertion of one or more amino acids.
  • the terms "portion,” “segment,” and “fragment,” when used in relation to polypeptides refer to a continuous sequence of residues, such as amino acid residues, which sequence forms a subset of a larger sequence. For example, if a polypeptide were subjected to treatment with any of the common endopeptidases, such as trypsin or chymotrypsin, the oligopeptides resulting from such treatment would represent portions, segments or fragments of the starting polypeptide.
  • a “fragment” of a polypeptide thus refers to any subset of the polypeptide that is a shorter polypeptide of the full length protein. Generally, fragments will be five or more amino acids in length.
  • a derivative, analog or homolog, of a polypeptide (or fragment thereof) of the invention may be (i) one in which one or more of the amino acid residues are substituted with a conserved or non-conserved amino acid residue (preferably a conserved amino acid residue) and such substituted amino acid residue may or may not be one encoded by the genetic code, or (ii) one in which one or more of the amino acid residues includes a substituent group, or (iii) one in which the mature polypeptide is fused with another compound, such as a compound to increase the half-life of the polypeptide (for example, polyethylene glycol), or (iv) one in which the additional amino acids are fused to the mature polypeptide, such as a leader or secretory sequence or a sequence which is employed for purification of the mature polypeptide or a proprotein sequence.
  • Such derivatives and analogs are deemed to be within the scope of those skilled in the art from the teachings herein.
  • valency refers to the number of binding sites available per molecule.
  • the term "percent identity” or “percent identical,” when referring to a sequence, means that a sequence is compared to a claimed or described sequence after alignment of the sequence to be compared (the "Compared Sequence") with the described or claimed sequence (the “Reference Sequence”).
  • the Percent Identity is then determined according to the following formula:
  • C is the number of differences between the Reference Sequence and the Compared Sequence over the length of alignment between the Reference Sequence and the Compared Sequence wherein (i) each base or amino acid in the Reference Sequence that does not have a corresponding aligned base or amino acid in the Compared Sequence and (ii) each gap in the Reference Sequence and (iii) each aligned base or amino acid in the Reference Sequence that is different from an aligned base or amino acid in the Compared Sequence, constitutes a difference; and R is the number of bases or amino acids in the Reference Sequence over the length of the alignment with the Compared Sequence with any gap created in the Reference Sequence also being counted as a base or amino acid.
  • the Compared Sequence has the specified minimum percent identity to the Reference Sequence even though alignments may exist in which the hereinabove calculated Percent Identity is less than the specified Percent Identity.
  • the term "conservative amino acid substitution” means a substitution wherein the substituted amino acid has similar structural or chemical properties, and “non-conservative" amino acid substitutions are those in which the charge, hydrophobicity, or bulk of the substituted amino acid is significantly altered. Non-conservative substitutions will differ more significantly in their effect on maintaining (a) the structure of the peptide backbone in the area of the substitution, for example, as a sheet or helical conformation, (b) the charge or hydrophobicity of the molecule at the target site, or (c) the bulk of the side chain.
  • conservative amino acid substitutions include those in which the substitution is within one of the five following groups: 1) small aliphatic, nonpolar or slightly polar residues (AIa 1 Ser, Thr, Pro, GIy); 2) polar, negatively charged residues and their amides (Asp, Asn, GIu, GIn); polar, positively charged residues (His, Arg, Lys); large aliphatic, nonpolar residues (Met, Leu, Me, VaI, Cys); and large aromatic resides (Phe, Tyr, Trp).
  • non-conservative amino acid substitutions are those where 1 ) a hydrophilic residue, e.g., seryl or threonyl, is substituted for (or by) a hydrophobic residue, e.g., leucyl, isoleucyl, phenylalanyl, valyl, or alanyl; 2) a cysteine or proline is substituted for (or by) any other residue; 3) a residue having an electropositive side chain, e.g., lysyl, arginyl, or histidyl, is substituted for (or by) an electronegative residue, e.g., glutamyl or aspartyl; or 4) a residue having a bulky side chain, e.g., phenylalanine, is substituted for (or by) a residue that does not have a side chain, e.g., glycine.
  • a hydrophilic residue e.g., seryl or th
  • the terms “individual”, “host”, “subject”, and “patient” are used interchangeably herein, and refer to a mammal, including, but not limited to, primates, for example, human beings, as well as rodents, such as mice and rats, and other laboratory animals.
  • the term "effective amount” or “therapeutically effective amount” means a dosage sufficient to treat, inhibit, or alleviate one or more symptoms of a disease state being treated or to otherwise provide a desired pharmacologic and/or physiologic effect, especially enhancing T cell response to a selected antigen.
  • the precise dosage will vary according to a variety of factors such as subject-dependent variables (e.g., age, immune system health, etc.), the disease, and the treatment being administered.
  • pharmaceutically acceptable carrier includes any and all solvents, dispersion media, coatings, antibacterial and antifungal agents, isotonic and absorption delaying agents, and the like.
  • the use of such media and agents for pharmaceutically active substances is well known in the art. Except insofar as any conventional media or agent is incompatible with the active compound, use thereof in the therapeutic compositions is contemplated. Supplementary active compounds can also be incorporated into the compositions.
  • antibody is meant to include both intact molecules as well as fragments thereof that include the antigen-binding site.
  • Whole antibody structure is often given as H 2 L 2 and refers to the fact that antibodies commonly comprise 2 light (L) amino acid chains and 2 heavy (H) amino acid chains. Both chains have regions capable of interacting with a structurally complementary antigenic target. The regions interacting with the target are referred to as “variable” or “V” regions and are characterized by differences in amino acid sequence from antibodies of different antigenic specificity.
  • the variable regions of either H or L chains contains the amino acid sequences capable of specifically binding to antigenic targets. Within these sequences are smaller sequences dubbed "hypervariable" because of their extreme variability between antibodies of differing specificity.
  • CDR regions Such hypervariable regions are also referred to as “complementarity determining regions” or “CDR” regions. These CDR regions account for the basic specificity of the antibody for a particular antigenic determinant structure.
  • the CDRs represent non-contiguous stretches of amino acids within the variable regions but, regardless of species, the positional locations of these critical amino acid sequences within the variable heavy and light chain regions have been found to have similar locations within the amino acid sequences of the variable chains.
  • the variable heavy and light chains of all antibodies each have 3 CDR regions, each non-contiguous with the others (termed L1 , L2, L3, H1 , H2, H3) for the respective light (L) and heavy (H) chains.
  • the accepted CDR regions have been described by Kabat et al, J. Biol.
  • the antibodies disclosed according to the invention may also be wholly synthetic, wherein the polypeptide chains of the antibodies are synthesized and, possibly, optimized for binding to the polypeptides disclosed herein as being receptors.
  • Such antibodies may be chimeric or humanized antibodies and may be fully tetrameric in structure, or may be dimeric and comprise only a single heavy and a single light chain.
  • the present invention provides a treatment regimen, or combination therapy, for treating disease in mammals comprising a compound that reduces or abolishes inhibitory signal transduction in T cells, preferably human T cells, administered in conjunction with a potentiating agent to increase an immune response.
  • the methods of the invention also relate to the use of broad spectrum immunomodulators and compositions of these.
  • the increased T cell response resulting from these methods is greater than any increased T cell response resulting from administering the same dose of either of said PD-
  • compositions and regimens are useful to stimulate or enhance immune responses involving T cells.
  • the methods of the invention are most useful in treating a disease condition that would benefit from an increase in T cell activity and where the increased T cell response is necessary or sufficient to treat said disease, even though the disease is not specifically caused or aggravated by a reduced T cell response.
  • the type of disease to be treated or prevented is a malignant tumor or a chronic infectious disease caused by a bacterium, virus, protozoan, helminth, or other intracellular microbial pathogen that is attacked, i.e., by cytotoxic T lymphocytes.
  • Activation of T cells using the disclosed compositions is also advantageous to treat or prevent conditions characterized by immunosuppression.
  • the T cell response can be regulated by molecules that bind to receptors on the T cell surface and molecules that bind to ligands of such receptors.
  • molecules that bind PD-1 to reduce its inhibitory effect and/or molecules that bind one or more PD-1 ligands to reduce their ability to bind PD-1 have the effect of reducing the ability of PD-1 to inhibit T cell response, thereby increasing this response and the immunological effects thereof.
  • compositions containing antagonists of PD-1 receptors include compounds or agents that either bind to and block a ligand of PD- 1 to interfere with or inhibit the binding of the ligand to the PD-1 receptor, or bind directly to and block the PD-1 receptor without inducing inhibitory signal transduction through the PD-1 receptor.
  • the PD-1 receptor antagonist binds directly to the PD-1 receptor without triggering inhibitory signal transduction and also binds to a ligand of the PD-1 receptor to reduce or inhibit the ligand from triggering signal transduction through the PD-1 receptor.
  • PD-1 signaling requires binding to a PD-1 ligand (such as B7-H1 or B7-DC) in close proximity to a peptide antigen presented by major histocompatibility complex (MHC) (see, for example, Freeman Proc. Natl. Acad. Sci. U. S. A 105:10275-10276 (2008)). Therefore, proteins, antibodies or small molecules that prevent co- ligation of PD-1 and TCR on the T cell membrane are useful PD-1 antagonists contemplated by this invention.
  • MHC major histocompatibility complex
  • Exemplary PD-1 receptor antagonists include, but are not limited to B7- DC polypeptides, including homologs and variants of these, as well as active fragments of any of the foregoing, and fusion proteins that incorporate any of these.
  • the fusion protein comprises the soluble portion of B7-DC coupled to the Fc portion of an antibody, such as human IgG, and does not incorporate all or part of the transmembrane portion of human B7-DC.
  • the PD-1 receptor antagonists can also be small molecule antagonists or antibodies that reduce or interfere with PD-1 receptor signal transduction by binding to ligands of PD-1 or to PD-1 itself, especially where co-ligation of PD-1 with TCR does not follow such binding, thereby not triggering inhibitory signal transduction through the PD-1 receptor.
  • the PD-1 receptor antagonists provided herein are generally useful in vivo and ex vivo as immune response-stimulating therapeutics.
  • the disclosed antagonist compositions are useful for treating a subject having or being predisposed to any disease or disorder to which the subject's immune system mounts an immune response.
  • B7-DC proteins can be used as PD-1 receptor antagonists.
  • B7-DC is a natural ligand of PD-1 and binds to PD-1 with higher affinity than B7-H1 , and can thus inhibit B7-H1 :PD-1 interactions.
  • Suitable B7- DC polypeptides, including variants, homologs and fragments thereof, can be obtained from the following full length human B7-DC polypeptides with (SEQ ID NO:1) or without (SEQ ID NO:2) the endogenous signal peptide.
  • the B7 family of molecules including B7-DC, are expressed at the cell surface with a membrane proximal constant IgC domain and a membrane distal IgV domain. Receptors for these ligands share a common extracellular IgV-like domain. Interactions of receptor-ligand pairs are mediated predominantly through residues in the IgV domains of the ligands and receptors.
  • IgV domains are described as having two sheets that each contains a layer of ⁇ -strands. These ⁇ -strands are referred to as A', B, C, C, C", D, E, F and G.
  • B7-DC a transmembrane protein, in its monomeric form, comprises IgV and IgC domains that make up the extracellular portion of the molecule (the extracellular domain, or ECD), with the IgV-like domain being responsible, in whole or in part, for PD-1 binding as well as other functions recited in the methods of the invention.
  • the IgV domain is characterized in that it possesses a disulfide bond linking the B and F strands (referred to above), which appears to be characteristic of many IgV domains and possesses a similar three-dimensional structure with the IgV domains of both B7-1 and B7-2 (see Molnar et al.(2008), supra).
  • the B7-DC variant polypeptides contain amino acid alterations (i.e., substitutions, deletions or insertions) within one or more of these ⁇ -strands in any possible combination.
  • B7-DC variants contain one or more amino acid alterations (i.e., substitutions, deletions or insertions) within the A', C, C, C", D, E, F or G ⁇ -strands.
  • B7-DC variants contain one or more amino acid alterations in the G ⁇ -strand.
  • variant B7-DC polypeptide fragments include the IgC and IgV domains of B7-DC.
  • variant B7-DC polypeptide fragments include the IgV domain of B7-DC.
  • variant B7-DC polypeptides include soluble fragments. Soluble B7-DC fragments are fragments of B7-DC that may be shed, secreted or otherwise extracted from the producing cells.
  • variant B7-DC polypeptide fragments include the entire extracellular domain of B7-DC.
  • the extracellular domain of B7-DC includes amino acids from about 20 to about amino acid 221 of murine or human B7-DC or active fragments thereof.
  • variant B7-DC polypeptide fragments include the IgC and IgV domains of B7-DC.
  • variant B7-DC polypeptide fragments include the IgV domain of B7-DC.
  • PD-1 signaling is thought to require binding to a PD-1 ligand (typically
  • MHC major histocompatibility complex
  • the PD-1 antagonist useful in the methods and compositions of the invention include fragments of the B7-DC protein incorporating the ECD.
  • the fragments of B7-DC include part of the extracellular domain that comprise the an IgV or IgV-like domain, preferably amino acids 20-221 , more preferably 20-121 , that are sufficient to bind to the PD-1 receptor to interfere with, or prevent, or otherwise reduce inhibitory signal transduction through the PD-1 receptor.
  • the B7-DC fragment competes with B7-H1 for binding to PD-1 receptors.
  • variant B7-DC polypeptide fragments may contain a region of the polypeptide that is important for binding to PD-1. These polypeptide fragments may be useful to compete for binding to PD-1 and to prevent native B7-DC from binding to PD-1. By competing for binding to PD- 1 , these fragments may be useful to enhance an immune response, as inhibiting interactions of B7-H1 and B7-DC with PD-1 inhibits the suppression of immune responses that would otherwise occur.
  • a polypeptide fragment of mouse or human B7-DC that could competitively bind to PD-1 can contain, for example, amino acids 101-108 or 110-114.
  • B7-DC fragments useful in the methods and/or compositions of the invention include, but are in no way limited to, the following B7-DC extracellular domains:
  • ECD Human B7-DC extracellular domain
  • a PD-1 antagonist useful in the compositions and methods of the invention also includes a fusion protein (as described below) that comprises first and second polypeptide portions, wherein said fusion protein, or at least the first polypeptide portion thereof, possesses PD-1 antagonist activity, especially where said fusion protein binds to and blocks PD-1 or binds to and blocks a ligand of PD-1.
  • the first polypeptide portion of such fusion protein can comprise, or consist of, any of the PD-1 antagonistic polypeptides, or PD- 1 binding fragments thereof, otherwise recited herein for use as PD-1 antagonists in the methods of the invention.
  • the recited first polypeptide portion is N-terminal to the recited second polypeptide portion.
  • the recited first polypeptide portion is linked to the recited second polypeptide portion by an oligopeptide in addition to the amino acids composing the recited first and second polypeptide portions, where said linking amino acids do not substantially decrease the PD-1 antagonist activity of said fusion protein.
  • the dimer results from the covalent bonding of Cys residues in the CH regions of two of the Ig heavy chains that are the same Cys residues that are disulfide linked in dimerized normal Ig heavy chains.
  • polypeptide sequences that are routinely used as fusion protein binding partners are well known in the art.
  • useful polypeptide binding partners include, but are not limited to, green fluorescent protein (GFP) 1 glutathione S-transferase (GST), polyhistidine, myc, hemaglutinin, FlagTM tag (Kodak, New Haven, CT), maltose E binding protein and protein A.
  • GFP green fluorescent protein
  • GST glutathione S-transferase
  • polyhistidine polyhistidine
  • myc myc
  • hemaglutinin FlagTM tag
  • FlagTM tag Kodak, New Haven, CT
  • maltose E binding protein and protein A protein A.
  • Still another embodiment provides a tetramer construct having a BirA substrate fused to the extracellular domain of a variant B7-DC polypeptide. Methods for making tetramer constructs are known in the art (see Pertovas, et al., J. Exp. Med.,
  • Exemplary murine B7-DC fusion proteins contain amino acids 20-221 of murine B7-DC fused to amino acids 237-469 of murine lgG2a (CAA49868).
  • human B7-DC fusion proteins contain amino acids 20-221 of human B7-DC fused to amino acids 245-476 of human IgGI (AAA02914).
  • the signal peptides for B7-DC fusion proteins include the endogenous signal peptides or any other signal peptide that facilitates secretion of the fusion protein from a host.
  • the first polypeptide would include only the IgV domain.
  • inventions may comprise the hinge and Fc domain of an IgG antibody, such IgGI , with none of the variable region present.
  • Other embodiments include use of the hinge and Fc region of lgG2 or lgG4, especially having an N297Q or other mutation that reduces effector function.
  • the polypeptide useful as a PD-1 antagonist, or the first polypeptide portion of a fusion protein useful as a PD-1 antagonist comprises an amino acid sequence that has at least 60%, or at least 65%, or at least 70%, or at least
  • amino acids 1-221 of SEQ ID NO: 1 preferably amino acids 20-221 of SEQ ID NO: 1 , or amino acids 26-221 of SEQ ID NO: 1 , or amino acids 1 -202 of SEQ ID NO: 3 or 4, more preferably amino acids 20-121 of SEQ ID NO: 1 or amino acids 1 -102 of SEQ ID NO: 3 or 4.
  • a polypeptide useful as a PD-1 antagonist or the first polypeptide portion of a fusion protein useful as a PD-1 antagonist, consists of amino acids 1-221 of SEQ ID NO: 1 , or consists of amino acids
  • SEQ ID NO: 1 20-221 of SEQ ID NO: 1 , or consists of amino acids 26-221 of SEQ ID NO: 1 , or consists of amino acids 1-202 of SEQ ID NO: 3 or 4. In one embodiment (SEQ ID NO: 2), it does not comprise amino acids 1-19 of SEQ ID NO: 1.
  • a PD-1 antagonist polypeptide, or first polypeptide portion of a PD-1 antagonist fusion protein comprises the amino acid sequence 20-121 of SEQ ID NO: 1 , preferably where it comprises the amino acid sequence WDYKY at residues 110-114 thereof, or where it comprises amino acids 1-102 of SEQ ID NO: 3, preferably where it comprises the amino acid sequence WDYKY at residues 91-95 thereof.
  • such percent identities are achieved by reliance on conservative amino acid substitutions as defined elsewhere herein.
  • the PD-1 antagonist polypeptide, or first polypeptide portion of a PD-1 antagonist fusion protein does not comprise amino acids 1-19 of SEQ ID NO: 1 , or does not comprise any portion of a transmembrane domain, especially not the entire such domain, or does not comprise any portion of the intracellular (or soluble) domain, especially not the entire such domain, of a PD-1 ligand or other PD-1 antagonist protein.
  • such antagonist, or first polypeptide portion comprises only the extracellular domain (ECD) of SEQ ID NO:1 and is thus comprised only of a soluble portion of the polypeptide of said sequence, or a fragment of said soluble portion.
  • the PD-1 antagonist polypeptide, or first polypeptide portion of a PD-1 antagonist fusion protein comprises the IgV domain, or IgV-like domain, or PD-1 binding fragment thereof, of a PD-1 ligand, or consists of the IgV domain, or IgV-like domain, or PD-1 binding fragment thereof, of a PD-1 ligand.
  • PD-1 ligand is a wild-type B7-DC or B7-H1 molecule, preferably mouse or primate, preferably human, wild-type B7-DC or B7-H1 molecule.
  • a PD-1 antagonist of the invention also includes a PD-1 binding fragment of amino acids 20-121 of SEQ ID NO: 1 (human full length), or amino acids 1-102 of SEQ ID NO: 3 (extracellular domain or ECD).
  • the polypeptide or PD-1 binding fragment also incorporates amino acids WDYKY at residues 110-114 of SEQ ID NO: 1 or WDYKY at residues 91-95 of SEQ ID NO: 3.
  • a PD-1 binding fragment comprises at least 10 , or at least 20, or at least 30, or at least 40, or at least 50, or at least 60, or at least 70, or at least 75, or at least 80, or at least 85, or at least 90, or at least 95, or at least 100 contiguous amino acids of the sequence of amino acids 20-121 of SEQ ID NO: 1 , wherein a preferred embodiment of each such PD-1 binding fragment would comprise as a sub-fragment the amino acids WDYKY found at residues 110-114 of SEQ ID NO: 1 or WDYKY at residues 91-95 of SEQ ID NO: 3.
  • polypeptides and PD-1 binding fragments specifically contemplated by the invention include the polypeptide sequence of amino acids 20-121 of SEQ ID NO: 1 (human full length) and PD-1 binding fragments thereof, wherein, in such polypeptide or PD-1 binding fragment, a cysteine is present at residues 42 and/or 102, with a cysteine at both positions being preferred, and/or wherein a phenylalanine is present at residue 21 , and/or wherein a glutamic acid is present at residue 28, and/or wherein a threonine, and/or wherein a glutamine is present at residue 60, and/or wherein a glutamic acid is present at residue 101 , and/or wherein isoleucine is present at residue 103, and/or wherein an isoleucine is present at residue 105, and/or wherein a glycine is present at residue 107, and/or wherein valine is present at residue 108, and/or wherein a tryp
  • Additional preferred polypeptides and PD-1 binding fragments specifically contemplated by the invention include the polypeptide sequence of amino acids 1-102 of SEQ ID NO: 3 (human ECD) or SEQ ID NO: 4 (murine ECD) and PD-1 binding fragments thereof, wherein, in such polypeptide or PD-1 binding fragment, a cysteine is present at residues 23 and/or 83, with a cysteine at both positions being preferred, and/or wherein a phenylalanine is present at residue 2, and/or wherein a glutamic acid is present at residue 9, and/or wherein a threonine or arginine is present at residue 37, with threonine preferred, and/or wherein a glutamine is present at residue 41 , and/or wherein arginine is present at residue 82, and/or wherein a leucine is present at residue 84, and/or wherein an isoleucine is present at residue 86, and/or wherein a glycine is present
  • any of the above polypeptides may also incorporate portions or fragments, for example, from 1 to 10 contiguous amino acids, drawn from the signal, transmembrane or C-terminal domains of the B7-DC or B7-H1 polypeptide, such as that of mouse or primate, preferably human.
  • Such polypeptides and/or PD-1 binding fragments can also be present in any of the fusion proteins of the invention, for example, where such polypeptide or PD-1 binding fragment represents the "first polypeptide" of such fusion protein.
  • the molecule combined with a potentiating agent for use in a treatment regimen of the invention, comprises a PD-1 binding fragment of amino acids 20-221 of SEQ ID NO: 1.
  • the fragment is from amino acids 20 - 121 of SEQ ID NO: 1 , preferably where the fragment contains amino acids 110-114 of SEQ ID NO: 1.
  • more than one such fragment is present (as described elsewhere herein) and the molecule comprises at least 2, 3, 4, 5 or more fragments of a B7-DC protein, especially where the fragment is part of, or contains part of, amino acids 20-221 of SEQ ID NO: 1.
  • At least one said fragment is from amino acids 20 - 121 of SEQ ID NO: 1 , more preferrably wherein at least one said fragment includes amino acids 110-114 of SEQ ID NO: 1 (i.e., the sequence WDYKY (SEQ ID NO: 14)).
  • the PD-1 binding fragment comprises at least 10, or at least 25, or at least 50, or at least 75, or at least 100 contiguous amino acids in length.
  • the endogenous human signal peptide has the following sequence MIFLLLMLSL ELQLHQIAA (SEQ ID NO:5) and represents the first 19 amino acids of SEQ ID NO: 1.
  • the polypeptide fragments of B7-DC can include 1 , 2, 3, 4, 5, 6, 7, 8, 9, or 10 contiguous amino acids of the endogenous or heterologous signal peptide (which can be used to produce a recombinant B7-DC polypeptide by expression in and secretion from a transformed cell).
  • a useful B7-DC polypeptide can include 1 , 2, 3, 4, 5, 6, 7, 8, 9, or 10 contiguous amino acids of the transmembrane domain of B7-DC, and/or 1 , 2, 3, 4, 5, 6, 7, 8, 9, or 10 contiguous amino acids of the cytoplasmic domain, or combinations thereof provided the B7-DC fragment retains the ability to antagonize the PD-1 receptor.
  • the phenotypes of PD-1-/- mice provide direct evidence for PD-1 being a negative regulator of immune responses in vivo.
  • mice on the C57BL/6 background slowly develop a lupus-like glomerulonephritis and progressive arthritis (Nishimura, et al., Immunity, 11 :141-151 (1999)).
  • PD-1-/- mice on the BALB/c background rapidly develop a fatal autoimmune dilated cardiomyopathy (Nishimura, et al., Science. 291 :319-322 (2001)).
  • B7-DC can function to costimulate activate T cell responses.
  • B7-DC causes increased proliferation and production of cytokines in vitro (Tseng, et al., J. Exp. Med.
  • B7-DC proteins, variants, fragments and fusions thereof may have the advantage of directly enhancing T cell responses by binding to an unknown receptor that activates the T cell, in addition to enhancing T cell responses by preventing the PD-1 mediated inhibitory signal transduction.
  • the compound for use in combination with a potentiating agent in the treatment regimen of the invention is, or comprises, a fragment of a mammalian B7-H1 , preferably from mouse or primate, preferably human, wherein said fragment binds to and blocks PD-1 but does not result in inhibitory signal transduction through PD-1 and said fragment is at least 10, or at least 20, or at least 30, or at least 40, or at least 50, or at least 60, or at least 70, or at least 80, or at least 90, or at least 100 contiguous amino acids in length.
  • the fragment can be of variable length so long as it has the function of binding to PD-1 but does not produce inhibitory signal transduction that results in reduced T cell proliferation.
  • B7-H1 fragments also find use as part of the first polypeptide portion of fusion proteins of the invention.
  • B7-H1 sequences are as follows:
  • Murine B7-H1 (SEQ ID NO: 17)
  • Macaca mulatta PD-L1 (SEQ ID NO: 18) MRIFAVFIFT IYWHLLNAFT VTVPKDLYW EYGSNMTIEC RFPVEKQLGL 60
  • B7-H1-lg proteins are described in WO/2001/014557 (pub. 1 March 2001 ) and in WO/2002/079499 (pub. 10 October 2002).
  • polypeptides of the invention include those that bind to the ligands of the PD-1 receptor. These include the PD-1 receptor protein, or soluble fragments thereof, which can bind to the PD-1 ligands, such as B7-H1 or B7-DC, and prevent binding to the endogenous PD-1 receptor, thereby preventing inhibitory signal transduction. B7-H1 has also been shown to bind the protein B7.1 (Butte et al., Immunity, Vol. 27, pp. 111-122, (2007)).
  • Such fragments also include the soluble ECD portion of the PD-1 protein that includes mutations, such as the A99L mutation, that increases binding to the natural ligands (Molnar et al., Crystal structure of the complex between programmed death-1 (PD-1) and its ligand PD-L2, PNAS, Vol. 105, pp. 10483-10488 (29 July 2008)),.
  • B7-1 or soluble fragments thereof which can bind to the B7-H1 ligand and prevent binding to the endogenous PD-1 receptor, thereby preventing inhibitory signal transduction, are also useful.
  • PD-1 polypeptides useful in the methods of the invention are as follows:.
  • B7-1 and fragments thereof can also bind to B7-H1 and send inhibitory transducstion to T cells through B7-H1 , blocking of this interaction can also reduce inhibitory signal transduction that occurs through B7-H1.
  • Compounds for use in the invention include those molecules that block this type of interaction. Such molecules have been disclosed in Butte et al (2007), supra, and include anti-B7-H1 antibodies with dual-specificity that block either the B7-H1 :B7-1 and B7- H1 :PD-1 interaction as well as antibodies exhibiting mono-specificity that block the PD-L1 :B7-1 interaction. Compounds that block this interaction by blocking B7-1 are also useful, and include anti-B7-1 antibodies.
  • Polypeptides useful in the invention, as described, include those that are mutated to contain one or more amino acid substitutions, deletions, or insertions. Methods for mutagenesis are known in the art.
  • the mutated or variant polypeptides inhibit or reduce inhibitory signal transduction through PD-1 receptors by binding to ligands of PD-1.
  • the variants e.g. B7-DC polypeptides
  • the variant polypeptides may be of any species of origin. In one embodiment, the variant polypeptide is from a mammalian species. In a preferred embodiment, the variant polypeptide is of murine or primate, preferably human, origin.
  • the variant polypeptide is a B7-DC polypeptide that has the same binding affinity to PD-1 as wildtype or non-variant B7-DC but does not have or has less than 10% ability to trigger inhibitory signal transduction through the PD-1 receptor relative to a non-mutated B7-DC polypeptide.
  • the variant B7-DC polypeptide has 10%, 20%, 30%, 40%, 50%, or 60% more binding affinity to PD-1 than wildtype B7- DC without triggering PD-1 inhibitory signaling transduction.
  • a variant polypeptide (e.g. a variant B7-DC polypeptide) includes those having any combination of amino acid substitutions, deletions or insertions so long as the PD-1 antagonizing activity is not substantially reduced versus the wild type. However, where there is such a reduction, this should be by no more than half that of the wild type so that said variant has at least 50% of the PD-1 antagonist activity of the wild type protein, preferably at least 60%, more preferably at least 80%, most preferably at least 90% or 95%, with at least 100% being especially preferred. Increases in such activity resulting from said variant is even more desirable.
  • isolated B7-DC variant polypeptides have amino acid alterations such that their amino acid sequence shares at least 60, 70, 80, 85, 90, 95, 97, 98, 99, 99.5 or 100% identity with an amino acid sequence of a wild type B7-DC polypeptide, especially that from a mammal, preferably wild type murine or wild type primate, preferably human, B7-DC polypeptide.
  • Polypeptide sequence identity can be calculated using the definition of % identity provided hereinabove.
  • Amino acid substitutions in polypeptides may be "conservative" or
  • B7 family molecules including B7-DC, are expressed at the cell surface with a membrane proximal constant IgC domain and a membrane distal IgV domain. Receptors for these ligands share a common extracellular IgV-like domain. Interactions of receptor-ligand pairs are mediated predominantly through residues in the IgV domains of the ligands and receptors.
  • IgV domains are described as having two sheets that each contains a layer of ⁇ -strands. These ⁇ -strands are referred to as A', B, C, C, C", D, E, F and G.
  • the B7-DC variant polypeptides contain amino acid alterations (i.e., substitutions, deletions or insertions) within one or more of these ⁇ -strands in any possible combination.
  • B7-DC variants contain one or more amino acid alterations (i.e., substitutions, deletions or insertions) within the A', C, C 1 C", D, E, F or G ⁇ -strands.
  • B7-DC variants contain one or more amino acid alterations in the G ⁇ -strand.
  • a variant B7-DC polypeptide can contain, without limitation, substitutions, deletions or insertions at positions that do not substantially reduce binding to PD-1 relative to non-mutated B7-DC. It is understood, however, that substitutions at the recited amino acid positions can be made using any amino acid or amino acid analog.
  • substitutions at the recited positions can be made with any of the naturally-occurring amino acids (e.g., alanine, aspartic acid, asparagine, arginine, cysteine, glycine, glutamic acid, glutamine, histidine, leucine, valine, isoleucine, lysine, methionine, proline, threonine, serine, phenylalanine, tryptophan, or tyrosine).
  • amino acids e.g., alanine, aspartic acid, asparagine, arginine, cysteine, glycine, glutamic acid, glutamine, histidine, leucine, valine, isoleucine, lysine, methionine, proline, threonine, serine, phenylalanine, tryptophan, or tyrosine.
  • Preferred fragments include all or part of the extracellular domain of
  • B7-DC effective to bind to PD-1.
  • variant B7-DC polypeptide fragments are those that retain the ability to bind to PD-1 without triggering PD-1 inhibitory signal transduction.
  • One embodiment provides a variant B7-DC polypeptide that is a fragment of full-length B7-DC and typically has at least 20 percent, 30 percent, 40 percent, 50 percent, 60 percent, 70 percent, 80 percent, 90 percent, 95 percent, 98 percent, 99 percent, 100 percent, or even more than 100 percent of the PD-1 antagonist activity of the full-length variant B7-DC polypeptide.
  • variant B7-DC polypeptides include soluble fragments. Soluble B7-DC fragments are fragments of B7-DC that may be shed, secreted or otherwise extracted from the producing cells.
  • variant B7-DC polypeptide fragments include the entire extracellular domain of B7-DC.
  • the extracellular domain of B7-DC includes amino acids from about 20 to about amino acid 221 of murine or primate, preferably human, B7-DC.
  • variant B7-DC polypeptide fragments include the IgC and IgV domains of B7-DC.
  • variant B7-DC polypeptide fragments include the IgV domain of B7-DC.
  • variant B7-DC polypeptide fragments contain a region of the polypeptide that is important for binding affinity for PD-1. These polypeptide fragments are useful to bind to and block the PD-1 receptor to prevent native ligands from binding to PD-1 receptor, thereby enhancing an immune response. Inhibiting interactions of native B7-H1 or B7-DC with PD-1 inhibits the suppression of immune responses that would otherwise occur.
  • a polypeptide fragment of mouse or primate, preferably human, B7-DC that binds to PD-1 contains, by way of non-limiting example, amino acids 101-105, or 111-113.
  • the binding of B7-H1 to PD-1 receptor typically is inhibited by at least 50 percent, or by at least 60 percent, or by at least 70 percent, or by at least 75 percent, or by at least 80 percent, or by at least 90 percent, or by at least 95 percent, or more compared to the level of binding of B7-H1 to PD-1 in the absence of the fragment.
  • Human PD-1 mutant A99L binds B7-DC and B7-H1 with higher affinity than unmutated human PD-1 (Lazar Molnar et al PNAS 105 p. 10483-10488
  • the compound acting to reduce inhibitory signal transduction is a soluble protein, such as the ECD of PD-1 incorporating this mutation.
  • Polypeptides useful in the invention can be modified by chemical moieties found associated with polypeptides in the normal cellular environment, for example, by phosphorylation, methylation, amidation, sulfation, acylation, glycosylation, sumoylation and ubiquitylation of the polypeptide.
  • Such polypeptides may also be modified by chemical moieties that are not normally part of polypeptides in a cellular environment. Such modifications can be introduced into the molecule by reacting targeted amino acid residues of the polypeptide with an organic derivatizing agent that is capable of reacting with selected side chains or terminal residues. Another useful modification is cyclization of the protein.
  • Such modifications also include introduction of a label capable of providing a detectable signal, either directly or indirectly, including, but not limited to, radioisotopes and fluorescent compounds.
  • Examples of chemical derivatives of the polypeptides include lysinyl and amino terminal residues derivatized with succinic or other carboxylic acid anhydrides. Derivatization with a cyclic carboxylic anhydride has the effect of reversing the charge of the lysinyl residues.
  • Other suitable reagents for derivatizing amino-containing residues include imidoesters such as methyl picolinimidate; pyridoxal phosphate; pyridoxal; chloroborohydride; trinitrobenzenesulfonic acid; O-methylisourea; 2,4 pentanedione; and transaminase-catalyzed reaction with glyoxylate.
  • aspartyl and glutamyl residues can be converted to asparaginyl and glutaminyl residues by reaction with ammonia.
  • Polypeptides of the invention can also include one or more D-amino acids that are substituted for one or more L-amino acids.
  • the potentiating agent such as CTX 1 may be itself part of the compound that reduces inhibitory signal transduction, such as where the potentiating agent is chemically linked to a PD-1 antagonist of the invention.
  • Fusion polypeptides having a first fusion partner, or polypeptide portion, comprising all or a part of a PD-1 antagonist protein, a B7-DC polypeptide for example, (including variants, homologs and fragments thereof) fused (i) directly to a second polypeptide or, (ii) optionally, fused to a linker peptide sequence that is fused to the second polypeptide are also provided.
  • the presence of the fusion partner can alter, for example, the solubility, affinity and/or valency of the PD-1 antagonist polypeptide.
  • the disclosed fusion proteins include any combination of amino acid alteration (i.e., substitution, deletion or insertion), fragment, and/or modification of a PD-1 antagonist polypeptide as described above.
  • B7-DC fusion proteins include the extracellular domain of a B7-DC protein as the first binding partner. In another embodiment, such B7-DC fusion proteins include the IgV and IgC domain of a B7-DC protein as the first binding partner. In another embodiment, variant B7-DC fusion proteins include the IgV domain of a B7-DC protein as the first binding partner.
  • Representative first fusion partners include primate, preferably human, or murine B7-DC polypeptide, fragments thereof, and variants thereof disclosed hereinabove.
  • Preferred fragments include the extracellular domain of B7-DC.
  • the extracellular domain can include 1-10 contiguous amino acids of a signal peptide, B7-DC transmembrane domain, or both.
  • compositions and/or products and/or methods of the invention utilize PD-1 receptor antagonist, especially polypeptides, including variants, homologs and fragments thereof, that are coupled to other polypeptides to form fusion proteins that antagonize the PD-1 receptor by binding a PD-1 ligand, such as B7-H1 , thereby inhibiting the ligand from interacting with PD-1.
  • PD-1 receptor antagonist polypeptides, or variants thereof are coupled to other polypeptides to form fusion proteins that antagonize the PD-1 receptor by binding to and blocking the PD-1 receptor and inhibit or reduce inhibitory signal transduction through PD-1.
  • the second polypeptide binding partner, or second polypeptide portion may be N-terminal or C-terminal relative to the PD-1 antagonist polypeptide.
  • the second polypeptide is C-terminal to the PD-1 antagonist polypeptide.
  • the fusion protein contemplated for use in the methods and compositions and/or products of the invention comprises at least a portion of an antibody.
  • an antibody With the advent of methods of molecular biology and recombinant technology, it is now possible to produce antibody molecules by recombinant means and thereby generate gene sequences that code for specific amino acid sequences found in the polypeptide structure of the antibodies.
  • Such antibodies can be produced by either cloning the gene sequences encoding the polypeptide chains of said antibodies or by direct synthesis of said polypeptide chains, with in vitro assembly of the synthesized chains to form active tetrameric (H 2 L 2 ) structures with affinity for specific epitopes and antigenic determinants. This has permitted the ready production of antibodies having sequences characteristic of neutralizing antibodies from different species and sources.
  • all antibodies have a similar overall 3 dimensional structure.
  • This structure is often given as H 2 L 2 and refers to the fact that antibodies commonly comprise 2 light (L) amino acid chains and 2 heavy (H) amino acid chains. Both chains have regions capable of interacting with a structurally complementary antigenic target. The regions interacting with the target are referred to as "variable” or "V” regions and are characterized by differences in amino acid sequence from antibodies of different antigenic specificity.
  • the PD-1 receptor antagonist polypeptides include fragments, mutants and other variants, have a first fusion partner having all or a part of a B7-DC protein or variant thereof fused (i) directly to a second polypeptide or, (ii) optionally, fused to a linker peptide sequence that is fused to the second polypeptide.
  • the presence of the fusion partner can alter the solubility, affinity and/or valency of the B7-DC polypeptide.
  • B7-DC polypeptides are fused to one or more domains of an Ig heavy chain constant region, more preferably an amino acid sequence corresponding to the hinge, C H 2 and C H 3 regions of a human immunoglobulin C ⁇ 1 chain or to the hinge, C H 2 and C H 3 regions of a murine immunoglobulin C ⁇ 2a chain.
  • the constant region preferably includes a mutation (for example N297Q) to eliminate or reduce Fc receptor binding.
  • the hinge, CH2 and C H 3 regions of a human immunoglobulin C ⁇ 1 chain has the following amino acid sequence:
  • the hinge, CH2 and C H 3 regions of a murine immunoglobulin C ⁇ 2a chain has the following amino acid sequence:
  • Exemplary murine B7-DC fusion proteins contain amino acids 20-221 of murine B7-DC fused to amino acids 237-469 of murine lgG2a (CAA49868).
  • Human B7-DC fusion proteins can contain amino acids 20-221 of human B7-DC fused to amino acids 245-476 of human IgGI (AAA02914).
  • the signal peptides for B7-DC fusion proteins can be the endogenous signal peptides or any other signal peptide that facilitates secretion of the fusion protein from a host.
  • a representative murine B7-DC-lg fusion protein is encoded by the nucleic acid sequence of SEQ ID NO:8.
  • nucleic acid sequences can be codon-optimized to increase levels of expression for synthesizing the fusion proteins useful in the methods and compositions of the present invention.
  • Methods for codon optimization are known in the art.
  • the murine B7-DC-lg fusion protein encoded by SEQ ID NO:8 has the following amino acid sequence:
  • SEQ ID NO: 10 provides the amino acid sequence for murine B7-DC-lg fusion protein without the signal sequence.
  • human B7-DC-lg is encoded by the nucleic acid sequence of SEQ ID NO:11 , encoding the amino acid sequence for human B7-DC-lg:
  • the present invention specifically contemplates embodiments where the mature fusion protein useful in the methods and compositions of the invention have the signal sequence removed.
  • the signal sequence is completely removed.
  • SEQ ID NO:13 provides the amino acid sequence for human B7-DC-lg without the signal sequence.
  • the present invention specifically contemplates embodiments where the disclosed B7-DC-lg fusion proteins used in the methods and compositions disclosed herein have at least about 80%, 85%, 90%, 99% or 100% sequence identity to SEQ ID NO: 9, 10, 12, or 13.
  • the fusion polypeptide may have bi-specific function whereby the first fusion partner binds to a ligand of
  • PD-1 such as B7-H1
  • the second fusion partner binds to the PD-1 receptor without triggering inhibitory signal transduction through the PD-1 receptor.
  • a polypeptide useful in the invention may be monomeric or dimeric
  • the fusion proteins themselves may be present in a monomeric or an oligomeric form, preferably as a dimer.
  • the fusion proteins useful as PD-1 antagonists in the methods and compositions of the invention may assemble spontaneously into oligomeric, especially dimeric, forms or may be chemically linked to form such oligomers by means well known in the art.
  • a fusion protein useful in practicing the invention may itself comprise a portion of a B7-DC polypeptide fused to a portion of an antibody and these may be further assembled into a dimer.
  • a polypeptide for use in the invention is fused as a single amino acid chain to the Fc region of an antibody (such as where this construct is expressed from a single recombinant polynucleotide), after which two such fusion products are linked to each other to form a homodimer, such as by a disulfide linkage between the respective Fc regions.
  • Such dimeric products may be homodimers (where both monomeric fusion proteins are identical) or may be heterodimers (where two different fusion proteins are linked to each other).
  • the individual monomers of such dimers may be linked by any means known in the art, such as by covalent linkage (e.g., a disulfide bond) or by non-covalent linkage (such as an ionic interaction).
  • covalent linkage e.g., a disulfide bond
  • non-covalent linkage such as an ionic interaction
  • the B7-DC-lg used in the examples of the invention were present in the form of a homodimer having 2 copies of SEQ ID NO: 10 linked together by a disulfide linkage.
  • heterodimers of the invention include bispecific proteins and fusion proteins wherein one monomeric portion binds to PD-1 and the other binds to a natural ligand of PD-1.
  • Such heterodimers are formed by coupling of polypeptides and fusion proteins fully described elsewhere herein.
  • the PD-1 antagonist is a heterodimer, such as where two fusion proteins are linked together but they are not of identical amino acid sequence.
  • each monomer may comprise an Fc portion of an antibody linked to an active fragment of a B7-DC polypeptide where these active fragments are from different portions of the B7-DC polypeptide or where a fusion protein comprising an Fc portion of an antibody fused to a full length native B7-DC polypeptide is linked (for example, cross-linked) to a fusion protein comprising an Fc portion of an antibody and an active fragment of a full length native BY- DC polypeptide.
  • the portion of the antibody used in forming each monomeric fusion protein may be different between the two monomeric units. Any such dimeric combination is specifically contemplated by the methods and compositions of the invention.
  • the dimer results from the covalent bonding of Cys residue in the CH regions of two of the Ig heavy chains that are the same Cys residues that are disulfide linked in dimerized normal Ig heavy chains.
  • Still another embodiment provides a tetramer construct having a BirA substrate fused to the extracellular domain of a variant B7-DC polypeptide.
  • Methods for making tetramer constructs are known in the art (see Pertovas, et al., J. Exp. Med., 203:2281 (2006)). 7. Anti-PD-1 and Other Antibodies
  • PD-1 antagonists contemplated by the methods of this invention include antibodies that bind to PD-1 or ligands of PD-1 , and other antibodies.
  • the present invention relates to a method of increasing a
  • T cell response in a mammal in need thereof comprising administering to said mammal an effective treatment regimen comprising an anti-PD-1 antibody and a potentiating agent, wherein said treatment regimen is effective to increase the T cell response of said mammal to said antigen.
  • Anti-PD-1 antibodies useful in the treatment regimens(s) of the invention include, but are not limited to, those described in the following publications:
  • PCT/JP03/08420 (Honjo et al., WO/2004/004771)
  • PCT/JP04/00549 (Honjo et al., WO/2004/072286)
  • an anti-PD-1 antibody useful in the methods of the invention is MDX-1106 (see Kosak, US 20070166281 (pub. 19 July 2007) at par. 42), a human anti-PD-1 antibody, preferably administered at a dose of 3 mg/kg.
  • the present invention relates to a method of increasing a T cell response in a mammal in need thereof, comprising administering to said mammal an effective treatment regimen comprising an anti-PD-1 ligand antibody, an anti-B7-H1 antibody for example, and a potentiating agent, wherein said treatment regimen is effective to increase the T cell response of said mammal to said antigen.
  • Anti-B7-H1 antibodies useful in the treatment regimens(s) of the invention include, but are not limited to, those described in the following publications:
  • PCT/US06/022423 (WO/2006/133396, pub. 14 December 2006)
  • PCT/US07/088851 (WO/2008/083174, pub. 10 July 2008)
  • US 2006/0110383 (pub. 25 May 2006)
  • an anti-B7-H1 antibody useful in the methods of the invention is MDX-1105 (WO/2007/005874, published 11 January 2007)), a human anti-B7-H1 antibody.
  • Another embodiment of the invention includes a bi-specific antibody that comprises an antibody that binds to the PD-1 receptor bridged to an antibody that binds to a ligand of PD-1 , such as B7-H1.
  • the PD-1 binding portion reduces or inhibits signal transduction through the PD-1 receptor.
  • the antibody for use in the invention need not be an anti-PD-1 or anti- PD-1 ligand antibody but may be another antibody useful in mediating the effects of T cells in an immune response.
  • the present invention relates to a method of increasing a T cell response to an antigen in a mammal in need thereof, comprising administering to said mammal an effective treatment regimen comprising an anti-CTLA4 antibody and a potentiating agent, wherein said treatment regimen is effective to increase the T cell response of said mammal to said antigen.
  • An example of an anti-CTLA4 antibody contemplated for use in the methods of the invention includes an antibody as described in PCT/US2006/043690 (Fischkoff et al., WO/2007/056539).
  • an anti-CTLA4 antibody useful in the methods of the invention are Ipilimumab, also known as MDX-010 or MDX-101 , a human anti- CTLA4 antibody, preferably administered at a dose of 10 mg/kg, and Tremelimumab a human anti-CTLA4 antibody, preferably administered at a dose of 15 mg/kg.
  • the PD-1 receptor antagonists can also be small molecule antagonists.
  • small molecule refers to small organic compounds having a molecular weight of more than 100 and less than about 2,500 daltons, preferably between 100 and 2000, more preferably between about 100 and about 1250, more preferably between about 100 and about 1000, more preferably between about 100 and about 750, more preferably between about 200 and about 500 daltons.
  • the small molecules often include cyclical carbon or heterocyclic structures and/or aromatic or polyaromatic structures substituted with one or more functional groups.
  • the small molecule antagonists reduce or interfere with PD-1 receptor signal transduction by binding to ligands of PD-1 such as B7-H1 and B7-DC and preventing the ligand from interacting with PD-1 or by binding directly to and blocking the PD- 1 receptor without triggering signal transduction through the PD-1 receptor.
  • such a small molecule may be administered in combination with another PD-1 antagonist or CTLA4 antagonist, such as an antibody specific for PD-1 or one of its ligands or an antibody specific for
  • CTLA4 or one of its ligands may be administered as compounds in one or more of the methods of the invention or may be administered in combination with other compounds useful in the methods of the invention.
  • small molecules may be administered as compounds in one or more of the methods of the invention or may be administered in combination with other compounds useful in the methods of the invention.
  • a series of small organic compounds have been shown to bind to the B7-1 ligand to prevent binding to CTLA4 (see Erbe et al., J. Biol. Chem., Vol. 277, pp. 7363-7368 (2002).
  • Such small organics could be administered alone or together with an anti-CTLA4 antibody, in combination with CTX administration, to reduce inhibitory signal transduction of T cells.
  • PD-1 antagonists or CTLA4 antagonists contemplated for use in the methods of the invention include anti-sense nucleic acids, both DNA and RNA, as well as siRNA molecules.
  • anti- sense molecules prevent expression of PD-1 on T cells as well as production of T cell ligands, such as B7-H1 , PD-L1 and PD-L2.
  • siRNA for example, of about 21 nucleotides in length, which is specific for the gene encoding PD-1 , or encoding a PD-1 ligand, and which oligonucleotides can be readily purchased commercially
  • carriers such as polyethyleneimine (see Cubillos-Ruiz et al., J. CHn.
  • Invest. 119(8): 2231-2244 (2009), are readily taken up by cells that express PD-1 as well as ligands of PD-1 and reduce expression of these receptors and ligands to achieve a decrease in inhibitory signal transduction in T cells, thereby activating T cells.
  • the activity of the PD-1 antagonist is increased, preferably synergistically, by the presence of a potentiating agent.
  • the potentiating agent acts to increase the efficacy of the PD-1 receptor antagonist, possibly by more than one mechanism, although the precise mechanism of action is not essential to the broad practice of the present invention.
  • the potentiating agent is cyclophosphamide.
  • Cyclophosphamide (CTX, Cytoxan ® , or Neosar ® ) is an oxazahosphorine drug and analogs include ifosfamide (IFO, Ifex), perfosfamide, trophosphamide (trofosfamide; Ixoten), and pharmaceutically acceptable salts, solvates, prodrugs and metabolites thereof (US patent application 20070202077 which is incorporated in its entirety), lfosfamide (MITOXANA ® ) is a structural analog of cyclophosphamide and its mechanism of action is considered to be identical or substantially similar to that of cyclophosphamide.
  • Perfosfamide (4-hydroperoxycyclophosphamide) and trophosphamide are also alkylating agents, which are structurally related to cyclophosphamide. For example, perfosfamide alkylates DNA, thereby inhibiting DNA replication and RNA and protein synthesis.
  • New oxazaphosphorines derivatives have been designed and evaluated with an attempt to improve the selectivity and response with reduced host toxicity (Liang J, Huang M, Duan W, Yu XQ, Zhou S. Design of new oxazaphosphorine anticancer drugs. Curr Pharm Des. 2007;13(9):963-78. Review).
  • Mafosfamide is an oxazaphosphorine analog that is a chemically stable 4-thioethane sulfonic acid salt of 4-hydroxy-CPA.
  • Glufosfamide is IFO derivative in which the isophosphoramide mustard, the alkylating metabolite of IFO, is glycosidically linked to a beta-D-glucose molecule. Additional cyclophosphamide analogs are described in US patent 5,190,929 entitled “Cyclophosphamide analogs useful as anti-tumor agents” which is incorporated herein by reference in its entirety.
  • the potentiating agent is an agent that reduces activity and/or number of regulatory T lymphocytes (T-regs), preferably Sunitinib (SUTENT ® ), anti-TGF ⁇ or lmatinib (GLEEVAC ® ).
  • T-regs regulatory T lymphocytes
  • SUTENT ® Sunitinib
  • anti-TGF ⁇ anti-TGF ⁇
  • GLEEVAC ® lmatinib
  • the recited treatment regimen may also include administering an adjuvant.
  • Useful potentiating agents also include mitosis inhibitors, such as paclitaxol, aromatase inhibitors (e.g. Letrozole) and angiogenesis inhibitors
  • VEGF inhibitors e.g. Avastin, VEGF-Trap
  • Vascular endothelial growth factor blockade reduces intratumoral regulatory T cells and enhances the efficacy of a GM-CSF-secreting cancer immunotherapy. Clin Cancer Res. 2006 Nov 15;12(22):6808-16.), anthracyclines, oxaliplatin, doxorubicin, TLR4 antagonists, and IL-18 antagonists.
  • the invention relates to a therapeutic composition, comprising a molecule that prevents inhibitory signal transduction through PD- 1 , or a CTLA4 antagonist, and a potentiating agent in a pharmaceutically acceptable carrier.
  • the components of said composition are present in an amount effective to increase a T cell response in a mammal.
  • the potentiating agent is cyclophosphamide or an analog of cyclophosphamide, examples of such analogs having been recited above.
  • the potentiating agent is an agent that reduces activity of regulatory T lymphocytes (T-regs), preferably where the activity is reduced due to a decrease in the number of said T-regs.
  • the agent is Sunitinib (SUTENT ® ), anti- TGF ⁇ or lmatinib (GLEEVAC ® ).
  • the potentiating agent useful in formulating compositions of the invention also include mitosis inhibitors, such as paclitaxol, aromatase inhibitors (e.g. Letrozole), agniogenesis inhibitors (VEGF inhibitors e.g. Avastin, VEGF-Trap), anthracyclines, oxaliplatin, doxorubicin, TLR4 antagonists, and IL-18 antagonists.
  • mitosis inhibitors such as paclitaxol, aromatase inhibitors (e.g. Letrozole), agniogenesis inhibitors (VEGF inhibitors e.g. Avastin, VEGF-Trap), anthracyclines, oxaliplatin, doxorubicin, TLR4 antagonists, and IL-18 antagonists.
  • mitosis inhibitors such as paclitaxol, aromatase inhibitors (e.g. Letrozole), agniogenesis inhibitors
  • a therapeutic composition of the invention also optionally comprises at least one additional agent that may be one or more of an anti-PD-1 antibody, an anti-CTLA4 antibody, a mitosis inhibitor, an aromatase inhibitor, an A2a adenosine receptor (A2AR) antagonist, or an angiogenesis inhibitor. Any of the therapeutic compositions of the invention may also contain one or more adjuvants as described herein.
  • a PD-1 antagonist useful as a component of a therapeutic composition of the invention includes any of the PD-1 antagonists recited herein for use in any of the methods of the invention.
  • such PD-1 antagonist includes any of the fusion proteins recited herein.
  • Such antagonist can also be any of the polypeptides or PD-1 binding fragments recited herein for use as the first polypeptide portion of any of the fusion proteins described for use in any of the methods of the invention.
  • Such antagonist can further be an antibody, such as any of the known anti-PD-1 , -B7-DC or -B7-H1 antibodies mentioned herein.
  • a therapeutic composition of the invention also includes, in addition to or in place of the aforementioned PD-1 antagonist, an anti-CTLA4 antibody.
  • an anti-CTLA4 antibody Such a composition would therefore contain such an anti-CTLA4 antibody and a potentiating agent of the kind already described herein.
  • a therapeutic composition of the invention finds use in any of the methods of the invention disclosed herein. Such composition, while intended for use as an active treatment of a disease condition, may also find use as prophylactic compositions to prevent any of the diseases recited herein.
  • the present invention contemplates a therapeuitc composition
  • a therapeuitc composition comprising a PD-1 antagonist and a potentiating agent in a pharmaceutically acceptable carrier, wherein the PD-1 antagonist and the potentiating agent are together present in an amount effective to increase a T cell response in a mammal.
  • compositions within the scope of the invention include compositions comprising any and all combinations of the PD-1 antagonists and/or antibodies disclosed herein with any of the recited potentiating agents.
  • a therapeutic composition of the invention includes a composition comprising an effective amount of one or more PD-1 antagonists, such as a combination of any or all of the full length polypeptides enumerated herein as specific SEQ ID NOs.
  • the composition comprises at least one PD-1 anatgonist and/or antibody mediating T cell activity and at least one potentiating agent.
  • compositions of the invention may also include additional active agents.
  • the pharmaceutical or therapeutic composition further comprises at least one additional agent selected from the group consisting of an anti-PD-1 antibody, an anti-CTLA4 antibody, a mitosis inhibitor, such as paclitaxel, an aromatase inhibitor, such as letrozole, an A2AR antagonist, an angiogenesis inhibitor, anthracyclines, oxaliplatin, doxorubicin, TLR4 antagonists, and IL-18 antagonists.
  • the PD-1 antagonist and/or potentiating agent may be administered by any suitable means.
  • the PD-1 antagonist and/or potentiating agent is administered in an aqueous solution, by parenteral injection.
  • the formulation may also be in the form of a suspension or emulsion.
  • pharmaceutical compositions are provided including effective amounts of a peptide or polypeptide, and optionally include pharmaceutically acceptable diluents, preservatives, solubilizers, emulsifiers, adjuvants and/or carriers.
  • compositions include diluents sterile water, buffered saline of various buffer content (e.g., Tris-HCI, acetate, phosphate), pH and ionic strength; and optionally, additives such as detergents and solubilizing agents (e.g., TWEEN 20, TWEEN 80, Polysorbate 80), anti- oxidants (e.g., ascorbic acid, sodium metabisulfite), and preservatives (e.g., Thimersol, benzyl alcohol) and bulking substances (e.g., lactose, mannitol).
  • buffered saline of various buffer content e.g., Tris-HCI, acetate, phosphate
  • pH and ionic strength e.g., Tris-HCI, acetate, phosphate
  • additives e.g., Tris-HCI, acetate, phosphate
  • additives e.g., TWEEN 20, TWEEN 80,
  • non-aqueous solvents or vehicles examples include propylene glycol, polyethylene glycol, vegetable oils, such as olive oil and corn oil, gelatin, and injectable organic esters such as ethyl oleate.
  • the formulations may be lyophilized and redissolved/resuspended immediately before use.
  • the formulation may be sterilized by, for example, filtration through a bacteria retaining filter, by incorporating sterilizing agents into the compositions, by irradiating the compositions, or by heating the compositions.
  • compositions of the invention may be administered by parenteral (intramuscular, intraperitoneal, intravenous (IV) or subcutaneous injection), transdermal (either passively or using iontophoresis or electroporation), or transmucosal (nasal, vaginal, rectal, or sublingual) routes of administration.
  • parenteral intramuscular, intraperitoneal, intravenous (IV) or subcutaneous injection
  • transdermal either passively or using iontophoresis or electroporation
  • transmucosal nasal, vaginal, rectal, or sublingual routes of administration.
  • the methods of the invention do not preclude administering the PD-1 antagonist and the potentiating agent by separate and different routes (e.g. topically).
  • the PD-1 antagonist and the potentiating agent may be administered at the same time, or at different times, with the potentiating agent being administered before or after the PD-1 antagonist.
  • a potentiating agent is administered both before and after the PD-1 antagonist.
  • the same potentiating agent is administered before and after the PD-1 antagonist.
  • the potentiating agent administered before the PD-1 antagonist is administered before the PD-1 antagonist.
  • the term "effective amount” or “therapeutically effective amount” means a dosage sufficient to treat, inhibit, or alleviate one or more symptoms of the disorder being treated or to otherwise provide a desired pharmacologic and/or physiologic effect.
  • the precise dosage will vary according to a variety of factors such as subject-dependent variables (e.g., age, immune system health, etc.), the disease, and the treatment being effected.
  • Therapeutically effective amounts of PD-1 receptor antagonists and/or antibodies together with a potentiating agents cause an immune response to be activated or sustained.
  • the selected dosage depends upon the desired therapeutic effect, on the route of administration, and on the duration of the treatment desired. Generally dosage levels of 0.001 to 50 mg/kg of body weight daily are administered to mammals. Preferrably, said dose is 1 to 50 mg/kg, more preferably 1 to 40 mg/kg, or even 1 to 30 mg/kg, with a dose of 2 to 20 mg/kg being also a preferred dose. Examples of other dosages include 2 to 15 mg/kg, or 2 to 10 mg/kg or even 3 to 5 mg/kg, with a dose of about 4 mg/kg being a specific example.
  • dosages are commonly in the range of 0.1 to 100 mg/kg, with shorter ranges of 1 to 50 mg/kg preferred and ranges of 10 to 20 mg/kg being more preferred.
  • An appropriate dose for a human subject is between 5 and 15 mg/kg, with 10 mg/kg of antibody (for example, human anti-PD-1 antibody, like MDX-1106) most preferred (plus a suitable dose of cyclophosphamide or other potentiating agent given up to about 24 hours before the antibody).
  • dosage forms based on body weight for any of the signal transduction antagonists useful in the methods of the invention include doses in the range of 5-300 mg/kg, or 5-290 mg/kg, or 5- 280 mg/kg, or 5-270 mg/kg, or 5-260 mg/kg, or 5-250 mg/kg, or 5-240 mg/kg, or 5-230 mg/kg, or 5-220 mg/kg, or 5-210 mg/kg, or 20 to 180 mg/kg, or 30 to 170 mg/kg, or 40 to 160 mg/kg, or 50 to 150 mg/kg, or 60 to 140 mg/kg, or 70 to 130 mg/kg, or 80 to 120 mg/kg, or 90 to 110 mg/kg, or 95 to 105 mg/kg, with doses of 3 mg/kg, 5 mg/kg, 7 mg/kg, 10 mg/kg, 15 mg/kg, 20 mg/kg, 25 mg/kg, 30 mg/kg, 50 mg/kg and 100 mg/kg being specific examples of preferred doses.
  • doses may, of course, be repeated.
  • the dose will, of course, be correlated with the identity of the mammal receiving said dose.
  • Doses in the above-recited mg/kg ranges are convenient for mammals, including rodents, such as mice and rats, and primates, especially humans, with doses of about 5 mg/kg, about 10 mg/kg and about 15 mg/kg being especially preferred for treating humans.
  • the potentiating agent for example cyclophosphamide
  • the potentiating agent is administered in nontoxic doses that vary depending on the animal.
  • the potentiating agent is administered by any suitable means of administration, including parenteral or oral, the former including system administration, such as intravenous.
  • a potentiating agent like cyclophosphamide is normally administered orally.
  • Such administration may be at any convenient dosage, depending on the potentiating agent.
  • the dosage in each case may be based on body weight or may be administered as a unit dosage.
  • CTX While CTX itself is nontoxic, some of its metabolites are cytotoxic alkylating agents that induce DNA crosslinking and, at higher doses, strand breaks. Many cells are resistant to CTX because they express high levels of the detoxifying enzyme aldehyde dehydrogenase (ALDH). CTX targets proliferating lymphocytes, as lymphocytes (but not hematopoietic stem cells) express only low levels of ALDH, and cycling cells are most sensitive to DNA alkylation agents.
  • ALDH aldehyde dehydrogenase
  • CTX ⁇ 200 mg/kg
  • These low doses are sub-therapeutic and do not have a direct anti-tumor activity.
  • high doses of CTX inhibit the anti-tumor response.
  • CTX Several mechanisms may explain the role of CTX in potentiation of anti-tumor immune response: (a) depletion of CD4+CD25+FoxP3+ Treg (and specifically proliferating Treg, which may be especially suppressive), (b) depletion of B lymphocytes; (c) induction of nitric oxide (NO), resulting in suppression of tumor cell growth; (d) mobilization and expansion of CD11b+Gr-1+ MDSC. These primary effects have numerous secondary effects; for example following Treg depletion macrophages produce more IFN- ⁇ and less IL-10. CTX has also been shown to induce type I IFN expression and promote homeostatic proliferation of lymphocytes.
  • Treg depletion is most often cited as the mechanism by which CTX potentiates the anti-tumor immune response. This conclusion is based in part by the results of adoptive transfer experiments. In the AB1-HA tumor model,
  • CTX treatment at Day 9 gives a 75% cure rate.
  • Transfer of purified Treg at Day 9 gives a 75% cure rate.
  • CTX is a safe, well-tolerated, and effective agent for promoting anti-tumor immune responses
  • the optimal dose for CTX to potentiate an anti-tumor immune response is one that lowers overall T cell counts by lowering Treg levels below the normal range but is subtherapeutic (see Machiels et al. Cancer Res. 61 :3689-3697 (2001)).
  • 300 mg/m 2 In human clinical trials where CTX has been used as an immunopotentiating agent, a dose of 300 mg/m 2 has usually been used. For an average male (6 ft, 170 pound (78 kg) with a body surface area of 1.98 m 2 ), 300 mg/m 2 is 8 mg/kg, or 624 mg of total protein. In mouse models of cancer, efficacy has been seen at doses ranging from 15 - 150 mg/kg, which relates to 0.45 - 4.5 mg of total protein in a 3Og mouse (Machiels et al. Cancer Res. 61 :3689-3697 (2001), Hengst et al Cancer Res. 41 :2163-2167 (1981), Hengst Cancer Res. 40:2135-2141 (1980)).
  • mg/m 2 doses may be used but unit doses administered over a finite time interval may be preferred.
  • unit doses may be administered on a daily basis for a finite time period, such as up to 3 days, or up to 5 days, or up to 7 days, or up to 10 days, or up to 15 days or up to 20 days or up to 25 days, are all specifically contemplated by the invention.
  • the same regimen may be applied for the other potentiating agents recited herein.
  • administrations may occur before or after administration of a PD-1 binding molecule of the invention.
  • administration of one or more doses of a PD-1 binding molecule of the invention may be temprally staggered with the administration of potentiating agent to form a uniform or non-uniform course of treatment whereby one or more doses of potentiating agent are administered, followed by one or more doses of a PD-1 binding compound, followed by one or more doses of potentiating agent, all according to whatever schedule is selected or desired by the researcher or clinician administering said agents.
  • the treatment regimen includes multiple administrations of one or more PD-1 antagonists.
  • such multiple administrations of PD-1 antagonists are in conjunction with multiple administrations of the same or different potentiating agents.
  • the potentiating agent is administered at least 1 , 2, 3, 5, 10, 15, 20, 24 or 30 hours prior to or after administering of the PD-1 -antagonist.
  • compositions useful herein also contain a pharmaceutically acceptable carrier, including any suitable diluent or excipient, which includes any pharmaceutical agent that does not itself induce the production of antibodies harmful to the individual receiving the composition, and which may be administered without undue toxicity.
  • Pharmaceutically acceptable carriers include, but are not limited to, liquids such as water, saline, glycerol and ethanol, and the like, including carriers useful in forming sprays for nasal and other respiratory tract delivery or for delivery to the ophthalmic system.
  • Vaccine compositions may further incorporate additional substances to stabilize pH, or to function as adjuvants, wetting agents, or emulsifying agents, which can serve to improve the effectiveness of the vaccine.
  • Vaccines are generally formulated for parenteral administration and are injected either subcutaneously or intramuscularly. Such vaccines can also be formulated as suppositories or for oral administration, using methods known in the art, or for administration through nasal or respiratory routes.
  • Isolated PD-1 antagonist polypeptides including variants, homologs and fragments thereof, either wild-type or mutated, and fusion proteins comprising any of these, all contemplated for use in the invention, can be obtained by, for example, chemical synthesis or by recombinant production in a host cell.
  • a nucleic acid containing a nucleotide sequence encoding the polypeptide can be used to transform, transduce, or transfect a bacterial or eukaryotic host cell (e.g., an insect, yeast, or mammalian cell).
  • nucleotide sequences can be codon-optimized to increase levels of protein expression in a particular kind of host cell. Methods for codon optimization are well known in the art.
  • nucleic acid constructs include a regulatory sequence operably linked to a nucleotide sequence encoding a costimulatory polypeptide. Regulatory sequences (also referred to herein as expression control sequences) typically do not encode a gene product, but instead affect the expression of the nucleic acid sequences to which they are operably linked.
  • the signal peptides used to secrete proteins from a cell can be the endogenous signal peptides or any other signal peptide that facilitates secretion of the fusion protein from a host.
  • Diseases to be treated or prevented by administering a therapeutic combination provided by the present invention include a malignant tumor or a chronic infectious disease caused by a bacterium, virus, protozoan, helminth, or other microbial pathogen that enters intracellular ⁇ . Such diseases are often combatted through attack by cytotoxic T lymphocytes. Because the present invention provides combination therapes useful in enhancing T cell responses, through increased T cell activity, increased T cell proliferation and reduced T cell inhibitory signals, the combination therapies of the invention have unique advantage in treating (or even preventing) such diseases. In one embodiment, because viral infections are cleared primarily by T- cells, an increase in T-cell activity is therapeutically useful in enhancing clearance of an infective viral agent from an animal or primate, preferably human, subject.
  • the disclosed compounds of the invention with PD-1 receptor antagonist activity, together with a potentiating agent work in combination for the treatment of local or systemic viral infections.
  • Infections that are to be treated by the compounds of the invention include, but are not limited to, immunodeficiency (e.g., HIV), papilloma (e.g., HPV), herpes (e.g., HSV), encephalitis, influenza (e.g., human influenza virus A), hepatitis (e.g. HCV, HBV), and common cold (e.g., human rhinovirus) viral infections.
  • Pharmaceutical formulations of PD-1 receptor antagonists compositions can also be administered to treat systemic viral diseases, including, but not limited to, AIDS, influenza, the common cold, or encephalitis.
  • Non-viral infections treatable by the compounds of the invention include, but are not limited to, infections cause by microoganisms including, but not limited to, Actinomyces, Anabaena, Bacillus, Bacteroides, Bdellovibrio, Bordetella, Borrelia, Campylobacter, Caulobacter, Chlamydia, Chlorobium, Chromatium, Clostridium, Corynebacterium, Cytophaga, Deinococcus, Escherichia, Francisella, Halobacterium, Heliobacter, Haemophilus, Hemophilus influenza type B (HIB), Hyphomicrobium, Legionella, Leptspirosis, Listeria, Meningococcus A, B and C, Methanobacterium, Micrococcus, Myobacterium, Mycoplasma, Myxococcus, Neisseria, Nitrobacter, Oscillatoria, Prochloron, Proteus, Pseudomonas, Phodos
  • the present invention provides methods and compositions for inducing or enhancing an immune response in host for treating cancer.
  • the types of cancer that may be treated with the provided compositions and methods include, but are not limited to, the following: bladder, brain, breast, cervical, colo-rectal, esophageal, kidney, liver, lung, nasopharangeal, pancreatic, prostate, skin, stomach, uterine, ovarian testicular, and hematologic cancer.
  • Malignant tumors which may be treated are classified herein according to the embryonic origin of the tissue from which the tumor is derived.
  • Carcinomas are tumors arising from endodermal or ectodermal tissues such as skin or the epithelial lining of internal organs and glands.
  • Sarcomas which arise less frequently, are derived from mesodermal connective tissues such as bone, fat, and cartilage.
  • the leukemias and lymphomas are malignant tumors of hematopoietic cells of the bone marrow. Leukemias proliferate as single cells, whereas lymphomas tend to grow as tumor masses. Malignant tumors may show up at numerous organs or tissues of the body to establish a cancer.
  • the murine analog of B7-DC-lg (in which the mouse B7-DC ECD, which shares 72% sequence identity with the human protein, is fused to the Fc domain of mouse lgG 2a ) tested in syngeneic mouse tumor models for colon cancer, mastocytoma, and other tumor types incorporating a cyclophosphamide (CTX) pre-treatment as described herein.
  • CTX cyclophosphamide
  • CTX which acts as an immunopotentiating agent
  • murine B7-DC- IG eradicates established CT26 colon carcinoma tumors in up to 80% of the animals. Further, in CT26 colon carcinoma tumor re-challenge studies, no tumor re-growth was detected in mice that had previously eradicated tumor following CTX + murine B7-DC-lg treatment. These mice were also shown to have an increased tumor-specific CTL population relative to na ⁇ ve mice.
  • the present invention contemplates use of a compound that reduces inhibitory signal transduction in a T cell, as described elsewhere herein, in the manufacture of a medicament for increasing a T cell response by combination therapy wherein said compound is administered in conjunction with a potentiating agent.
  • the compound that reduces inhibitory signal transduction in a T cell and said potentiating agent are provided as separate medicaments for administration at different times, preferably where the potentiating agent is administered prior to the compound that reduces inhibitory signal transduction, for example, up to 24 hours prior to the inhibitory compound (or other time intervals recited herein).
  • the compound and potentiating agent are for use in the treatment of an infectious disease or cancer, including diseases caused by any of the infectious agents or cancers recited elsewhere herein.
  • a compound useful in these methods is a recombinant protein composed of the ECD of human B7-DC fused to the Fc domain of human IgGi, referred to herein as B7-DC-lg.
  • the present invention relates to a medical kit for administering a compound that reduces inhibitory signal transduction in a T cell, as disclosed herein, in combination with a potentiating agent, said kit comprising:
  • Vaccines require strong T cell response to eliminate cancer cells and infected cells or infectious agents.
  • PD-1 receptor antagonists described herein can be administered as a component of a vaccine, along with a potentiating agent, to provide a costimulatory signal to T cells.
  • Vaccines disclosed herein include antigens, a PD-1 receptor antagonist and optionally adjuvants and targeting molecules.
  • the antigens against which the T cell response is enhanced by the methods and composition of the invention includes peptides, proteins, polysaccharides, saccharides, lipids, nucleic acids, or combinations thereof.
  • the antigens, in the case of disease, are present due to the disease process.
  • the disclosed PD-1 receptor antagonists compositions may be administered in conjunction with prophylactic vaccines, which confer resistance in a subject to subsequent exposure to infectious agents, or in conjunction with therapeutic vaccines, which can be used to initiate or enhance a subject's immune response to a pre-existing antigen, such as a tumor antigen in a subject with cancer, or a viral antigen in a subject infected with a virus.
  • prophylactic vaccines which confer resistance in a subject to subsequent exposure to infectious agents
  • therapeutic vaccines which can be used to initiate or enhance a subject's immune response to a pre-existing antigen, such as a tumor antigen in a subject with cancer, or a viral antigen in a subject infected with a virus.
  • the desired outcome of a prophylactic, therapeutic or de-sensitized immune response may vary according to the disease, based on principles well known in the art.
  • an immune response against an infectious agent may completely prevent colonization and replication of an infectious agent, affecting "sterile immunity" and the absence of any disease symptoms.
  • a vaccine against infectious agents may be considered effective if it reduces the number, severity or duration of symptoms; if it reduces the number of individuals in a population with symptoms; or reduces the transmission of an infectious agent.
  • immune responses against cancer, allergens or infectious agents may completely treat a disease, may alleviate symptoms, or may be one facet in an overall therapeutic intervention against a disease.
  • the stimulation of an immune response against a cancer may be coupled with surgical, chemotherapeutic, radiologic, hormonal and other immunologic approaches in order to affect treatment.
  • the methods and products of the invention do not preclude use of an adjuvant in addition to the potentiating agent.
  • adjuvant may be administered, for example, along with the PD-1 antagonist.
  • the adjuvants useful in the compositions and methods of the invention include, but are not limited to, one or more of the following: oil emulsions (e.g., Freund's adjuvant); saponin formulations; virosomes and viral-like particles; bacterial and microbial derivatives; immunostimulatory oligonucleotides; ADP-ribosylating toxins and detoxified derivatives; alum; BCG; mineral-containing compositions (e.g., mineral salts, such as aluminium salts and calcium salts, hydroxides, phosphates, sulfates, etc.); bioadhesives and/or mucoadhesives; microparticles; liposomes; polyoxyethylene ether and polyoxyethylene ester formulations; muramyl peptides
  • Useful adjuvants also include immunomodulators such as cytokines, interleukins (e.g., IL-1 , IL-2, IL-4, IL-5, IL-6, IL-7, IL-12, etc.), interferons (e.g., interferon- ⁇ ), macrophage colony stimulating factor, and tumor necrosis factor.
  • immunomodulators such as cytokines, interleukins (e.g., IL-1 , IL-2, IL-4, IL-5, IL-6, IL-7, IL-12, etc.), interferons (e.g., interferon- ⁇ ), macrophage colony stimulating factor, and tumor necrosis factor.
  • PD-1 receptor antagonist including any of the polypeptides, fragments, variants, homologs and fusion proteins disclosed herein, from being administered to a subject in need thereof in combination with one or more additional therapeutic agents (in addition to the potentiating agent).
  • additional therapeutic agents are selected based on the condition, disorder or disease to be treated.
  • PD-1 receptor antagonists can be co-administered with one or more additional agents that function to enhance or promote an immune response, and which are considered herein as active agents.
  • Such agents include, but are not limited to, amsacrine, bleomycin, busulfan, capecitabine, carboplatin, carmustine, chlorambucil, cisplatin, cladribine, clofarabine, crisantaspase, cytarabine, dacarbazine, dactinomycin, daunorubicin, docetaxel, doxorubicin, epirubicin, etoposide, fludarabine, fluorouracil, gemcitabine, hydroxycarbamide, idarubicin, ifosfamide, irinotecan, leucovorin, liposomal doxorubicin, liposomal daunorubicin, lomustine, melphalan, mercaptopurine, mesna, methotrexate, mitomycin, mitoxantrone, oxaliplatin, paclitaxel, pemetrexed, pentostatin, pro
  • the therapies provided by the methods and compositions of the present invention may also be used in conjunction with other types of therapies, such as radiation treatments, surgery, and the like.
  • the present invention recites a number specific structures useful in practicing the methods of the invention.
  • Other compounds possessing antagonist activity and being useful in the methods of the invention may also be identified by reference to well known assay procedures for identifying chemical structures that bind to PD-1 , CTLA4, and ligands of any of these and that also possess the ability to reduce inhibitory signal transduction in T cells.
  • Some such assays are binding assays useful in determining if a selected chemical structure binds to receptors; these are well known in the art and need not be discussed in detail herein (see, for example, U.S. 2008/0274490, (pub. 6 November 2008) and U.S.
  • PD-1 binding activity of human B7-DC-lg was assessed by ELISA.
  • 96-well ELISA plates were coated with 100 uL 0.75 ug/mL recombinant human PD-1/Fc (R&D Systems) diluted in BupH Carbonate/Bicarbonate pH 9.4 buffer (Pierce) for 2 hours and then blocked with BSA solution (Jackson ImmunoResearch) for 90-120 minutes.
  • Serially diluted human B7-DC-lg wild type, as well as D111 S mutein, and K113S mutants that were selected for reduced binding to PD-1
  • human IgGI isotype control were allowed to bind for 90 minutes.
  • Bound B7-DC-lg was detected using 100 uL of 0.5 ug/mL biotin conjugated anti-human B7-DC clone MIH 18 (eBioscience) followed by 1 :1000 diluted HRP-Streptavidin (BD Bioscience) and TMB substrate (BioFX). Absorbance at 450 nm was read using a plate reader (Molecular Devices) and data were analyzed in SoftMax using a 4-parameter logistic fit. The data showed that human B7-DC-lg (wildtype) bound to PD-1 but the K113S and D111 S mutants do not bind to PD-1.
  • buffers, media, reagents, cells, culture conditions and the like are not intended to be limiting, but are to be read so as to include all related materials that one of ordinary skill in the art would recognize as being of interest or value in the particular context in which that discussion is presented. For example, it is often possible to substitute one buffer system or culture medium for another and still achieve similar, if not identical, results. Those of skill in the art will have sufficient knowledge of such systems and methodologies so as to be able, without undue experimentation, to make such substitutions as will optimally serve their purposes in using the methods and procedures disclosed herein.
  • B7-DC-lg binds to PD01 expressing CHO cells
  • B7-DC-lg was first conjugated with allophycocyanin (APC) and then incubated at various concentrations with a CHO cell line constitutively expressing PD-1 or parent CHO cells that do not express PD-1. Binding was analyzed by flow cytometry. Figure 1 shows the median fluorescence intensity
  • B7-DC-lg-APC binds to CHO.
  • PD-1 cells solid circle
  • untransfected CHO cells gray triangle
  • Example 2 B7-DC-lg competes with B7-H1 for binding to PD-1.
  • B7-DC-lg at various concentrations was first incubated with a CHO cell line constitutively expressing PD-1 before adding B7-H1 -Ig-APC to the probe and cell mixture.
  • Figure 2 shows the median fluorescence intensity (MFI) of B7- HI-Fc-APC is shown as a function of the concentration of unlabeled B7-DC-lg competitor (x-axis) added.
  • MFI median fluorescence intensity
  • Mouse colorectal tumor cell line, CT26 was obtained from ATCC.
  • a master cell bank at Passage 4 was generated following ATCC guidelines. Cells were tested and confirmed no mycoplasma and other pathogen contamination.
  • One vial of tumor cells was thawed from the cryopreserved stocks and grown for two passages prior to inoculation.
  • CT26 cells were split at 1 :5 dilution with 30 ml_ complete medium (RPMI + 10% FBS, 2 mM L-GIu 1 and 1x P/S) for two days culture or at
  • CT26 cells were harvested by aspirating medium, rinsing the flask with
  • Cell number and viability of the inoculated cells were analyzed by trypan blue dye staining with proper dilution (e.g. 1 :5 dilution, 10 ⁇ L cells + 40 ⁇ L trypan blue) and confirmed by NOVA cell count during the last wash step. Cell viability generally was greater than 95% for inoculation.
  • CT26 cells were diluted to 6.7x10 5 cells/mL for initial inoculation with plain RPMI and stored on ice. Typically each mouse was inoculated with 150 ⁇ L (1 x10 5 cells). On Day 9, all the tumor-bearing mice were first grouped into a rat cage and randomly divided the mice to experimental groups.
  • CTX solution was reconstituted by 1x PBS to 4 mg/mL Mice were intraperitoneal ⁇ (IP) injected with 0.5 ml_ of CTX solution resulting in 2 mg for a 20 gram mouse, i.e. 100 mg/kg.
  • IP intraperitoneal ⁇
  • mice were IP injected with 0.5 ml_ of B7-DC-lg (0.2 mg/mL) resulting in 0.1 mg for a 20 gram mouse, i.e. 5 mg/kg. The same dose was given 2 time a week for 4 weeks, total 8 doses. Tumor growth were monitored by measuring the tumor twice weekly, starting on the day when giving B7-DC-lg via a digital caliper. Tumor volume was calculated as following:
  • Tumor volume ⁇ (D short ) 2 * (D
  • Ong )/6 -0.52 x (D shO rt) 2 * (D
  • mice were euthanized and taken off the study if the tumor volume reached 2000 mm 3 or if there were skin ulcers and infections at the tumor inoculation site.
  • Example 4 Combination of cyclophosphamide and B7-DC-lg can eradicate established tumors.
  • mice at age of 9 to 11 weeks were implanted subcutaneously with 1.0 x 10 5 CT26 colorectal tumor cells as described above. On day 10 post tumor implantation, mice received 100 mg/kg of cyclophosphamide. B7- DC-Ig treatment started 1 day later, on day 11. Mice were treated with 100 ug of B7-DC-lg, 2 doses per week, for 4 weeks and total 8 doses. 75% of the mice that received the CTX + B7-DC-lg treatment regimen eradicated the established tumors by Day 44, whereas all mice in the control CTX alone group died as a result of tumor growth or were euthanized because tumors exceeded the sizes approved by IACUC (results shown in Figure 3). These results demonstrate the effectiveness of the treatment regimen on established tumors and not mere prophylaxis.
  • Combination of cyclophosphamide and B7-DC-lg can eradicate established tumors and protect against tumor re-challenge.
  • Combination of cyclophosphamide and B7-DC-lg can generate tumor specific, memory cytotoxic T lymphocytes
  • Mice eradiated established CT26 colorectal tumors from the above described experiment were rechallenged with 2.5x10 5 CT26 cells on Day 44. Seven days later, mouse spleens were isolated.
  • Mouse splenocytes were pulsed with 5 or 50 ug/ml_ of ovalbumin (OVA) or AH 1 peptides for 6 hours in the presence of a Golgi blocker (BD BioScience).
  • Memory T effector cells were analyzed by assessing CD8 + /IFN ⁇ + T cells. Results in Figure 5 show that there were significant amount of CT26 specific T effector cells in the CT26 tumor-eradicated mice.
  • mice at age of 9 to 11 weeks were implanted subcutaneously with 1.0 x 10 5 CT26 colorectal tumor cells.
  • mice received a single dose of cyclophosphamide (100 mg/kg) and started treatment on Day 10 with 30, 100 or 300 ⁇ g of B7-DC-lg, 2 doses per week for 4 weeks, total 8 doses.
  • Figure 6 shows there were 70% of the mice eradicated the tumors at 300 ⁇ g, 40% tumor eradication with 100 ⁇ g, and 30 ⁇ g dose gave rise to 10% tumor eradication.
  • Combination of cyclophosphamide and anti-PD-1 can eradicate established tumors.
  • mice at age of 9 to 11 weeks were challenged subcutaneously with 1.0 x 10 5 CT26 colorectal tumor cells.
  • mice received a single dose of cyclophosphamide (100 mg/kg) and started treatment with anti-PD-1 antibody (250 ug, Clone G4, Hirano F. et al., 2005 Cancer Research) which was administered 3 times per week for four weeks.
  • anti-PD-1 antibody 250 ug, Clone G4, Hirano F. et al., 2005 Cancer Research
  • 70% of the mice that received the CTX + anti-PD-1 regimen eradicated established CT26 tumors at day 50 after tumor challenge, whereas all mice in the control and anti-PD-1 alone groups died as a result of tumor growth or were euthanized because tumors exceeded the sizes approved by IACUC.
  • Combination of cyclophosphamide and anti-CTLA4 can eradicate established tumors.
  • mice at age of 9 to 11 weeks were challenged subcutaneously with 1.0 x 10 5 CT26 colorectal tumor cells. On day 11 post tumor challenge, mice received 100 mg/kg of cyclophosphamide.
  • Anti-CTLA4 an anti-mouse CTLA4 from hamster hybridoma - ATCC deposit UC10-4F10-11
  • Anti-CTLA4 an anti-mouse CTLA4 from hamster hybridoma - ATCC deposit UC10-4F10-11
  • Mice were treated with 100 ug of anti- CTLA4, 2 doses per week, for 4 weeks. 56% of the mice that received the CTX + anti-CTLA4 regimen were tumor free at day 50 after tumor challenge, whereas all mice in the control group died as a result of tumor growth or were euthanized because tumors exceeded the sizes approved by IACUC. Results are shown in Figure 8. These results show the effectiveness of the treatment regimen on established tumors and not mere prophylaxis.
  • Figure 9 shows the results of experiments wherein Balb/C mice at age of 9 to 11 weeks of age were implanted with 1 X 10 5 CT26 cells subcutaneously. On Day 9, mice were injected with 100 mg/kg of CTX, IP. Twenty four hours later, on Day 10, mice were treated with 100 ug of B7-DC- Ig. There were 5 groups: na ⁇ ve mice that did not receive any tumor cells, vehicle injected, CTX alone, CTX + B7-DC-lg or B7-DC-lg alone. Two naive mice and 4 mice from other groups were removed from the study on Day 11 (2 days post CTX) and Day 16 (7 days post CTX) for T cell analysis.
  • Example 11 Combination of cyclophosphamide and B7-DC-lg can promote mouse survival in a metastatic prostate tumor model B10.D2 mice at age of 9 to 11 weeks were injected intravenously with 3.0 x 10 5 SP-1 cells, which were isolated from lung metastasis post parent TRAMP cell injection.
  • the CTX mice received 3 doses of CTX, 50 mg/kg, on Day 5, 12 and 19.
  • the B7-DC-lg treated mice received 3 doses of B7-DC-lg, 5 mg/kg, on Day 6, 13 and 20.
  • On Day 100 17% of mice in the control groups, no-treated, CTX alone, B7-DC-lg alone survived while 43% of the mice received combination of CTX and B7-DC-lg survived. Results are shown in Figure 10.
  • Combination of Listeria cancer vaccine and B7-DC-lg can enhance mouse survival post CT26 liver implantation
  • mice received 1 injection of CTX at 50 mg/kg, IP.
  • mice were treated with recombinant
  • LD 50 (1x10 7 CFU), then on Day 14 and 17. Mice were also treated with B7- DC-Ig on Day 1 1 and then on Day 18. Figire 1 1 shows mice without any treatment or treated with CTX and Listeria cancer vaccine all died before
  • Cyclophosphamide, doxorubicin, and paclitaxel enhance the antitumor immune response of granulocyte/macrophage- colony stimulating factor-secreting whole-cell vaccines in HER-2/neu tolerized mice. Cancer Res. 2001 May 1 ;61 (9):3689-97

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Cited By (76)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8039589B1 (en) 2002-10-04 2011-10-18 Mayo Foundation For Medical Education And Research B7-DC variants
CN102298053A (zh) * 2011-05-20 2011-12-28 中山大学肿瘤防治中心 原发性肝细胞肝癌术后复发风险评估的组合抗体试剂盒
US8114845B2 (en) 2008-08-25 2012-02-14 Amplimmune, Inc. Compositions of PD-1 antagonists and methods of use
WO2012168944A1 (en) * 2011-06-08 2012-12-13 Aurigene Discovery Technologies Limited Therapeutic compounds for immunomodulation
US8445447B2 (en) 2007-07-13 2013-05-21 The Johns Hopkins University B7-DC variants immunogenic compositions and methods of use thereof
US8460927B2 (en) 1999-11-30 2013-06-11 Mayo Foundation For Medical Education And Research B7-H1 antibodies and method of use
WO2013176915A1 (en) * 2012-05-25 2013-11-28 Roman Galetto Methods for engineering allogeneic and immunosuppressive resistant t cell for immunotherapy
WO2014008218A1 (en) 2012-07-02 2014-01-09 Bristol-Myers Squibb Company Optimization of antibodies that bind lymphocyte activation gene-3 (lag-3), and uses thereof
EP2504028A4 (en) * 2009-11-24 2014-04-09 Amplimmune Inc SIMULTANEOUS INHIBITION OF PD-L1 / PD-L2
US8747833B2 (en) 2004-10-06 2014-06-10 Mayo Foundation For Medical Education And Research B7-H1 and methods of diagnosis, prognosis, and treatment of cancer
JP2014525918A (ja) * 2011-08-01 2014-10-02 ジェネンテック, インコーポレイテッド Pd−1軸結合アンタゴニストとmek阻害剤を使用する癌の治療方法
WO2014194293A1 (en) 2013-05-30 2014-12-04 Amplimmune, Inc. Improved methods for the selection of patients for pd-1 or b7-h4 targeted therapies, and combination therapies thereof
EP2910572A1 (en) * 2010-11-11 2015-08-26 The University of Hong Kong Soluble pd-1 variants, fusion constructs, and uses thereof
US9370565B2 (en) 2000-04-28 2016-06-21 The Johns Hopkins University Dendritic cell co-stimulatory molecules
WO2017025498A1 (en) 2015-08-07 2017-02-16 Pieris Pharmaceuticals Gmbh Novel fusion polypeptide specific for lag-3 and pd-1
WO2017055404A1 (en) 2015-10-02 2017-04-06 F. Hoffmann-La Roche Ag Bispecific antibodies specific for pd1 and tim3
WO2017055443A1 (en) 2015-10-02 2017-04-06 F. Hoffmann-La Roche Ag Anti-pd1 antibodies and methods of use
US9616114B1 (en) 2014-09-18 2017-04-11 David Gordon Bermudes Modified bacteria having improved pharmacokinetics and tumor colonization enhancing antitumor activity
US9683048B2 (en) 2014-01-24 2017-06-20 Novartis Ag Antibody molecules to PD-1 and uses thereof
EP3087099A4 (en) * 2013-12-23 2017-07-19 Oncomed Pharmaceuticals, Inc. Immunotherapy with binding agents
EP3243832A1 (en) 2016-05-13 2017-11-15 F. Hoffmann-La Roche AG Antigen binding molecules comprising a tnf family ligand trimer and pd1 binding moiety
US9895441B2 (en) 2012-05-31 2018-02-20 Genentech, Inc. Methods of treating cancer using PD-L1 axis binding antagonists and VEGF antagonists
US9920123B2 (en) 2008-12-09 2018-03-20 Genentech, Inc. Anti-PD-L1 antibodies, compositions and articles of manufacture
WO2018083204A1 (en) 2016-11-02 2018-05-11 Engmab Sàrl Bispecific antibody against bcma and cd3 and an immunological drug for combined use in treating multiple myeloma
WO2018134279A1 (en) 2017-01-18 2018-07-26 Pieris Pharmaceuticals Gmbh Novel fusion polypeptides specific for lag-3 and pd-1
WO2018185043A1 (en) 2017-04-05 2018-10-11 F. Hoffmann-La Roche Ag Bispecific antibodies specifically binding to pd1 and lag3
US10167336B2 (en) 2013-03-14 2019-01-01 Mayo Foundation For Medical Education And Research Methods and materials for treating cancer
US10188729B2 (en) 2013-08-20 2019-01-29 Merck Sharp & Dohme Corp. Modulation of tumor immunity
EP3444271A1 (en) 2013-08-08 2019-02-20 Cytune Pharma Il-15 and il-15raplha sushi domain based modulokines
US10259875B2 (en) 2013-10-01 2019-04-16 Mayo Foundation For Medical Education And Research Methods for treating cancer in patients with elevated levels of BIM
US10302653B2 (en) 2014-05-22 2019-05-28 Mayo Foundation For Medical Education And Research Distinguishing antagonistic and agonistic anti B7-H1 antibodies
WO2019149716A1 (en) 2018-01-31 2019-08-08 F. Hoffmann-La Roche Ag Bispecific antibodies comprising an antigen-binding site binding to lag3
US10457725B2 (en) 2016-05-13 2019-10-29 Regeneron Pharmaceuticals, Inc. Methods of treating skin cancer by administering a PD-1 inhibitor
US10472419B2 (en) 2014-01-31 2019-11-12 Novartis Ag Antibody molecules to TIM-3 and uses thereof
WO2019229699A1 (en) 2018-05-31 2019-12-05 Novartis Ag Hepatitis b antibodies
WO2019234576A1 (en) 2018-06-03 2019-12-12 Lamkap Bio Beta Ltd. Bispecific antibodies against ceacam5 and cd47
US10517875B2 (en) 2014-07-23 2019-12-31 Mayo Foundation for Medical Engineering and Research Targeting DNA-PKcs and B7-H1 to treat cancer
WO2020021061A1 (en) 2018-07-26 2020-01-30 Pieris Pharmaceuticals Gmbh Humanized anti-pd-1 antibodies and uses thereof
US10570204B2 (en) 2013-09-26 2020-02-25 The Medical College Of Wisconsin, Inc. Methods for treating hematologic cancers
WO2020043683A1 (en) 2018-08-27 2020-03-05 Pieris Pharmaceuticals Gmbh Combination therapies comprising cd137/her2 bispecific agents and pd-1 axis inhibitors and uses thereof
WO2020053742A2 (en) 2018-09-10 2020-03-19 Novartis Ag Anti-hla-hbv peptide antibodies
EP3659622A1 (en) 2013-08-08 2020-06-03 Cytune Pharma Combined pharmaceutical composition
US10730951B2 (en) 2014-03-31 2020-08-04 Genentech, Inc. Anti-OX40 antibodies and methods of use
US10737113B2 (en) 2014-01-23 2020-08-11 Regeneron Pharmaceuticals, Inc. Human antibodies to PD-1
US10875923B2 (en) 2015-10-30 2020-12-29 Mayo Foundation For Medical Education And Research Antibodies to B7-H1
US10946093B2 (en) 2014-07-15 2021-03-16 Genentech, Inc. Methods of treating cancer using PD-1 axis binding antagonists and MEK inhibitors
WO2021053587A1 (en) 2019-09-18 2021-03-25 Klaus Strein Bispecific antibodies against ceacam5 and cd3
EP3831849A1 (en) 2019-12-02 2021-06-09 LamKap Bio beta AG Bispecific antibodies against ceacam5 and cd47
US11065285B2 (en) 2012-01-25 2021-07-20 Dnatrix, Inc. Biomarkers and combination therapies using oncolytic virus and immunomodulation
US11077144B2 (en) 2013-05-13 2021-08-03 Cellectis CD19 specific chimeric antigen receptor and uses thereof
US11078282B2 (en) 2016-04-15 2021-08-03 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11096988B2 (en) 2017-03-16 2021-08-24 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
CN113354710A (zh) * 2016-12-09 2021-09-07 复诺健生物科技加拿大有限公司 用于抑制cd279相互作用的组合物和方法
US11117970B2 (en) 2014-01-23 2021-09-14 Regeneron Pharmaceuticals, Inc. Human antibodies to PD-L1
US11180535B1 (en) 2016-12-07 2021-11-23 David Gordon Bermudes Saccharide binding, tumor penetration, and cytotoxic antitumor chimeric peptides from therapeutic bacteria
US11236175B2 (en) 2012-10-10 2022-02-01 Sangamo Therapeutics, Inc. T cell modifying compounds and uses thereof
US11319359B2 (en) 2015-04-17 2022-05-03 Alpine Immune Sciences, Inc. Immunomodulatory proteins with tunable affinities
US11344620B2 (en) 2014-09-13 2022-05-31 Novartis Ag Combination therapies
WO2022130348A1 (en) 2020-12-18 2022-06-23 Lamkap Bio Beta Ag Bispecific antibodies against ceacam5 and cd47
US11413331B2 (en) 2017-04-03 2022-08-16 Hoffmann-La Roche Inc. Immunoconjugates
US11447537B2 (en) 2016-10-27 2022-09-20 Io Biotech Aps PDL2 compounds
WO2023012147A1 (en) 2021-08-03 2023-02-09 F. Hoffmann-La Roche Ag Bispecific antibodies and methods of use
US11603407B2 (en) 2017-04-06 2023-03-14 Regeneron Pharmaceuticals, Inc. Stable antibody formulation
WO2023242351A1 (en) 2022-06-16 2023-12-21 Lamkap Bio Beta Ag Combination therapy of bispecific antibodies against ceacam5 and cd47 and bispecific antibodies against ceacam5 and cd3
US12054557B2 (en) 2015-12-22 2024-08-06 Regeneron Pharmaceuticals, Inc. Combination of anti-PD-1 antibodies and bispecific anti-CD20/anti-CD3 antibodies to treat cancer
WO2024163477A1 (en) 2023-01-31 2024-08-08 University Of Rochester Immune checkpoint blockade therapy for treating staphylococcus aureus infections
WO2025042742A1 (en) 2023-08-18 2025-02-27 Bristol-Myers Squibb Company Compositions comprising antibodies that bind bcma and cd3 and methods of treatment
US12252535B2 (en) 2014-03-14 2025-03-18 Novartis Ag Antibody molecules to LAG-3 and uses thereof
US12257286B2 (en) 2018-10-31 2025-03-25 Mayo Foundation For Medical Education And Research Methods and materials for treating cancer
US12264189B2 (en) 2018-10-31 2025-04-01 Mayo Foundation For Medical Education And Research Methods and materials for treating cancer
US12378536B1 (en) 2015-05-11 2025-08-05 David Bermudes Chimeric protein toxins for expression by therapeutic bacteria
WO2026003224A2 (en) 2024-06-26 2026-01-02 Iomx Therapeutics Ag Bispecific antigen binding proteins (abp) targeting immune checkpoint molecules and both leukocyte immunoglobulin-like receptor subfamily b1 (lilrb1) and lilrb2; combinations and uses thereof
US12600777B2 (en) 2015-07-29 2026-04-14 Novartis Ag Combination therapies comprising antibody molecules to LAG-3
US12624087B2 (en) 2016-07-28 2026-05-12 Alpine Immune Sciences, Inc. CD155 variant immunomodulatory proteins and uses thereof
US12624086B2 (en) 2018-10-31 2026-05-12 Mayo Foundation For Medical Education And Research Materials and methods for treating cancer
US12630633B2 (en) 2016-12-16 2026-05-19 Novartis Ag Antibody molecules to PD-1 and uses thereof

Families Citing this family (553)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
PL2161336T5 (pl) * 2005-05-09 2017-10-31 Ono Pharmaceutical Co Ludzkie przeciwciała monoklonalne przeciwko białku Programmed Death 1 (PD-1) oraz sposoby leczenia raka z zastosowaniem samych przeciwciał anty-PD-1 lub w połączeniu z innymi środkami immunoterapeutycznymi
MX2008007056A (es) 2005-12-02 2008-11-12 Sinai School Medicine Virus quimericos que presentan proteinas de superficie no nativas y usos de los mismos.
DK2347775T3 (da) 2005-12-13 2020-07-13 Harvard College Skabeloner til celletransplantation
JP2012500652A (ja) * 2008-08-25 2012-01-12 アンプリミューン、インコーポレーテッド 標的化共刺激ポリペプチドおよび癌を処置するための使用方法
PT2542590T (pt) * 2010-03-05 2017-08-31 Univ Johns Hopkins Composições e métodos para anticorpos e proteínas de fusão imunomoduladores direcionados
WO2011133636A1 (en) 2010-04-20 2011-10-27 Cedars-Sinai Medical Center COMBINATION THERAPY WITH CD4 LYMPHOCYTE DEPLETION AND mTOR INHIBITORS
US8907053B2 (en) 2010-06-25 2014-12-09 Aurigene Discovery Technologies Limited Immunosuppression modulating compounds
US9783578B2 (en) 2010-06-25 2017-10-10 Aurigene Discovery Technologies Limited Immunosuppression modulating compounds
WO2012018538A2 (en) * 2010-07-26 2012-02-09 Schering Corporation Bioassays for determining pd-1 modulation
EP3620185A1 (en) 2010-10-06 2020-03-11 President and Fellows of Harvard College Injectable, pore-forming hydrogels for materials-based cell therapies
US9675561B2 (en) 2011-04-28 2017-06-13 President And Fellows Of Harvard College Injectable cryogel vaccine devices and methods of use thereof
EP2701699B1 (en) 2011-04-28 2019-10-16 The Broad Institute, Inc. Inhibitors of histone deacetylase
WO2012177788A1 (en) * 2011-06-20 2012-12-27 La Jolla Institute For Allergy And Immunology Modulators of 4-1bb and immune responses
US10081684B2 (en) 2011-06-28 2018-09-25 Whitehead Institute For Biomedical Research Using sortases to install click chemistry handles for protein ligation
GB201120527D0 (en) * 2011-11-29 2012-01-11 Ucl Business Plc Method
WO2013155487A1 (en) 2012-04-12 2013-10-17 Yale University Vehicles for controlled delivery of different pharmaceutical agents
PT2838515T (pt) 2012-04-16 2020-02-25 Harvard College Composições de sílica mesoporosa para modular respostas imunológicas
AU2013263076B2 (en) 2012-05-15 2017-08-31 Bristol-Myers Squibb Company Cancer immunotherapy by disrupting PD-1/PD-L1 signaling
JP6337255B2 (ja) 2012-07-27 2018-06-06 ザ ブロード インスティテュート, インコーポレーテッドThe Broad Institute, Inc. ヒストンデアセチラーゼの阻害剤
US20150250837A1 (en) * 2012-09-20 2015-09-10 Morningside Technology Ventures Ltd. Oncolytic virus encoding pd-1 binding agents and uses of the same
US9657082B2 (en) 2013-01-31 2017-05-23 Thomas Jefferson University PD-L1 and PD-L2-based fusion proteins and uses thereof
WO2014122271A1 (en) * 2013-02-07 2014-08-14 INSERM (Institut National de la Santé et de la Recherche Médicale) Methods for predicting the survival time of patients suffering from diffuse large b-cell lymphomas
US9573988B2 (en) 2013-02-20 2017-02-21 Novartis Ag Effective targeting of primary human leukemia using anti-CD123 chimeric antigen receptor engineered T cells
LT2958943T (lt) 2013-02-20 2020-01-27 The Trustees Of The University Of Pennsylvania Vėžio gydymas, naudojant humanizuotą anti-egfrviii chimerinio antigeno receptorių
WO2014127917A1 (en) 2013-02-22 2014-08-28 Curevac Gmbh Combination of vaccination and inhibition of the pd-1 pathway
BR122021025267B1 (pt) 2013-02-22 2023-12-05 Curevac Ag Partes de kit e composição farmacêutica compreendendo um inibidor da via de pd-1
EP2961419A4 (en) * 2013-02-26 2016-12-21 Rongfu Wang PHF20 AND JMJD3 COMPOSITIONS AND METHOD FOR USE IN CANCER IMMUNOTHERAPY
KR102222157B1 (ko) 2013-03-14 2021-03-03 이칸 스쿨 오브 메디슨 엣 마운트 시나이 뉴캐슬병 바이러스 및 이의 용도
TWI654206B (zh) 2013-03-16 2019-03-21 諾華公司 使用人類化抗-cd19嵌合抗原受體治療癌症
CA2909160C (en) 2013-04-09 2021-05-25 Lixte Biotechnology, Inc. Formulations of oxabicycloheptanes and oxabicycloheptenes
JP6742903B2 (ja) 2013-05-02 2020-08-19 アナプティスバイオ インコーポレイティッド プログラム死−1(pd−1)に対する抗体
EP2994530A4 (en) 2013-05-10 2016-11-16 Whitehead Biomedical Inst PROTEIN MODIFYING LIVING CELLS USING SORTASE
HK1222662A1 (zh) 2013-05-10 2017-07-07 Whitehead Institute For Biomedical Research 体外生产具有可分选蛋白的无核红细胞
US11311575B2 (en) 2013-05-13 2022-04-26 Cellectis Methods for engineering highly active T cell for immunotherapy
US9452217B2 (en) 2013-06-22 2016-09-27 Nitor Therapeutics Methods for potentiating immune response for the treatment of infectious diseases and cancer
AU2014323523B2 (en) 2013-09-20 2020-02-20 Bristol-Myers Squibb Company Combination of anti-LAG-3 antibodies and anti-PD-1 antibodies to treat tumors
KR102460800B1 (ko) 2013-11-01 2022-10-31 예일 유니버시티 면역요법용 모듈러 입자
WO2015066413A1 (en) 2013-11-01 2015-05-07 Novartis Ag Oxazolidinone hydroxamic acid compounds for the treatment of bacterial infections
CN105899232A (zh) 2013-11-13 2016-08-24 诺华股份有限公司 用于增强免疫应答的mTOR抑制剂
WO2015073746A2 (en) 2013-11-13 2015-05-21 Whitehead Institute For Biomedical Research 18f labeling of proteins using sortases
HUE046249T2 (hu) 2013-12-12 2020-02-28 Shanghai hengrui pharmaceutical co ltd PD-1 antitest, antigén-kötõ fragmense, és gyógyászati alkalmazása
WO2015095423A2 (en) * 2013-12-17 2015-06-25 Genentech, Inc. Combination therapy comprising ox40 binding agonists and pd-1 axis binding antagonists
CA2931684C (en) 2013-12-19 2024-02-20 Novartis Ag Human mesothelin chimeric antigen receptors and uses thereof
EP3092495B1 (en) * 2014-01-06 2020-11-25 Expression Pathology, Inc. Srm assay for pd-l1
CA3156357A1 (en) * 2014-01-06 2015-07-09 The Trustees Of The University Of Pennsylvania Pd1 and pdl1 antibodies and vaccine combinations and use of same for immunotherapy
JO3517B1 (ar) 2014-01-17 2020-07-05 Novartis Ag ان-ازاسبيرو الكان حلقي كبديل مركبات اريل-ان مغايرة وتركيبات لتثبيط نشاط shp2
WO2015120198A1 (en) * 2014-02-05 2015-08-13 Cedars-Sinai Medical Center Methods and compositions for treating cancer and infectious diseases
WO2015127501A1 (en) 2014-02-27 2015-09-03 Viralytics Limited Combination method for treatment of cancer
EP3114144A1 (en) * 2014-03-05 2017-01-11 Bristol-Myers Squibb Company Treatment of renal cancer using a combination of an anti-pd-1 antibody and another anti-cancer agent
US10618963B2 (en) 2014-03-12 2020-04-14 Yeda Research And Development Co. Ltd Reducing systemic regulatory T cell levels or activity for treatment of disease and injury of the CNS
ES3040431T3 (en) 2014-03-12 2025-10-31 Yeda Res & Dev Reducing systemic regulatory t cell levels or activity for treatment of disease and injury of the cns
US9394365B1 (en) 2014-03-12 2016-07-19 Yeda Research And Development Co., Ltd Reducing systemic regulatory T cell levels or activity for treatment of alzheimer's disease
ES2754239T3 (es) 2014-03-12 2020-04-16 Curevac Ag Combinación de vacunación y agonistas de OX40
US10519237B2 (en) 2014-03-12 2019-12-31 Yeda Research And Development Co. Ltd Reducing systemic regulatory T cell levels or activity for treatment of disease and injury of the CNS
EP3593812A3 (en) 2014-03-15 2020-05-27 Novartis AG Treatment of cancer using chimeric antigen receptor
CN106164072B (zh) 2014-03-24 2019-10-01 诺华股份有限公司 用于治疗细菌感染的单环内酰胺有机化合物
IL322264A (en) 2014-04-07 2025-09-01 Novartis Ag Cancer treatment using chimeric antigen receptor (CAR) against CD19
EP3137105A4 (en) 2014-04-30 2017-12-27 President and Fellows of Harvard College Combination vaccine devices and methods of killing cancer cells
RU2695332C2 (ru) 2014-05-15 2019-07-23 Бристол-Маерс Сквибб Компани Лечение рака легкого с помощью комбинации антитела против pd-1 и другого противоракового средства
DK3148579T3 (da) 2014-05-28 2021-03-08 Agenus Inc Anti-gitr antistoffer og fremgangsmåder til anvendelse deraf
TWI693232B (zh) 2014-06-26 2020-05-11 美商宏觀基因股份有限公司 與pd-1和lag-3具有免疫反應性的共價結合的雙抗體和其使用方法
US9777061B2 (en) 2014-07-21 2017-10-03 Novartis Ag Treatment of cancer using a CD33 chimeric antigen receptor
US11542488B2 (en) 2014-07-21 2023-01-03 Novartis Ag Sortase synthesized chimeric antigen receptors
WO2016014530A1 (en) 2014-07-21 2016-01-28 Novartis Ag Combinations of low, immune enhancing. doses of mtor inhibitors and cars
US20170209492A1 (en) 2014-07-31 2017-07-27 Novartis Ag Subset-optimized chimeric antigen receptor-containing t-cells
JP2017523213A (ja) 2014-08-06 2017-08-17 ノバルティス アーゲー 抗菌薬としてのキノロン誘導体
KR101940430B1 (ko) * 2014-08-07 2019-01-18 가꼬우호우징 효고 이카다이가쿠 Il-18과 분자 표적 항체를 병용하는 암 치료약
PL3177640T3 (pl) * 2014-08-08 2020-11-02 The Board Of Trustees Of The Leland Stanford Junior University Charakteryzujące się wysokim powinowactwem środki terapeutyczne naśladujące PD-11 i sposoby ich wykorzystania
WO2016025880A1 (en) 2014-08-14 2016-02-18 Novartis Ag Treatment of cancer using gfr alpha-4 chimeric antigen receptor
SG11201700770PA (en) 2014-08-19 2017-03-30 Novartis Ag Anti-cd123 chimeric antigen receptor (car) for use in cancer treatment
EP3193931B1 (en) * 2014-09-16 2020-08-05 Innate Pharma Neutralization of inhibitory pathways in lymphocytes
ES2891332T3 (es) 2014-09-17 2022-01-27 Novartis Ag Direccionamiento a células citotóxicas con receptores quiméricos para la inmunoterapia adoptiva
KR20170066546A (ko) 2014-10-03 2017-06-14 노파르티스 아게 조합 요법
US10053683B2 (en) 2014-10-03 2018-08-21 Whitehead Institute For Biomedical Research Intercellular labeling of ligand-receptor interactions
AU2015330898B2 (en) 2014-10-08 2022-03-10 Novartis Ag Biomarkers predictive of therapeutic responsiveness to chimeric antigen receptor therapy and uses thereof
MA41044A (fr) 2014-10-08 2017-08-15 Novartis Ag Compositions et procédés d'utilisation pour une réponse immunitaire accrue et traitement contre le cancer
WO2016061142A1 (en) 2014-10-14 2016-04-21 Novartis Ag Antibody molecules to pd-l1 and uses thereof
WO2016065330A1 (en) * 2014-10-24 2016-04-28 Aladar Szalay Combination immunotherapy approach for treatment of cancer
AU2015339306B2 (en) 2014-10-29 2021-07-22 Bristol-Myers Squibb Company Combination therapy for cancer
WO2016073763A2 (en) * 2014-11-06 2016-05-12 Biothera, Inc. Beta-glucan methods and compositions that affect the tumor microenvironment
EP4098278A1 (en) 2014-11-13 2022-12-07 The Johns Hopkins University Checkpoint blockade and microsatellite instability
PE20170912A1 (es) 2014-11-14 2017-07-12 Novartis Ag Conjugados de anticuerpo-farmaco
WO2016089873A1 (en) * 2014-12-02 2016-06-09 Celgene Corporation Combination therapies
US20180334490A1 (en) 2014-12-03 2018-11-22 Qilong H. Wu Methods for b cell preconditioning in car therapy
US11220545B2 (en) 2014-12-08 2022-01-11 Dana-Farber Cancer Institute, Inc. Methods for upregulating immune responses using combinations of anti-RGMb and anti-PD-1 agents
TWI595006B (zh) 2014-12-09 2017-08-11 禮納特神經系統科學公司 抗pd-1抗體類和使用彼等之方法
CU24443B1 (es) 2014-12-16 2019-10-04 Novartis Ag COMPUESTOS DE ISOXAZOL DE ÁCIDO HIDROXÁMICO COMO INHIBIDORES DE LpxC
RU2726996C1 (ru) * 2014-12-16 2020-07-17 Бристол-Маерс Сквибб Компани Применение ингибиторов иммунных контрольных точек при новообразованиях центральной нервной системы
EP3233918A1 (en) 2014-12-19 2017-10-25 Novartis AG Combination therapies
CN105983097B (zh) * 2015-01-28 2021-06-08 华中科技大学同济医学院附属协和医院 一种抗肿瘤制剂及其制备方法
HK1247861A1 (zh) * 2015-01-30 2018-10-05 President And Fellows Of Harvard College 用於癌症治疗的肿瘤周围和肿瘤内部材料
US11161907B2 (en) 2015-02-02 2021-11-02 Novartis Ag Car-expressing cells against multiple tumor antigens and uses thereof
CN108271359B (zh) * 2015-02-13 2021-11-09 索伦托药业有限公司 结合ctla4的抗体治疗剂
BR112017018234A2 (pt) * 2015-02-26 2018-04-17 Merck Patent Gmbh inibidores de pd-1 / pd-l1 para o tratamento de câncer
JO3746B1 (ar) 2015-03-10 2021-01-31 Aduro Biotech Inc تركيبات وطرق لتنشيط الإشارات المعتمدة على "منبه أو تحفيز جين انترفيرون"
HUE048111T2 (hu) 2015-03-23 2020-05-28 Bayer Pharma AG Anti-CEACAM6 ellenanyagok és alkalmazásuk
EP3280795B1 (en) 2015-04-07 2021-03-24 Novartis AG Combination of chimeric antigen receptor therapy and amino pyrimidine derivatives
CN114099793A (zh) 2015-04-10 2022-03-01 哈佛学院院长等 免疫细胞捕获装置及其制备和使用方法
GB201506411D0 (en) 2015-04-15 2015-05-27 Bergenbio As Humanized anti-axl antibodies
MY188749A (en) 2015-04-17 2021-12-28 Bristol Myers Squibb Co Compositions comprising a combination of nivolumab and ipilimumab
AU2016249005B2 (en) 2015-04-17 2022-06-16 Novartis Ag Methods for improving the efficacy and expansion of chimeric antigen receptor-expressing cells
EP3286211A1 (en) 2015-04-23 2018-02-28 Novartis AG Treatment of cancer using chimeric antigen receptor and protein kinase a blocker
WO2016176504A1 (en) 2015-04-28 2016-11-03 Bristol-Myers Squibb Company Treatment of pd-l1-positive melanoma using an anti-pd-1 antibody
JP2018514550A (ja) 2015-04-28 2018-06-07 ブリストル−マイヤーズ スクイブ カンパニーBristol−Myers Squibb Company 抗pd−1抗体および抗ctla−4抗体を使用するpd−l1陰性黒色腫の処置
MX383614B (es) 2015-05-21 2025-03-14 Harpoon Therapeutics Inc Proteinas de union triespecificas y metodos de uso.
US20180155429A1 (en) 2015-05-28 2018-06-07 Bristol-Myers Squibb Company Treatment of pd-l1 positive lung cancer using an anti-pd-1 antibody
US11078278B2 (en) 2015-05-29 2021-08-03 Bristol-Myers Squibb Company Treatment of renal cell carcinoma
CA2986765A1 (en) 2015-05-29 2016-12-08 Agenus Inc. Anti-ctla-4 antibodies and methods of use thereof
TWI870335B (zh) 2015-06-12 2025-01-21 美商宏觀基因股份有限公司 變異的嵌合4d5抗體及其與抗pd-1抗體聯合用於治療癌症的應用
WO2016203432A1 (en) 2015-06-17 2016-12-22 Novartis Ag Antibody drug conjugates
CA2991976A1 (en) 2015-07-13 2017-01-19 Cytomx Therapeutics, Inc. Anti-pd-1 antibodies, activatable anti-pd-1 antibodies, and methods of use thereof
SI3858859T1 (sl) 2015-07-14 2026-03-31 Bristol-Myers Squibb Company Postopek zdravljenja raka z uporabo zaviralca imunskih kontrolnih točk; protitelo, ki se veže na receptor programirane celične smrti-1 (pd-1) ali ligand programirane celične smrti 1 (pd-l1)
CN116059219A (zh) 2015-07-16 2023-05-05 比奥克斯塞尔医疗股份有限公司 一种使用免疫调节治疗癌症的新颖方法
EP3744340A3 (en) 2015-07-16 2021-03-03 Biokine Therapeutics Ltd. Compositions and methods for treating cancer
WO2017015427A1 (en) 2015-07-21 2017-01-26 Novartis Ag Methods for improving the efficacy and expansion of immune cells
WO2017019897A1 (en) 2015-07-29 2017-02-02 Novartis Ag Combination therapies comprising antibody molecules to tim-3
JP6840127B2 (ja) 2015-07-29 2021-03-10 ノバルティス アーゲー がんの治療における抗pd−1抗体および抗m−csf抗体の併用
EP4378957A3 (en) 2015-07-29 2024-08-07 Novartis AG Combination therapies comprising antibody molecules to pd-1
MX2018001268A (es) 2015-07-29 2018-07-06 Novartis Ag Combinacion de antagonista de pd-1 con un inhibidor de egfr.
AU2016298227B9 (en) 2015-07-30 2019-10-31 Macrogenics, Inc. PD-1-binding molecules and methods of use thereof
US10660954B2 (en) 2015-07-31 2020-05-26 University Of Florida Research Foundation, Incorporated Hematopoietic stem cells in combinatorial therapy with immune checkpoint inhibitors against cancer
EA201800148A1 (ru) 2015-08-11 2019-01-31 Калиди Биотерапьютикс, Инк. Оспенная вакцина для лечения рака
US10561653B2 (en) 2015-08-11 2020-02-18 Novartis Ag 5-bromo-2,6-di-(1H-pyrazol-1-yl)pyrimidin-4-amine for use in the treatment of cancer
CN116334205A (zh) 2015-09-03 2023-06-27 诺华股份有限公司 预测细胞因子释放综合征的生物标志物
US10160761B2 (en) 2015-09-14 2018-12-25 Infinity Pharmaceuticals, Inc. Solid forms of isoquinolinones, and process of making, composition comprising, and methods of using the same
US12048753B2 (en) 2015-10-01 2024-07-30 Whitehead Institute For Biomedical Research Labeling of antibodies
CN108136010A (zh) 2015-10-08 2018-06-08 宏观基因有限公司 用于治疗癌症的联合疗法
WO2017066561A2 (en) 2015-10-16 2017-04-20 President And Fellows Of Harvard College Regulatory t cell pd-1 modulation for regulating t cell effector immune responses
CN108135934B (zh) 2015-10-19 2024-09-10 永恒生物科技股份有限公司 通过组合疗法治疗实体或淋巴肿瘤的方法
SG11201802769RA (en) 2015-10-29 2018-05-30 Novartis Ag Antibody conjugates comprising toll-like receptor agonist
JP6936221B2 (ja) 2015-11-02 2021-09-15 ファイブ プライム セラピューティクス, インコーポレイテッド Cd80細胞外ドメインポリペプチドと、がん治療でのそれらの使用
WO2017077382A1 (en) 2015-11-06 2017-05-11 Orionis Biosciences Nv Bi-functional chimeric proteins and uses thereof
CN108350081A (zh) 2015-11-18 2018-07-31 百时美施贵宝公司 使用抗pd-1抗体和抗ctla-4抗体的组合治疗肺癌
RU2745707C2 (ru) 2015-11-23 2021-03-30 Файв Прайм Терапьютикс, Инк. Ингибиторы fgfr2 отдельно или в комбинации с иммуностимулирующими агентами в лечении рака
SG10201912984WA (en) 2015-12-02 2020-03-30 Agenus Inc Antibodies and methods of use thereof
JP6955507B2 (ja) 2015-12-14 2021-10-27 マクロジェニクス,インコーポレーテッド Pd‐1及びctla‐4との免疫応答性を有する二重特異性並びにその使用方法
EP3389712B1 (en) 2015-12-17 2024-04-10 Novartis AG Antibody molecules to pd-1 and uses thereof
US10392442B2 (en) 2015-12-17 2019-08-27 Bristol-Myers Squibb Company Use of anti-PD-1 antibody in combination with anti-CD27 antibody in cancer treatment
CA3008102A1 (en) 2015-12-18 2017-06-22 Novartis Ag Antibodies targeting cd32b and methods of use thereof
PT3393504T (pt) 2015-12-22 2025-12-30 Novartis Ag Recetor de antigénio quimérico (car) de mesotelina e anticorpo contra o inibidor de pd-l1 para utilização combinada em terapia anticancerígena
WO2017112943A1 (en) 2015-12-23 2017-06-29 Modernatx, Inc. Methods of using ox40 ligand encoding polynucleotides
HK1257518A1 (zh) 2016-01-11 2019-10-25 Novartis Ag 针对人白介素-2的免疫刺激性人源化单克隆抗体及其融合蛋白
EP3403091B1 (en) 2016-01-11 2021-12-22 Technion Research & Development Foundation Limited Methods of determining prognosis of sepsis and treating same
CN116769054A (zh) 2016-02-05 2023-09-19 奥里尼斯生物科学私人有限公司 双特异性信号传导剂及其用途
CN115487351A (zh) 2016-02-06 2022-12-20 哈佛学院校长同事会 重塑造血巢以重建免疫
ES2897913T3 (es) 2016-02-19 2022-03-03 Novartis Ag Compuestos de piridona tetracíclicos como antivirales
CN109476731A (zh) 2016-02-29 2019-03-15 基础医药有限公司 治疗癌症的方法
CN109196121B (zh) 2016-02-29 2022-01-04 基因泰克公司 用于癌症的治疗和诊断方法
CA3016287A1 (en) 2016-03-04 2017-09-08 Novartis Ag Cells expressing multiple chimeric antigen receptor (car) molecules and uses therefore
US20170252417A1 (en) 2016-03-07 2017-09-07 Massachusetts Institute Of Technology Protein-chaperoned t-cell vaccines
ES3041500T3 (en) 2016-03-10 2025-11-12 Cg Oncology Inc Methods of treating solid tumors by combination therapy
JP2019512271A (ja) 2016-03-21 2019-05-16 デイナ ファーバー キャンサー インスティチュート,インコーポレイテッド T細胞疲弊状態特異的遺伝子発現調節因子およびその使用
CN109311885A (zh) 2016-03-24 2019-02-05 诺华股份有限公司 炔基核苷类似物作为人类鼻病毒的抑制剂
US11209441B2 (en) 2016-04-05 2021-12-28 Bristol-Myers Squibb Company Cytokine profiling analysis
SG11201808909WA (en) 2016-04-13 2018-11-29 Vivia Biotech Sl Ex vivo bite-activated t cells
WO2017180713A1 (en) 2016-04-13 2017-10-19 Orimabs Ltd. Anti-psma antibodies and use thereof
US11753463B2 (en) 2016-05-13 2023-09-12 Orionis Biosciences BV Therapeutic targeting of non-cellular structures
US11236141B2 (en) 2016-05-13 2022-02-01 Orionis Biosciences BV Targeted mutant interferon-beta and uses thereof
DK3458083T5 (da) 2016-05-18 2024-10-21 Modernatx Inc Polynukleotider, der koder for interleukin-12 (il12), og anvendelser heraf
EP3458092A1 (en) 2016-05-18 2019-03-27 Modernatx, Inc. Mrna combination therapy for the treatment of cancer
WO2017201325A1 (en) 2016-05-18 2017-11-23 Modernatx, Inc. Combinations of mrnas encoding immune modulating polypeptides and uses thereof
US10688104B2 (en) 2016-05-20 2020-06-23 Eli Lilly And Company Combination therapy with Notch and PD-1 or PD-L1 inhibitors
US11623958B2 (en) 2016-05-20 2023-04-11 Harpoon Therapeutics, Inc. Single chain variable fragment CD3 binding proteins
US10100106B2 (en) 2016-05-20 2018-10-16 Harpoon Therapeutics, Inc. Single domain serum albumin binding protein
MX389710B (es) 2016-05-27 2025-03-20 Agenus Inc Anticuerpos anti proteina inmunoglobulina de linfocitos t y dominio de mucina 3 (tim-3) y métodos para usarlos.
FI3464368T3 (fi) 2016-06-02 2023-09-12 Bristol Myers Squibb Co Anti-pd-1-vasta-aineen käyttö yhdistelmänä anti-cd30-vasta-aineen kanssa lymfooman hoitamisessa
CN109475633A (zh) 2016-06-02 2019-03-15 百时美施贵宝公司 在难治性霍奇金淋巴瘤中用纳武单抗阻断pd-1
CN109476753A (zh) 2016-06-03 2019-03-15 百时美施贵宝公司 用于治疗肿瘤的方法的抗-pd-1抗体
KR102702675B1 (ko) 2016-06-03 2024-09-05 브리스톨-마이어스 스큅 컴퍼니 결장직장암을 갖는 환자의 치료에서의 항-pd-1 항체의 용도
KR20190015407A (ko) 2016-06-03 2019-02-13 브리스톨-마이어스 스큅 컴퍼니 재발성 소세포 폐암의 치료 방법에 사용하기 위한 항-pd-1 항체
HRP20201524T1 (hr) 2016-06-14 2021-03-05 Novartis Ag Kristalni oblik (r)-4-(5-(ciklopropiletinil) izoksazol-3 -il)-n-hidroksi-2-metil-2-(metilsufonil) butanamid kao antibakterijsko sredstvo
WO2017216686A1 (en) 2016-06-16 2017-12-21 Novartis Ag 8,9-fused 2-oxo-6,7-dihydropyrido-isoquinoline compounds as antivirals
WO2017216685A1 (en) 2016-06-16 2017-12-21 Novartis Ag Pentacyclic pyridone compounds as antivirals
MX391135B (es) 2016-06-24 2025-03-21 Infinity Pharmaceuticals Inc Terapias de combinacion.
EP3507367A4 (en) 2016-07-05 2020-03-25 Aduro BioTech, Inc. CYCLIC DINUCLEOTID COMPOUNDS WITH INCLUDED NUCLEIC ACIDS AND USES THEREOF
EP3484448B1 (en) 2016-07-13 2025-04-09 President and Fellows of Harvard College Antigen-presenting cell-mimetic scaffolds and methods for making and using the same
CN109641947B (zh) 2016-07-20 2023-04-14 犹他大学研究基金会 Cd229 car t细胞及其使用方法
CN110214150A (zh) 2016-07-28 2019-09-06 诺华股份有限公司 嵌合抗原受体和pd-1抑制剂的组合疗法
JP2019525934A (ja) 2016-07-29 2019-09-12 イーライ リリー アンド カンパニー 癌の治療に使用するためのメレスチニブおよび抗pd−l1または抗pd−1阻害剤を用いた組み合わせ治療
EP4549467A3 (en) 2016-08-01 2025-07-23 ImmunoGenesis, Inc. Administration of hypoxia activated prodrugs in combination with immune modulatory agents for treating cancer
RU2770060C2 (ru) 2016-08-02 2022-04-14 Президент Энд Феллоуз Оф Гарвард Колледж Биологические материалы для модуляции иммунных ответов
WO2018027039A1 (en) 2016-08-03 2018-02-08 Nextcure, Inc. Compositions and methods for modulating lair signal transduction
JP2019528689A (ja) * 2016-08-11 2019-10-17 ザ カウンシル オブ ザ クイーンズランド インスティテュート オブ メディカル リサーチ 免疫調節化合物
JP7198666B2 (ja) * 2016-08-26 2023-01-04 哲治 奥野 微小血管血流低減剤およびその利用
CN109906082A (zh) 2016-09-07 2019-06-18 塔夫茨大学信托人 使用免疫dash抑制剂和pge2拮抗剂的组合治疗
US20190218294A1 (en) 2016-09-09 2019-07-18 Bristol-Myers Squibb Company Use of an anti-pd-1 antibody in combination with an anti-mesothelin antibody in cancer treatment
AU2017322501A1 (en) 2016-09-09 2019-03-28 Laboratoire Francais Du Fractionnement Et Des Biotechnologies Combination of an anti-CD20 antibody, PI3 kinase-delta inhibitor, and anti-PD-1 or anti-PD-L1 antibody for treating hematological cancers
TW201811788A (zh) 2016-09-09 2018-04-01 瑞士商諾華公司 作為抗病毒劑之多環吡啶酮化合物
HRP20201993T1 (hr) * 2016-09-14 2021-02-05 Abbvie Biotherapeutics Inc. Protutijela protiv pd-1
DK3515478T3 (da) 2016-09-21 2024-05-21 Nextcure Inc Antistoffer til SIGLEC-15 og fremgangsmåder til anvendelse deraf
EP4360714A3 (en) 2016-09-21 2024-07-24 Nextcure, Inc. Antibodies for siglec-15 and methods of use thereof
WO2018057585A1 (en) 2016-09-21 2018-03-29 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services Chimeric antigen receptor (car) that targets chemokine receptor ccr4 and its use
CN109906232B (zh) 2016-09-23 2023-11-07 马伦戈治疗公司 包含λ轻链和κ轻链的多特异性抗体分子
JOP20190061A1 (ar) 2016-09-28 2019-03-26 Novartis Ag مثبطات بيتا-لاكتاماز
WO2018067992A1 (en) 2016-10-07 2018-04-12 Novartis Ag Chimeric antigen receptors for the treatment of cancer
KR102576042B1 (ko) 2016-10-11 2023-09-07 아게누스 인코포레이티드 항-lag-3 항체 및 이의 사용 방법
WO2018071576A1 (en) 2016-10-14 2018-04-19 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services Treatment of tumors by inhibition of cd300f
WO2018073753A1 (en) 2016-10-18 2018-04-26 Novartis Ag Fused tetracyclic pyridone compounds as antivirals
JP7204643B2 (ja) 2016-10-24 2023-01-16 オリオニス バイオサイエンシズ ビーブイ 標的変異インターフェロン-ガンマおよびその使用
EP3666794A1 (en) 2016-11-01 2020-06-17 AnaptysBio, Inc. Antibodies directed against programmed death- 1 (pd-1)
RS62589B1 (sr) 2016-11-02 2021-12-31 Jounce Therapeutics Inc Antitela na pd-1 i njihova upotreba
WO2018101448A1 (en) 2016-11-30 2018-06-07 Kyowa Hakko Kirin Co., Ltd. Method of treating cancer using anti-ccr4 antibody and anti-pd-1 antibody
US20190358262A1 (en) 2016-12-03 2019-11-28 Juno Therapeutics, Inc. Methods for modulation of car-t cells
CN118634323A (zh) 2016-12-07 2024-09-13 艾吉纳斯公司 抗体和其使用方法
FI3551660T3 (fi) 2016-12-07 2023-12-11 Agenus Inc Anti-ctla-4-vasta-aineita ja niiden käyttömenetelmiä
WO2018107004A1 (en) 2016-12-08 2018-06-14 Lixte Biotechnology, Inc. Oxabicycloheptanes for modulation of immune response
ES2988845T3 (es) 2017-01-09 2024-11-21 Onkosxcel Therapeutics Llc Procedimientos predictivos y diagnósticos para cáncer de próstata
EP3565844B8 (en) 2017-01-09 2023-04-12 Tesaro, Inc. Methods of treating cancer with anti-pd-1 antibodies
AU2018207172B2 (en) 2017-01-13 2023-10-12 Mink Therapeutics, Inc. T cell receptors that bind to NY-ESO-1 and methods of use thereof
TWI787230B (zh) 2017-01-20 2022-12-21 法商賽諾菲公司 抗TGF-β抗體及其用途
EP3570870A1 (en) 2017-01-20 2019-11-27 Novartis AG Combination therapy for the treatment of cancer
TWI788321B (zh) 2017-01-20 2023-01-01 美商健臻公司 骨靶向抗體
JOP20190187A1 (ar) 2017-02-03 2019-08-01 Novartis Ag مترافقات عقار جسم مضاد لـ ccr7
MX2019009255A (es) 2017-02-06 2019-11-05 Orionis Biosciences Nv Proteínas quiméricas dirigidas y sus usos.
CN110573172A (zh) 2017-02-06 2019-12-13 奥里尼斯生物科学有限公司 靶向的工程化干扰素及其用途
WO2018151820A1 (en) 2017-02-16 2018-08-23 Elstar Therapeutics, Inc. Multifunctional molecules comprising a trimeric ligand and uses thereof
KR20240011262A (ko) 2017-02-21 2024-01-25 리제너론 파아마슈티컬스, 인크. 폐암의 치료를 위한 항-pd-1 항체
JP7132232B2 (ja) 2017-02-24 2022-09-06 マクロジェニクス,インコーポレーテッド Cd137及び腫瘍抗原に結合できる二重特異性結合分子並びにその使用
TW202428301A (zh) 2017-02-28 2024-07-16 法商賽諾菲公司 治療性rna
EP3592868B1 (en) 2017-03-06 2022-11-23 Novartis AG Methods of treatment of cancer with reduced ubb expression
WO2018167778A1 (en) 2017-03-12 2018-09-20 Yeda Research And Development Co. Ltd. Methods of diagnosing and prognosing cancer
WO2018167780A1 (en) 2017-03-12 2018-09-20 Yeda Research And Development Co. Ltd. Methods of prognosing and treating cancer
JP2020512357A (ja) 2017-03-31 2020-04-23 ファイブ プライム セラピューティクス, インコーポレイテッド 抗gitr抗体を使用した癌の併用療法
WO2018185618A1 (en) 2017-04-03 2018-10-11 Novartis Ag Anti-cdh6 antibody drug conjugates and anti-gitr antibody combinations and methods of treatment
JP7297672B2 (ja) 2017-04-13 2023-06-26 アジェナス インコーポレイテッド 抗cd137抗体およびその使用方法
JP2020517256A (ja) 2017-04-19 2020-06-18 エルスター セラピューティクス, インコーポレイテッド 多重特異性分子およびその使用
KR20190137847A (ko) 2017-04-20 2019-12-11 에이디씨 테라퓨틱스 에스에이 항-cd25 항체-약물 접합체와의 병용 요법
CN110536703B (zh) 2017-04-20 2024-07-12 Adc治疗有限公司 使用抗axl抗体-药物缀合物的组合疗法
AR111419A1 (es) 2017-04-27 2019-07-10 Novartis Ag Compuestos fusionados de indazol piridona como antivirales
US20200055948A1 (en) 2017-04-28 2020-02-20 Novartis Ag Cells expressing a bcma-targeting chimeric antigen receptor, and combination therapy with a gamma secretase inhibitor
AR111651A1 (es) 2017-04-28 2019-08-07 Novartis Ag Conjugados de anticuerpos que comprenden agonistas del receptor de tipo toll y terapias de combinación
UY37695A (es) 2017-04-28 2018-11-30 Novartis Ag Compuesto dinucleótido cíclico bis 2’-5’-rr-(3’f-a)(3’f-a) y usos del mismo
AU2018258661A1 (en) 2017-04-28 2019-10-17 Five Prime Therapeutics, Inc. Methods of treatment with CD80 extracellular domain polypeptides
EP4328241A3 (en) 2017-04-28 2024-06-05 Marengo Therapeutics, Inc. Multispecific molecules comprising a non-immunoglobulin heterodimerization domain and uses thereof
US20200179511A1 (en) 2017-04-28 2020-06-11 Novartis Ag Bcma-targeting agent, and combination therapy with a gamma secretase inhibitor
RS64576B1 (sr) 2017-05-01 2023-10-31 Agenus Inc Anti-tigit antitela i postupci njihove primene
UY37718A (es) 2017-05-05 2018-11-30 Novartis Ag 2-quinolinonas triciclicas como agentes antibacteriales
JOP20190256A1 (ar) 2017-05-12 2019-10-28 Icahn School Med Mount Sinai فيروسات داء نيوكاسل واستخداماتها
AU2018265856B2 (en) 2017-05-12 2023-04-27 Harpoon Therapeutics, Inc. Mesothelin binding proteins
CN110869392A (zh) 2017-05-16 2020-03-06 百时美施贵宝公司 用抗gitr激动性抗体治疗癌症
US11421011B2 (en) 2017-05-18 2022-08-23 Modernatx, Inc. Polynucleotides encoding tethered interleukin-12 (IL12) polypeptides and uses thereof
WO2018215937A1 (en) 2017-05-24 2018-11-29 Novartis Ag Interleukin-7 antibody cytokine engrafted proteins and methods of use in the treatment of cancer
CN110662762A (zh) 2017-05-24 2020-01-07 诺华股份有限公司 抗体细胞因子移植蛋白和用于治疗癌症的方法
JP2020520671A (ja) 2017-05-24 2020-07-16 ノバルティス アーゲー 抗体−サイトカイングラフト化タンパク質及び使用方法
KR102721137B1 (ko) 2017-05-30 2024-10-25 브리스톨-마이어스 스큅 컴퍼니 항-lag-3 항체 또는 항-lag-3 항체 및 항-pd-1 또는 항-pd-l1 항체를 포함하는 조성물
CA3060984A1 (en) 2017-05-30 2018-12-06 Bristol-Myers Squibb Company Treatment of lag-3 positive tumors
MX2019012038A (es) 2017-05-30 2019-11-18 Bristol Myers Squibb Co Composiciones que comprenden una combinacion de un anticuerpo anti gen 3 de activacion del linfocito (lag-3), un inhibidor de la trayectoria del receptor de muerte programada 1 (pd-1), y un agente inmunoterapeutico.
WO2018222685A1 (en) 2017-05-31 2018-12-06 Stcube & Co., Inc. Methods of treating cancer using antibodies and molecules that immunospecifically bind to btn1a1
WO2018222901A1 (en) 2017-05-31 2018-12-06 Elstar Therapeutics, Inc. Multispecific molecules that bind to myeloproliferative leukemia (mpl) protein and uses thereof
WO2018223004A1 (en) 2017-06-01 2018-12-06 Xencor, Inc. Bispecific antibodies that bind cd20 and cd3
JP2020522498A (ja) 2017-06-01 2020-07-30 ゼンコー・インコーポレイテッドXencor、 Inc. Cd123 cd3に結合する二重特異性抗体
CN111225675B (zh) 2017-06-02 2024-05-03 朱诺治疗学股份有限公司 使用过继细胞疗法治疗的制品和方法
US11559504B2 (en) * 2017-06-02 2023-01-24 The Penn State Research Foundation Ceramide nanoliposomes, compositions and methods of using for immunotherapy
EP3635007A1 (en) 2017-06-06 2020-04-15 STCube & Co., Inc. Methods of treating cancer using antibodies and molecules that bind to btn1a1 or btn1a1-ligands
UA127900C2 (uk) 2017-06-14 2024-02-07 Ейдісі Терапьютікс Са Схема дозування для введення adc до cd19
WO2018237173A1 (en) 2017-06-22 2018-12-27 Novartis Ag ANTIBODY MOLECULES DIRECTED AGAINST CD73 AND CORRESPONDING USES
US11312783B2 (en) 2017-06-22 2022-04-26 Novartis Ag Antibody molecules to CD73 and uses thereof
EP3644721A1 (en) 2017-06-29 2020-05-06 Juno Therapeutics, Inc. Mouse model for assessing toxicities associated with immunotherapies
WO2019023624A1 (en) 2017-07-28 2019-01-31 Bristol-Myers Squibb Company PREDICTIVE PERIPHERAL BLOOD BIOMARKER FOR INHIBITORS OF CONTROL POINTS
US11285149B2 (en) 2017-07-28 2022-03-29 Dana-Farber Cancer Institute, Inc. Enhanced immunotherapy of cancer using targeted transcriptional modulators
AU2018317390A1 (en) * 2017-08-14 2020-04-02 Cytodigm, Inc. Microparticle formulations of adenosine receptor antagonists for treating cancer
WO2019035938A1 (en) 2017-08-16 2019-02-21 Elstar Therapeutics, Inc. MULTISPECIFIC MOLECULES BINDING TO BCMA AND USES THEREOF
EP3668876B1 (en) 2017-08-18 2024-01-24 Cothera Bioscience, Inc. Polymorphic form of tg02
SG11202001211TA (en) 2017-08-28 2020-03-30 Bristol Myers Squibb Co Tim-3 antagonists for the treatment and diagnosis of cancers
JP7387585B2 (ja) 2017-09-04 2023-11-28 アジェナス インコーポレイテッド 混合系統白血病(mll)特異的ホスホペプチドに結合するt細胞受容体およびその使用方法
CN118909118A (zh) 2017-09-07 2024-11-08 奥古斯塔大学研究所公司 程序性细胞死亡蛋白1抗体
SI3694529T1 (sl) 2017-10-13 2024-10-30 Harpoon Therapeutics, Inc. Trispecifične beljakovine in načini uporabe
IL315737A (en) 2017-10-13 2024-11-01 Harpoon Therapeutics Inc B-cell maturation antigen-binding proteins
CN109662966A (zh) * 2017-10-16 2019-04-23 北京莱科金基因科技有限责任公司 伊曲茶碱在制备用于肿瘤治疗的药物中的用途
WO2019077062A1 (en) 2017-10-18 2019-04-25 Vivia Biotech, S.L. C-CELLS ACTIVATED BY BIT
CA3080904A1 (en) 2017-11-01 2019-05-09 Juno Therapeutics, Inc. Antibodies and chimeric antigen receptors specific for b-cell maturation antigen
MX2020004572A (es) 2017-11-01 2020-10-07 Juno Therapeutics Inc Receptores de antigenos quimericos especificos para el antigeno de maduracion de celulas b y polinucleotidos que codifican los mismos.
US12031975B2 (en) 2017-11-01 2024-07-09 Juno Therapeutics, Inc. Methods of assessing or monitoring a response to a cell therapy
CN111655288A (zh) 2017-11-16 2020-09-11 诺华股份有限公司 组合疗法
US20210079015A1 (en) 2017-11-17 2021-03-18 Novartis Ag Novel dihydroisoxazole compounds and their use for the treatment of hepatitis b
KR102478433B1 (ko) 2017-11-17 2022-12-15 머크 샤프 앤드 돔 엘엘씨 이뮤노글로불린-유사 전사체 3 (ilt3)에 대해 특이적인 항체 및 그의 용도
WO2019108900A1 (en) 2017-11-30 2019-06-06 Novartis Ag Bcma-targeting chimeric antigen receptor, and uses thereof
EP3720881A1 (en) 2017-12-08 2020-10-14 Elstar Therapeutics, Inc. Multispecific molecules and uses thereof
US11946094B2 (en) 2017-12-10 2024-04-02 Augusta University Research Institute, Inc. Combination therapies and methods of use thereof
WO2019118937A1 (en) 2017-12-15 2019-06-20 Juno Therapeutics, Inc. Anti-cct5 binding molecules and methods of use thereof
EP3728266A1 (en) 2017-12-20 2020-10-28 Novartis AG Fused tricyclic pyrazolo-dihydropyrazinyl-pyridone compounds as antivirals
US11324774B2 (en) 2018-01-05 2022-05-10 Augusta University Research Institute, Inc. Compositions of oral alkaline salts and metabolic acid inducers and uses thereof
WO2019139987A1 (en) 2018-01-09 2019-07-18 Elstar Therapeutics, Inc. Calreticulin binding constructs and engineered t cells for the treatment of diseases
JP2021510733A (ja) 2018-01-12 2021-04-30 ケーディーエーシー セラピューティクス,インコーポレーテッドKdac Therapeutics, Inc. がんの処置のための選択的ヒストンデアセチラーゼ3(hdac3)インヒビターと免疫治療剤との組み合わせ
MX2020006171A (es) 2018-01-12 2020-09-03 Bristol Myers Squibb Co Terapia de combinacion con anticuerpos anti interleucina-8 (il-8) y anticuerpos anti receptor de muerte programada (pd-1) para tratar cancer.
CA3096287A1 (en) 2018-01-22 2019-07-25 Pascal Biosciences Inc. Cannabinoids and derivatives for promoting immunogenicity of tumor and infected cells
WO2019147670A1 (en) 2018-01-23 2019-08-01 Nextcure, Inc. B7-h4 antibodies and methods of use thereof
WO2019148089A1 (en) 2018-01-26 2019-08-01 Orionis Biosciences Inc. Xcr1 binding agents and uses thereof
WO2019152743A1 (en) 2018-01-31 2019-08-08 Celgene Corporation Combination therapy using adoptive cell therapy and checkpoint inhibitor
WO2019157124A1 (en) 2018-02-08 2019-08-15 Bristol-Myers Squibb Company Combination of a tetanus toxoid, anti-ox40 antibody and/or anti-pd-1 antibody to treat tumors
EP3759110A1 (en) 2018-02-28 2021-01-06 Novartis AG Indole-2-carbonyl compounds and their use for the treatment of hepatitis b
WO2019169229A1 (en) 2018-03-01 2019-09-06 Nextcure, Inc. Klrg1 binding compositions and methods of use thereof
IL277095B2 (en) 2018-03-07 2025-10-01 Pfizer Preparations containing anti-PD-1 antibody
CN112218658A (zh) 2018-03-12 2021-01-12 国家健康科学研究所 热量限制模拟物用于增强癌症治疗的化学免疫疗法的用途
US12152073B2 (en) 2018-03-14 2024-11-26 Marengo Therapeutics, Inc. Multifunctional molecules that bind to calreticulin and uses thereof
EP3765516A2 (en) 2018-03-14 2021-01-20 Elstar Therapeutics, Inc. Multifunctional molecules and uses thereof
US10738128B2 (en) 2018-03-14 2020-08-11 Surface Oncology, Inc. Antibodies that bind CD39 and uses thereof
US20210361734A1 (en) 2018-03-19 2021-11-25 9 Meters Biopharma, Inc. Compositions and methods for potentiating immune checkpoint inhibitor therapy
US11874276B2 (en) 2018-04-05 2024-01-16 Dana-Farber Cancer Institute, Inc. STING levels as a biomarker for cancer immunotherapy
JP2021521182A (ja) 2018-04-12 2021-08-26 ブリストル−マイヤーズ スクイブ カンパニーBristol−Myers Squibb Company Cd73アンタゴニストとpd−1/pd−l1軸アンタゴニストの組み合わせ治療
CN111989095A (zh) 2018-04-16 2020-11-24 上海岸阔医药科技有限公司 预防或治疗肿瘤疗法副作用的方法
WO2019204462A2 (en) 2018-04-17 2019-10-24 Celldex Therapeutics, Inc. Anti-cd27 and anti-pd-l1 antibodies and bispecific constructs
JP7516254B2 (ja) 2018-04-18 2024-07-16 ゼンコア インコーポレイテッド Il-15/il-15raヘテロ二量体fc融合タンパク質およびその使用
CA3097593A1 (en) 2018-04-18 2019-10-24 Xencor, Inc. Pd-1 targeted heterodimeric fusion proteins containing il-15/il-15ra fc-fusion proteins and pd-1 antigen binding domains and uses thereof
KR20210005646A (ko) 2018-04-26 2021-01-14 아게누스 인코포레이티드 열쇼크 단백질-결합 펩티드 조성물 및 그의 이용 방법
EP3784351A1 (en) 2018-04-27 2021-03-03 Novartis AG Car t cell therapies with enhanced efficacy
EP3788369A1 (en) 2018-05-01 2021-03-10 Novartis Ag Biomarkers for evaluating car-t cells to predict clinical outcome
SG11202010469QA (en) 2018-05-23 2020-11-27 Adc Therapeutics Sa Molecular adjuvant
UY38247A (es) 2018-05-30 2019-12-31 Novartis Ag Anticuerpos frente a entpd2, terapias de combinación y métodos de uso de los anticuerpos y las terapias de combinación
US20210214459A1 (en) 2018-05-31 2021-07-15 Novartis Ag Antibody molecules to cd73 and uses thereof
WO2019232528A1 (en) 2018-06-01 2019-12-05 Xencor, Inc. Dosing of a bispecific antibody that bind cd123 and cd3
AU2019277029C1 (en) 2018-06-01 2024-01-04 Novartis Ag Binding molecules against BCMA and uses thereof
US11505782B2 (en) 2018-06-04 2022-11-22 Calidi Biotherapeutics, Inc. Cell-based vehicles for potentiation of viral therapy
AU2019284911B2 (en) 2018-06-13 2026-04-09 Novartis Ag BCMA chimeric antigen receptors and uses thereof
AU2019288276B2 (en) 2018-06-20 2026-02-12 Incyte Corporation Anti-PD-1 antibodies and uses thereof
TW202504917A (zh) 2018-06-21 2025-02-01 美商再生元醫藥公司 用雙特異性抗CD3xMUC16抗體及抗PD-1抗體治療癌症之方法
WO2020010250A2 (en) 2018-07-03 2020-01-09 Elstar Therapeutics, Inc. Anti-tcr antibody molecules and uses thereof
AR116109A1 (es) 2018-07-10 2021-03-31 Novartis Ag Derivados de 3-(5-amino-1-oxoisoindolin-2-il)piperidina-2,6-diona y usos de los mismos
CU20210002A7 (es) 2018-07-10 2021-08-06 Novartis Ag Derivados de 3-(5-hidroxi-1-oxoisoindolin-2-il)piperidina-2,6-diona y su uso en el tratamiento de trastornos dependientes de la proteína con dedos de zinc 2 de la familia ikaros (ikzf2)
US20210277135A1 (en) 2018-07-13 2021-09-09 Bristol-Myers Squibb Company Ox-40 agonist, pd-1 pathway inhibitor and ctla-4 inhibitor combination for use in a method of treating a cancer or a solid tumor
EP3826660A1 (en) 2018-07-26 2021-06-02 Bristol-Myers Squibb Company Lag-3 combination therapy for the treatment of cancer
WO2020037215A1 (en) 2018-08-17 2020-02-20 Icahn School Of Medicine At Mount Sinai Recombinant newcastle disease viruses and uses thereof for the prevention of rsv disease or human metapneumovirus disease
CN109053895B (zh) 2018-08-30 2020-06-09 中山康方生物医药有限公司 抗pd-1-抗vegfa的双功能抗体、其药物组合物及其用途
US20210340279A1 (en) 2018-08-31 2021-11-04 Yale University Compositions and methods of using cell-penetrating antibodies in combination with immune checkpoint modulators
WO2020048942A1 (en) 2018-09-04 2020-03-12 INSERM (Institut National de la Santé et de la Recherche Médicale) Methods and pharmaceutical compositions for enhancing cytotoxic t lymphocyte-dependent immune responses
US11359024B2 (en) 2018-09-07 2022-06-14 Pfizer Inc. Anti-AVB8 antibodies and compositions and uses thereof
JP7467423B2 (ja) 2018-09-11 2024-04-15 キュリス,インコーポレイテッド 亜鉛結合部分を有するホスホイノシチド3-キナーゼ阻害剤との併用療法
AU2019339777B2 (en) 2018-09-12 2022-09-01 Novartis Ag Antiviral pyridopyrazinedione compounds
WO2020061129A1 (en) 2018-09-19 2020-03-26 President And Fellows Of Harvard College Compositions and methods for labeling and modulation of cells in vitro and in vivo
WO2020058372A1 (en) 2018-09-19 2020-03-26 INSERM (Institut National de la Santé et de la Recherche Médicale) Methods and pharmaceutical composition for the treatment of cancers resistant to immune checkpoint therapy
KR20210089146A (ko) 2018-09-19 2021-07-15 알파인 이뮨 사이언시즈, 인코포레이티드 변이체 cd80 단백질 및 관련 구축물의 방법 및 용도
US12195544B2 (en) 2018-09-21 2025-01-14 Harpoon Therapeutics, Inc. EGFR binding proteins and methods of use
EP3856771A4 (en) 2018-09-25 2022-06-29 Harpoon Therapeutics, Inc. Dll3 binding proteins and methods of use
CN113164777B (zh) 2018-09-27 2024-12-13 马伦戈治疗公司 Csf1r/ccr2多特异性抗体
WO2020069405A1 (en) 2018-09-28 2020-04-02 Novartis Ag Cd22 chimeric antigen receptor (car) therapies
US20210347851A1 (en) 2018-09-28 2021-11-11 Novartis Ag Cd19 chimeric antigen receptor (car) and cd22 car combination therapies
CA3113379A1 (en) 2018-09-29 2020-04-02 Novartis Ag Process of manufacture of a compound for inhibiting the activity of shp2
WO2020070053A1 (en) 2018-10-01 2020-04-09 INSERM (Institut National de la Santé et de la Recherche Médicale) Use of inhibitors of stress granule formation for targeting the regulation of immune responses
SG11202103192RA (en) 2018-10-03 2021-04-29 Xencor Inc Il-12 heterodimeric fc-fusion proteins
CR20210239A (es) 2018-10-12 2021-12-15 Xencor Inc Proteínas de fusión de il-15/il-15ralfa-fc dirigidas a pd-1 y usos de las mismas en terapias combinadas
US12291570B2 (en) 2018-10-17 2025-05-06 Biolinerx Ltd. Treatment of metastatic pancreatic adenocarcinoma
US20230053449A1 (en) 2018-10-31 2023-02-23 Novartis Ag Dc-sign antibody drug conjugates
SG11202104188VA (en) 2018-11-01 2021-05-28 Juno Therapeutics Inc Methods for treatment using chimeric antigen receptors specific for b-cell maturation antigen
MX2021005022A (es) 2018-11-01 2021-09-08 Juno Therapeutics Inc Receptores de antigenos quimericos especificos para el miembro d del grupo 5 de la clase c del receptor acoplado a proteina g (gprc5d).
WO2020097409A2 (en) 2018-11-08 2020-05-14 Modernatx, Inc. Use of mrna encoding ox40l to treat cancer in human patients
CA3118892A1 (en) 2018-11-08 2020-05-14 Orionis Biosciences, Inc. Modulation of dendritic cell lineages
US20220010017A1 (en) 2018-11-14 2022-01-13 Bayer Aktiengesellschaft Pharmaceutical combination of anti-ceacam6 and either anti-pd-1 or anti-pd-l1 antibodies for the treatment of cancer
WO2020102375A1 (en) 2018-11-14 2020-05-22 Regeneron Pharmaceuticals, Inc. Intralesional administration of pd-1 inhibitors for treating skin cancer
EP3880238A1 (en) 2018-11-16 2021-09-22 Juno Therapeutics, Inc. Methods of dosing engineered t cells for the treatment of b cell malignancies
CN113365650A (zh) 2018-11-16 2021-09-07 新免疫技术有限公司 用il-7蛋白和免疫检查点抑制剂的组合治疗肿瘤的方法
US20220016079A1 (en) 2018-11-26 2022-01-20 Debiopharm International S.A. Combination treatment of hiv infections
ES2971964T3 (es) 2018-11-28 2024-06-10 Inst Nat Sante Rech Med Métodos y kit para someter a ensayo el potencial lítico de células efectoras inmunitarias
BR112021010354A2 (pt) 2018-11-30 2021-11-03 Juno Therapeutics Inc Métodos para o tratamento usando terapia celular adotiva
US12257340B2 (en) 2018-12-03 2025-03-25 Agensys, Inc. Pharmaceutical compositions comprising anti-191P4D12 antibody drug conjugates and methods of use thereof
WO2020115262A1 (en) 2018-12-07 2020-06-11 INSERM (Institut National de la Santé et de la Recherche Médicale) Use of cd26 and cd39 as new phenotypic markers for assessing maturation of foxp3+ t cells and uses thereof for diagnostic purposes
EP3897624A1 (en) 2018-12-17 2021-10-27 Institut National de la Santé et de la Recherche Médicale (INSERM) Use of sulconazole as a furin inhibitor
EP3897844B1 (en) 2018-12-19 2023-11-15 Deutsches Krebsforschungszentrum Pharmaceutical combination of anti ceacam6 and tim3 antibodies
WO2020128972A1 (en) 2018-12-20 2020-06-25 Novartis Ag Dosing regimen and pharmaceutical combination comprising 3-(1-oxoisoindolin-2-yl)piperidine-2,6-dione derivatives
CN113438961A (zh) 2018-12-20 2021-09-24 Xencor股份有限公司 含有IL-15/IL-15Rα和NKG2D抗原结合结构域的靶向异二聚体Fc融合蛋白
PH12021551479A1 (en) 2018-12-21 2022-07-18 Novartis Ag Antibodies to pmel17 and conjugates thereof
AU2019408408A1 (en) 2018-12-21 2021-06-03 Valerio Therapeutics New conjugated nucleic acid molecules and their uses
KR20210121077A (ko) 2019-01-15 2021-10-07 인쎄름 (엥스띠뛰 나씨오날 드 라 쌍떼 에 드 라 흐쉐르슈 메디깔) 돌연변이된 인터루킨-34 (il-34) 폴리펩티드 및 요법에서의 이의 용도
CA3123886A1 (en) 2019-01-17 2020-07-23 James DAHLMAN Drug delivery systems containing oxidized cholesterols
BR112021014112A2 (pt) 2019-01-18 2021-10-13 Dracen Pharmaceuticals, Inc. Usos de composto pró-fármaco de don e inibidor de ponto de controle imunológico para tratar câncer, bem como composto e composição farmacêutica compreendendo o mesmo
CA3126110A1 (en) 2019-01-21 2020-07-30 Sanofi Therapeutic rna and anti-pd1 antibodies for advanced stage solid tumor cancers
CA3123303A1 (en) 2019-01-29 2020-08-06 Juno Therapeutics, Inc. Antibodies and chimeric antigen receptors specific for receptor tyrosine kinase like orphan receptor 1 (ror1)
BR112021015672A2 (pt) 2019-02-15 2021-10-05 Novartis Ag Derivados de 3-(1-oxoisoindolin-2-il)piperidina-2,6-diona substituída e usos dos mesmos
ES3032659T3 (en) 2019-02-15 2025-07-23 Novartis Ag 3-(1-oxo-5-(piperidin-4-yl)isoindolin-2-yl)piperidine-2,6-dione derivatives and uses thereof
US20220107320A1 (en) 2019-02-15 2022-04-07 Incelldx, Inc. Assaying Bladder-Associated Samples, Identifying and Treating Bladder-Associated Neoplasia, and Kits for Use Therein
WO2020169472A2 (en) 2019-02-18 2020-08-27 INSERM (Institut National de la Santé et de la Recherche Médicale) Methods of inducing phenotypic changes in macrophages
AU2020226893B2 (en) 2019-02-21 2025-02-27 Marengo Therapeutics, Inc. Multifunctional molecules that bind to T cell related cancer cells and uses thereof
GB2597851B (en) 2019-02-21 2024-05-29 Marengo Therapeutics Inc Antibody molecules that bind to NKP30 and uses thereof
US20220088075A1 (en) 2019-02-22 2022-03-24 The Trustees Of The University Of Pennsylvania Combination therapies of egfrviii chimeric antigen receptors and pd-1 inhibitors
TW202045544A (zh) 2019-02-22 2020-12-16 美商戊瑞治療有限公司 用於治療PD-L1陰性腫瘤之CD80胞外結構域Fc融合蛋白
MA55084A (fr) 2019-02-28 2022-01-05 Regeneron Pharma Administration d'inhibiteurs de pd-1 pour le traitement du cancer de la peau
AU2020231343B2 (en) 2019-03-06 2026-03-26 Regeneron Pharmaceuticals, Inc. IL-4/IL-13 pathway inhibitors for enhanced efficacy in treating cancer
AU2020248002A1 (en) 2019-03-26 2021-10-21 The Regents Of The University Of Michigan Small molecule degraders of STAT3
US12570679B2 (en) 2019-03-29 2026-03-10 Regents Of The University Of Michigan STAT3 protein degraders
US20220175744A1 (en) * 2019-04-02 2022-06-09 Board Of Regents, The University Of Texas System Combinations of transcription inhibitors and immune checkpoint inhibitors for treatment of disease
US20220177978A1 (en) 2019-04-02 2022-06-09 INSERM (Institut National de la Santé et de la Recherche Médicale) Methods of predicting and preventing cancer in patients having premalignant lesions
US20220160692A1 (en) 2019-04-09 2022-05-26 INSERM (Institut National de la Santé et de la Recherche Médicale) Use of sk2 inhibitors in combination with immune checkpoint blockade therapy for the treatment of cancer
EP3956446A1 (en) 2019-04-17 2022-02-23 INSERM (Institut National de la Santé et de la Recherche Médicale) Methods and compositions for treatment of nlrp3 inflammasome mediated il-1beta dependent disorders
EP3725370A1 (en) 2019-04-19 2020-10-21 ImmunoBrain Checkpoint, Inc. Modified anti-pd-l1 antibodies and methods and uses for treating a neurodegenerative disease
AU2020276242B2 (en) 2019-05-13 2025-01-30 Regeneron Pharmaceuticals, Inc. Combination of PD-1 inhibitors and LAG-3 inhibitors for enhanced efficacy in treating cancer
AU2020278465B2 (en) 2019-05-20 2026-04-23 Dana-Farber Cancer Institute, Inc. Boronic ester prodrugs and uses thereof
WO2020239558A1 (en) 2019-05-24 2020-12-03 Pfizer Inc. Combination therapies using cdk inhibitors
US20220265590A1 (en) 2019-06-12 2022-08-25 Vanderbilt University Dibenzylamines as amino acid transport inhibitors
AU2020291464A1 (en) 2019-06-12 2022-02-03 Vanderbilt University Amino acid transport inhibitors and the uses thereof
KR20220041080A (ko) 2019-06-18 2022-03-31 얀센 사이언시즈 아일랜드 언리미티드 컴퍼니 B형 간염 바이러스(hbv) 백신 및 항-pd-1 또는 항-pc-l1 항체의 조합
AU2020296372A1 (en) 2019-06-18 2022-02-17 Janssen Sciences Ireland Unlimited Company Combination of hepatitis B virus (HBV) vaccines and anti-PD-1 antibody
BR112021026334A2 (pt) 2019-06-27 2022-05-10 Medstar Health Macrófagos ativados por hdac6, composições, e usos dos mesmos
AU2020315401B2 (en) 2019-07-16 2025-05-22 The Regents Of The University Of Michigan Imidazopyrimidines as EED inhibitors and the use thereof
WO2021023698A1 (en) 2019-08-02 2021-02-11 Lanthiopep B.V Angiotensin type 2 (at2) receptor agonists for use in the treatment of cancer
CN112300286A (zh) * 2019-08-02 2021-02-02 康方药业有限公司 抗ctla4-抗pd-1双特异性抗体及其用途
JP7765379B2 (ja) 2019-08-12 2025-11-06 ピュリノミア バイオテック, インコーポレイテッド Cd39発現細胞のadcc標的化を介してt細胞媒介性免疫応答を促進及び増強するための方法及び組成物
GB201912107D0 (en) 2019-08-22 2019-10-09 Amazentis Sa Combination
WO2021041532A1 (en) 2019-08-26 2021-03-04 Dana-Farber Cancer Institute, Inc. Use of heparin to promote type 1 interferon signaling
US20220388978A1 (en) 2019-08-27 2022-12-08 Regents Of The University Of Michigan Cereblon e3 ligase inhibitors
KR20220053007A (ko) 2019-08-30 2022-04-28 아게누스 인코포레이티드 항-cd96 항체 및 이의 사용 방법
TW202124444A (zh) 2019-09-16 2021-07-01 美商表面腫瘤學公司 抗cd39抗體組合物及方法
TW202124446A (zh) 2019-09-18 2021-07-01 瑞士商諾華公司 與entpd2抗體之組合療法
JP2022548881A (ja) 2019-09-18 2022-11-22 ノバルティス アーゲー Entpd2抗体、組合せ療法並びに抗体及び組合せ療法を使用する方法
PE20221416A1 (es) 2019-09-18 2022-09-20 Novartis Ag Proteinas de fusion nkg2d y sus usos
CN115023267A (zh) 2019-09-19 2022-09-06 密歇根大学董事会 螺环雄激素受体蛋白质降解剂
EP4034148A4 (en) 2019-09-23 2025-09-10 Harvard College BIOMATERIAL-BASED ANTIGEN-FREE VACCINE AND ITS USE
TWI875823B (zh) 2019-09-25 2025-03-11 美商表面腫瘤學有限責任公司 抗il-27抗體及用途
MX2022003357A (es) 2019-09-25 2022-05-03 Seagen Inc Combinación de anticuerpo anti-cd30 conjugado con un farmaco, anti-pd-1 y quimioterapia para el tratamiento de cánceres hematopoyéticos.
US11667613B2 (en) 2019-09-26 2023-06-06 Novartis Ag Antiviral pyrazolopyridinone compounds
CA3151322A1 (en) 2019-10-01 2021-04-08 Silverback Therapeutics, Inc. Combination therapy with immune stimulatory conjugates
EP3800201A1 (en) 2019-10-01 2021-04-07 INSERM (Institut National de la Santé et de la Recherche Médicale) Cd28h stimulation enhances nk cell killing activities
WO2021067863A2 (en) 2019-10-03 2021-04-08 Xencor, Inc. Targeted il-12 heterodimeric fc-fusion proteins
EP4037710A1 (en) 2019-10-04 2022-08-10 Institut National de la Santé et de la Recherche Médicale (INSERM) Methods and pharmaceutical composition for the treatment of ovarian cancer, breast cancer or pancreatic cancer
TW202128757A (zh) 2019-10-11 2021-08-01 美商建南德克公司 具有改善之特性的 PD-1 標靶 IL-15/IL-15Rα FC 融合蛋白
US20220395553A1 (en) 2019-11-14 2022-12-15 Cohbar, Inc. Cxcr4 antagonist peptides
JP7543404B2 (ja) * 2019-11-20 2024-09-02 ジーアイ・セル・インコーポレイテッド T細胞培養用培地組成物及びこれを用いたt細胞の培養方法
KR20220104217A (ko) 2019-11-26 2022-07-26 노파르티스 아게 Cd19 및 cd22 키메라 항원 수용체 및 이의 용도
US20210154281A1 (en) 2019-11-26 2021-05-27 Massachusetts Institute Of Technology Cell-based cancer vaccines and cancer therapies
GB201917254D0 (en) 2019-11-27 2020-01-08 Adc Therapeutics Sa Combination therapy
AU2020397956A1 (en) 2019-12-04 2022-07-07 Orna Therapeutics, Inc. Circular RNA compositions and methods
US11897950B2 (en) 2019-12-06 2024-02-13 Augusta University Research Institute, Inc. Osteopontin monoclonal antibodies
WO2021119105A1 (en) 2019-12-09 2021-06-17 Seagen Inc. Combination therapy with liv1-adc and pd-1 antagonist
KR20220116257A (ko) 2019-12-20 2022-08-22 노파르티스 아게 골수섬유증 및 골수이형성 증후군을 치료하기 위한, 데시타빈 또는 항 pd-1 항체 스파르탈리주맙을 포함하거나 또는 포함하지 않는, 항 tim-3 항체 mbg453 및 항 tgf-베타 항체 nis793의 조합물
AU2020416273A1 (en) 2020-01-03 2022-07-28 Marengo Therapeutics, Inc. Anti-TCR antibody molecules and uses thereof
WO2021138407A2 (en) 2020-01-03 2021-07-08 Marengo Therapeutics, Inc. Multifunctional molecules that bind to cd33 and uses thereof
CN111110655B (zh) * 2020-01-20 2020-12-25 山东大学 一种纳米复合物及其制备方法和应用
JP2023511439A (ja) 2020-01-28 2023-03-17 ジェネンテック, インコーポレイテッド がんの治療のためのil15/il15rアルファヘテロ二量体fc融合タンパク質
US20230086099A1 (en) 2020-01-30 2023-03-23 Ona Therapeutics, S.L. Combination therapy for treatment of cancer and cancer metastasis
TW202146452A (zh) 2020-02-28 2021-12-16 瑞士商諾華公司 結合cd123和cd3之雙特異性抗體的給藥
JP2023516724A (ja) 2020-03-06 2023-04-20 オーエヌエー セラピューティクス エセ.エレ. 抗cd36抗体及び癌を治療するためのそれらの使用
EP4121453A2 (en) 2020-03-20 2023-01-25 Orna Therapeutics, Inc. Circular rna compositions and methods
WO2021195481A1 (en) 2020-03-26 2021-09-30 The Regents Of The University Of Michigan Small molecule stat protein degraders
IL297147B1 (en) 2020-04-10 2026-05-01 Juno Therapeutics Inc Methods and uses related to engineered cell therapy with a chimeric antigen receptor directed against a B-cell maturation antigen
US20230181756A1 (en) 2020-04-30 2023-06-15 Novartis Ag Ccr7 antibody drug conjugates for treating cancer
AU2021265801B2 (en) 2020-05-01 2026-04-02 Ngm Biopharmaceuticals, Inc. ILT-binding agents and methods of use thereof
AU2021270750B2 (en) 2020-05-13 2024-06-13 Massachusetts Institute Of Technology Compositions of polymeric microdevices and their use in cancer immunotherapy
MX2022014734A (es) 2020-05-26 2023-03-15 Regeneron Pharma Metodos de tratamiento del cancer de cuello uterino mediante la administracion del anticuerpo inhibidor de pd-1 cemiplimab.
JP7858550B2 (ja) 2020-05-26 2026-05-14 アンスティチュート、ナシオナル、ドゥ、ラ、サンテ、エ、ドゥ、ラ、ルシェルシュ、メディカル 重症急性呼吸器症候群コロナウイルス2(sars-cov-2)ポリペプチドおよびワクチン目的でのその使用
WO2021243207A1 (en) 2020-05-28 2021-12-02 Modernatx, Inc. Use of mrnas encoding ox40l, il-23 and il-36gamma for treating cancer
US11767353B2 (en) 2020-06-05 2023-09-26 Theraly Fibrosis, Inc. Trail compositions with reduced immunogenicity
CN116096862A (zh) 2020-06-11 2023-05-09 诺华股份有限公司 Zbtb32抑制剂及其用途
AR122644A1 (es) 2020-06-19 2022-09-28 Onxeo Nuevas moléculas de ácido nucleico conjugado y sus usos
CN115916199A (zh) 2020-06-23 2023-04-04 诺华股份有限公司 包含3-(1-氧代异吲哚啉-2-基)哌啶-2,6-二酮衍生物的给药方案
WO2021260675A1 (en) 2020-06-24 2021-12-30 Yeda Research And Development Co. Ltd. Agents for sensitizing solid tumors to treatment
US20230257365A1 (en) 2020-07-10 2023-08-17 The Regents Of The University Of Michigan Small molecule androgen receptor protein degraders
US20230233690A1 (en) 2020-07-10 2023-07-27 The Regents Of The University Of Michigan Androgen receptor protein degraders
US20230271940A1 (en) 2020-08-03 2023-08-31 Novartis Ag Heteroaryl substituted 3-(1-oxoisoindolin-2-yl)piperidine-2,6-dione derivatives and uses thereof
GB2616354A (en) 2020-08-26 2023-09-06 Marengo Therapeutics Inc Methods of detecting TRBC1 or TRBC2
US20230323470A1 (en) 2020-08-26 2023-10-12 Regeneron Pharmaceuticals, Inc. Methods of treating cancer by administering a pd-1 inhibitor
WO2022049526A1 (en) 2020-09-02 2022-03-10 Pharmabcine Inc. Combination therapy of a pd-1 antagonist and an antagonist for vegfr-2 for treating patients with cancer
EP4208258A1 (en) 2020-09-03 2023-07-12 Regeneron Pharmaceuticals, Inc. Methods of treating cancer pain by administering a pd-1 inhibitor
WO2022053864A1 (en) * 2020-09-08 2022-03-17 Kwon Byoung S Pd-1 polypeptide variants
AR123585A1 (es) 2020-09-24 2022-12-21 Merck Sharp & Dohme Formulaciones estables de anticuerpos programados del receptor de muerte 1 (pd-1) y variantes de hialuronidasa y fragmentos de las mismas y métodos de uso de las mismas
CN116601140A (zh) 2020-10-02 2023-08-15 羿尊生物医药股份有限公司 用于皮下施用的包含(s)-2-((s)-2-乙酰氨基-3-(1h-吲哚-3-基)丙酰氨基)-6-重氮基-5-氧代己酸异丙酯的冻干组合物及其用途
WO2022072762A1 (en) 2020-10-02 2022-04-07 Regeneron Pharmaceuticals, Inc. Combination of antibodies for treating cancer with reduced cytokine release syndrome
US20240101666A1 (en) 2020-10-23 2024-03-28 Bristol-Myers Squibb Company Lag-3 antagonist therapy for lung cancer
EP4240491A1 (en) 2020-11-06 2023-09-13 Novartis AG Cd19 binding molecules and uses thereof
KR20230107260A (ko) 2020-11-12 2023-07-14 인쎄름 (엥스띠뛰 나씨오날 드 라 쌍떼 에 드 라 흐쉐르슈 메디깔) Sars-cov-2 스파이크 단백질의 수용체-결합 도메인에 접합되거나 융합된 항체, 및 백신 목적을 위한 이의 용도
WO2022101463A1 (en) 2020-11-16 2022-05-19 INSERM (Institut National de la Santé et de la Recherche Médicale) Use of the last c-terminal residues m31/41 of zikv m ectodomain for triggering apoptotic cell death
WO2022118197A1 (en) 2020-12-02 2022-06-09 Pfizer Inc. Time to resolution of axitinib-related adverse events
US20240050432A1 (en) 2020-12-08 2024-02-15 Infinity Pharmaceuticals, Inc. Eganelisib for use in the treatment of pd-l1 negative cancer
KR20220082558A (ko) 2020-12-10 2022-06-17 재단법인 의약바이오컨버젼스연구단 면역 증진 활성이 있는 신규 crs 단편 펩타이드 및 이의 용도
EP4284510A1 (en) 2021-01-29 2023-12-06 Novartis AG Dosage regimes for anti-cd73 and anti-entpd2 antibodies and uses thereof
WO2022165403A1 (en) 2021-02-01 2022-08-04 Yale University Chemotherapeutic bioadhesive particles with immunostimulatory molecules for cancer treatment
CN117222413A (zh) 2021-02-10 2023-12-12 同润生物医药(上海)有限公司 治疗肿瘤的方法和组合
GB202102396D0 (en) 2021-02-19 2021-04-07 Adc Therapeutics Sa Molecular adjuvant
US20240190874A1 (en) 2021-03-03 2024-06-13 The Regents Of The University Of Michigan Small molecule degraders of androgen receptor
US20240166647A1 (en) 2021-03-03 2024-05-23 The Regents Of The University Of Michigan Cereblon Ligands
WO2022184937A1 (en) 2021-03-05 2022-09-09 Leadartis, S.L. Trimeric polypeptides and uses thereof in the treatment of cancer
WO2022204672A1 (en) 2021-03-23 2022-09-29 Regeneron Pharmaceuticals, Inc. Methods of treating cancer in immunosuppressed or immunocompromised patients by administering a pd-1 inhibitor
WO2022212400A1 (en) 2021-03-29 2022-10-06 Juno Therapeutics, Inc. Methods for dosing and treatment with a combination of a checkpoint inhibitor therapy and a car t cell therapy
TW202304979A (zh) 2021-04-07 2023-02-01 瑞士商諾華公司 抗TGFβ抗體及其他治療劑用於治療增殖性疾病之用途
JP2024515591A (ja) 2021-04-08 2024-04-10 マレンゴ・セラピューティクス,インコーポレーテッド Tcrに結合する多機能性分子およびその使用
US20240228659A1 (en) 2021-04-14 2024-07-11 INSERM (Institut National de la Santé et de la Recherche Médicale) New method to improve nk cells cytotoxicity
WO2022221720A1 (en) 2021-04-16 2022-10-20 Novartis Ag Antibody drug conjugates and methods for making thereof
WO2022231930A1 (en) 2021-04-26 2022-11-03 Celanese Eva Performance Polymers Llc Implantable device for sustained release of a macromolecular drug compound
AR125874A1 (es) 2021-05-18 2023-08-23 Novartis Ag Terapias de combinación
WO2022242737A1 (zh) 2021-05-21 2022-11-24 天津立博美华基因科技有限责任公司 药物组合及其用途
JP2024522349A (ja) 2021-05-25 2024-06-18 エーデルワイス イミューン インク C-x-cモチーフケモカイン受容体6(cxcr6)結合分子及びその使用方法
WO2022247972A2 (es) 2021-05-26 2022-12-01 Centro De Inmunologia Molecular Uso de composiciones terapéuticas para el tratamiento de pacientes con tumores de origen epitelial
TW202307210A (zh) 2021-06-01 2023-02-16 瑞士商諾華公司 Cd19和cd22嵌合抗原受體及其用途
TW202313679A (zh) 2021-06-03 2023-04-01 美商欣爍克斯公司 包含il-2接合物及pd-1拮抗劑之頭頸癌組合療法
EP4367269A1 (en) 2021-07-05 2024-05-15 Inserm (Institut National De La Sante Et De La Recherche Medicale) Gene signatures for predicting survival time in patients suffering from renal cell carcinoma
CA3225932A1 (en) 2021-07-19 2023-01-26 Regeneron Pharmaceuticals, Inc. Combination of checkpoint inhibitors and an oncolytic virus for treating cancer
CN118488964A (zh) 2021-07-30 2024-08-13 Ona疗法有限公司 抗cd36抗体及其治疗癌症的用途
EP4380596A1 (en) 2021-08-04 2024-06-12 Genentech, Inc. Il15/il15r alpha heterodimeric fc-fusion proteins for the expansion of nk cells in the treatment of solid tumours
WO2023031366A1 (en) 2021-09-02 2023-03-09 Deutsches Krebsforschungszentrum Stiftung des öffentlichen Rechts Anti-cecam6 antibodies with reduced side-effects
EP4399206A1 (en) 2021-09-08 2024-07-17 Redona Therapeutics, Inc. Papd5 and/or papd7 inhibiting 4-oxo-1,4-dihydroquinoline-3-carboxylic acid derivatives
WO2023057882A1 (en) 2021-10-05 2023-04-13 Pfizer Inc. Combinations of azalactam compounds with a pd-1 axis binding antagonist for the treatment of cancer
CA3234821A1 (en) 2021-10-28 2023-05-04 Suman Kumar VODNALA Methods for culturing immune cells
WO2023079428A1 (en) 2021-11-03 2023-05-11 Pfizer Inc. Combination therapies using tlr7/8 agonist
EP4433504A1 (en) 2021-11-17 2024-09-25 Institut National de la Santé et de la Recherche Médicale Universal sarbecovirus vaccines
AU2022409713A1 (en) 2021-12-16 2024-06-20 Valerio Therapeutics New conjugated nucleic acid molecules and their uses
WO2023122573A1 (en) 2021-12-20 2023-06-29 Synthorx, Inc. Head and neck cancer combination therapy comprising an il-2 conjugate and pembrolizumab
EP4456907A1 (en) 2021-12-30 2024-11-06 NeoImmuneTech, Inc. Method of treating a tumor with a combination of il-7 protein and vegf antagonist
IL313864A (en) 2022-01-07 2024-08-01 Regeneron Pharma Methods for treating recurrent ovarian cancer using bispecific antibodies against MUC16 and against CD3 alone or in combination with antibodies against PD-1
CN114432441B (zh) * 2022-01-11 2023-04-25 中国人民解放军陆军军医大学第一附属医院 一种pd-1修饰的金复合硒化铜纳米粒子及其在介导光热靶向治疗癌症方面的应用
KR20240144944A (ko) 2022-01-28 2024-10-04 온퀄리티 파마슈티컬스 차이나 리미티드 항종양제와 관련된 질병 또는 증상을 예방하거나 치료하는 방법
JP2025504020A (ja) 2022-01-28 2025-02-06 ジョージアミューン・インコーポレイテッド Pd-1アゴニストであるプログラム細胞死タンパク質1に対する抗体
WO2023154799A1 (en) 2022-02-14 2023-08-17 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services Combination immunotherapy for treating cancer
JP2025507378A (ja) 2022-02-14 2025-03-18 ギリアード サイエンシーズ, インコーポレイテッド 抗ウイルスナフチリジノン化合物
US20250152643A1 (en) 2022-02-17 2025-05-15 Regeneron Pharmaceuticals, Inc. Combinations of checkpoint inhibitors and oncolytic virus for treating cancer
US20250188088A1 (en) 2022-02-21 2025-06-12 Onquality Pharmaceuticals China Ltd. Compound and use thereof
EP4482947A1 (en) 2022-02-24 2025-01-01 Amazentis SA Uses of urolithins
IL315405A (en) 2022-03-17 2024-11-01 Regeneron Pharma Methods for treating recurrent epithelioid sarcoma using bispecific anti-MUC16 and anti-CD3 antibodies alone or in combination with anti-PD-1 antibodies
WO2023192478A1 (en) 2022-04-01 2023-10-05 Bristol-Myers Squibb Company Combination therapy with anti-il-8 antibodies and anti-pd-1 antibodies for treating cancer
WO2023196988A1 (en) 2022-04-07 2023-10-12 Modernatx, Inc. Methods of use of mrnas encoding il-12
WO2023214325A1 (en) 2022-05-05 2023-11-09 Novartis Ag Pyrazolopyrimidine derivatives and uses thereof as tet2 inhibitors
WO2023224912A1 (en) 2022-05-16 2023-11-23 Regeneron Pharmaceuticals, Inc. Methods of treating metastatic castration-resistant prostate cancer with bispecific anti-psma x anti-cd3 antibodies alone or in combination with anti-pd-1 antibodies
CA3257280A1 (en) 2022-05-25 2023-11-30 Msd International Gmbh COMBINATION OF A BRAF INHIBITOR, AN EGFR INHIBITOR AND A PD-1 ANTAGONIST FOR THE TREATMENT OF COLORECTAL CANCER MSI-H/DMMR, WITH BRAF V600E MUTATION
US20260041745A1 (en) 2022-06-09 2026-02-12 Zymedi Co., Ltd. Novel crs fragment peptide with immunopotentiating activity, and use thereof
WO2023250400A1 (en) 2022-06-22 2023-12-28 Juno Therapeutics, Inc. Treatment methods for second line therapy of cd19-targeted car t cells
IL318277A (en) 2022-07-11 2025-03-01 Autonomous Therapeutics Inc Encoded RNA and methods for using it
JP2025530983A (ja) 2022-08-02 2025-09-19 リジェネロン・ファーマシューティカルズ・インコーポレイテッド 二重特異性抗psma×抗cd28抗体を抗pd-1抗体と組み合わせて、転移性去勢抵抗性前立腺癌を治療する方法
CN120051298A (zh) 2022-08-05 2025-05-27 朱诺治疗学股份有限公司 Gprc5d和bcma特异性嵌合抗原受体
US20260048049A1 (en) 2022-08-18 2026-02-19 Pulmatrix Operating Company, Inc. Methods for treating cancer using inhaled angiogenesis inhibitor
WO2024040264A1 (en) 2022-08-19 2024-02-22 Massachusetts Institute Of Technology Compositions and methods for targeting dendritic cell lectins
WO2024052356A1 (en) 2022-09-06 2024-03-14 Institut National de la Santé et de la Recherche Médicale Inhibitors of the ceramide metabolic pathway for overcoming immunotherapy resistance in cancer
IL319877A (en) 2022-10-03 2025-05-01 Regeneron Pharma Methods for treating cancer with bispecific EGFR X CD28 antibodies alone or in combination with anti-PD-1 antibodies
JP2025536260A (ja) 2022-10-11 2025-11-05 イェール ユニバーシティー 細胞透過性抗体の組成物および使用方法
KR20250089492A (ko) 2022-11-07 2025-06-18 네오이뮨텍, 인코퍼레이티드 비메틸화된 mgmt 프로모터를 갖는 종양의 치료 방법
EP4622631A1 (en) 2022-11-23 2025-10-01 University of Georgia Research Foundation, Inc. Compositions and methods of use thereof for increasing immune responses
WO2024129778A2 (en) 2022-12-13 2024-06-20 Juno Therapeutics, Inc. Chimeric antigen receptors specific for baff-r and cd19 and methods and uses thereof
EP4680342A1 (en) 2023-03-13 2026-01-21 Regeneron Pharmaceuticals, Inc. Combination of pd-1 inhibitors and lag-3 inhibitors for enhanced efficacy in treating melanoma
WO2024215787A1 (en) 2023-04-11 2024-10-17 Ngm Biopharmaceuticals, Inc. Methods of treating osteosarcoma using lair1 binding agents and pd-1 antagonists
WO2024216028A1 (en) 2023-04-12 2024-10-17 Agenus Inc. Methods of treating cancer using an anti-ctla4 antibody and an enpp1 inhibitor
WO2024213767A1 (en) 2023-04-14 2024-10-17 Institut National de la Santé et de la Recherche Médicale Engraftment of mesenchymal stromal cells engineered to stimulate immune infiltration in tumors
WO2024223299A2 (en) 2023-04-26 2024-10-31 Isa Pharmaceuticals B.V. Methods of treating cancer by administering immunogenic compositions and a pd-1 inhibitor
WO2024261302A1 (en) 2023-06-22 2024-12-26 Institut National de la Santé et de la Recherche Médicale Nlrp3 inhibitors, pak1/2 inhibitors and/or caspase 1 inhibitors for use in the treatment of rac2 monogenic disorders
WO2025003193A1 (en) 2023-06-26 2025-01-02 Institut National de la Santé et de la Recherche Médicale Sertraline and indatraline for disrupting intracellular cholesterol trafficking and subsequently inducing lysosomal damage and anti-tumor immunity
WO2025006811A1 (en) 2023-06-27 2025-01-02 Lyell Immunopharma, Inc. Methods for culturing immune cells
WO2025012417A1 (en) 2023-07-13 2025-01-16 Institut National de la Santé et de la Recherche Médicale Anti-neurotensin long fragment and anti-neuromedin n long fragment antibodies and uses thereof
AU2024298986C1 (en) 2023-07-21 2026-03-19 Jiangsu Mabwell Health Pharmaceutical R & D Co., Ltd. Pharmaceutical composition containing anti-nectin4 antibody-drug conjugate and anti-pd-1 antibody and use thereof
CN121604974A (zh) 2023-08-02 2026-03-03 瑞泽恩制药公司 用双特异性抗psma x抗CD28抗体治疗转移性去势抵抗性前列腺癌的方法
KR20260049559A (ko) 2023-08-02 2026-04-14 리제너론 파아마슈티컬스, 인크. 이중특이적 항-PSMA x 항-CD28 항체를 이용한 투명 세포 신세포 암종의 치료 방법
US20250075000A1 (en) 2023-09-06 2025-03-06 Novimmune Sa Combination therapy with a cea x cd28 bispecific antibody and blocking anti-pd-1 antibodies for enhanced in vivo anti-tumor activity
WO2025080538A1 (en) 2023-10-09 2025-04-17 Regeneron Pharmaceuticals, Inc. Methods of treating cancer with a combination of a pd1 inhibitor and a targeted immunocytokine
WO2025106736A2 (en) 2023-11-15 2025-05-22 Regeneron Pharmaceuticals, Inc. Combination of pd-1 inhibitors and lag-3 inhibitors for enhanced efficacy in treating lung cancer
TW202539732A (zh) 2023-11-29 2025-10-16 美商再生元醫藥公司 以雙特異性抗muc16×抗cd28抗體與抗pd-1抗體之組合或與雙特異性抗muc16×抗cd3抗體之組合治療復發性卵巢癌及子宮內膜癌之方法
TW202542187A (zh) 2023-12-12 2025-11-01 美商再生元醫藥公司 以雙特異性抗muc16x抗cd3抗體單獨或與抗pd-1抗體組合治療子宮內膜癌之方法
WO2025151487A2 (en) 2024-01-08 2025-07-17 Regents Of The University Of Michigan Small-molecule inhibitors of adar1
WO2025151800A1 (en) 2024-01-10 2025-07-17 Autonomous Therapeutics, Inc. Programmable, rna editor-controlled nucleic acid dose amplifiers and their methods of use
WO2025151803A1 (en) 2024-01-10 2025-07-17 Autonomous Therapeutics, Inc. Alphaviral encrypted rnas and their methods of use
WO2025210175A1 (en) 2024-04-04 2025-10-09 Centre National De La Recherche Scientifique Mutant csf-1r extracellular domain fusion molecules and therapeutic uses thereof
WO2025250689A1 (en) * 2024-05-28 2025-12-04 Georgia State University Research Foundation Combination therapy with angiogenesis protein and immune checkpoint inhibitor with/without chemotherapeutics
WO2026006604A1 (en) 2024-06-26 2026-01-02 Lyell Immunopharma, Inc. Feeder cell replacement
WO2026012976A1 (en) 2024-07-08 2026-01-15 Institut National de la Santé et de la Recherche Médicale Use of inhibitor of gasdermind for treatment of rac2 monogenic disorders
WO2026015612A1 (en) 2024-07-10 2026-01-15 Regeneron Pharmaceuticals, Inc. Methods of treating smarcb1-deficient cancers
WO2026037841A1 (en) 2024-08-12 2026-02-19 ONA Therapeutics S.L. Anti-fgfr4 molecules and uses thereof
WO2026050572A2 (en) 2024-08-29 2026-03-05 Marengo Therapeutics, Inc. Multifunctional molecules binding to tcr and uses thereof
WO2026052851A2 (en) 2024-09-09 2026-03-12 Institut National de la Santé et de la Recherche Médicale Inhibitor of ciliogenesis for use in a method of preventing therapeutic resistance in cancer
WO2026059920A1 (en) 2024-09-10 2026-03-19 Regeneron Pharmaceuticals, Inc. Methods of treating multiple myeloma with bcma inhibitors in combination with pd1/pd-l1 inhibitors
WO2026093526A1 (en) 2024-10-31 2026-05-07 Institut National de la Santé et de la Recherche Médicale Methods of predicting cancer in patients having premalignant lesions
WO2026093435A1 (en) 2024-10-31 2026-05-07 Institut National de la Santé et de la Recherche Médicale Use of jak inhibitors for enhancing the potency of immunotherapy in the treament of cancer

Citations (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5190929A (en) 1988-05-25 1993-03-02 Research Corporation Technologies, Inc. Cyclophosphamide analogs useful as anti-tumor agents
WO2001014557A1 (en) 1999-08-23 2001-03-01 Dana-Farber Cancer Institute, Inc. Pd-1, a receptor for b7-4, and uses therefor
WO2002079499A1 (en) 2001-04-02 2002-10-10 Wyeth Pd-1, a receptor for b7-4, and uses therefor
WO2003099196A2 (en) 2002-05-23 2003-12-04 Cure Tech Ltd. Humanized immunomodulatory monoclonal antibodies for the treatment of neoplastic disease or immunodeficiency
WO2004004771A1 (ja) 2002-07-03 2004-01-15 Ono Pharmaceutical Co., Ltd. 免疫賦活組成物
WO2004056875A1 (en) 2002-12-23 2004-07-08 Wyeth Antibodies against pd-1 and uses therefor
WO2004072286A1 (ja) 2003-01-23 2004-08-26 Ono Pharmaceutical Co., Ltd. ヒトpd−1に対し特異性を有する物質
US6803192B1 (en) 1999-11-30 2004-10-12 Mayo Foundation For Medical Education And Research B7-H1, a novel immunoregulatory molecule
WO2006012232A1 (en) 2004-06-24 2006-02-02 Mayo Foundation For Medical Education And Research B7-h5, a costimulatory polypeptide
US20060099203A1 (en) 2004-11-05 2006-05-11 Pease Larry R B7-DC binding antibody
US7052694B2 (en) 2002-07-16 2006-05-30 Mayo Foundation For Medical Education And Research Dendritic cell potentiation
WO2006121168A1 (en) 2005-05-09 2006-11-16 Ono Pharmaceutical Co., Ltd. Human monoclonal antibodies to programmed death 1(pd-1) and methods for treating cancer using anti-pd-1 antibodies alone or in combination with other immunotherapeutics
WO2006133396A2 (en) 2005-06-08 2006-12-14 Dana-Farber Cancer Institute Methods and compositions for the treatment of persistent infections and cancer by inhibiting the programmed cell death 1 (pd-1) pathway
WO2007005874A2 (en) 2005-07-01 2007-01-11 Medarex, Inc. Human monoclonal antibodies to programmed death ligand 1 (pd-l1)
WO2007056539A2 (en) 2005-11-08 2007-05-18 Medarex, Inc. Prophylaxis and treatment of enterocolitis associated with anti-ctla-4 antibody therapy
US20070166281A1 (en) 2004-08-21 2007-07-19 Kosak Kenneth M Chloroquine coupled antibodies and other proteins with methods for their synthesis
US20070202077A1 (en) 2005-12-02 2007-08-30 Brodsky Robert A Use of High-Dose Oxazaphosphorine Drugs for Treating Immune Disorders
WO2008083174A2 (en) 2006-12-27 2008-07-10 Emory University Compositions and methods for the treatment of infections and tumors
US7411051B2 (en) 1997-03-07 2008-08-12 Human Genome Sciences, Inc. Antibodies to HDPPA04 polypeptide
WO2009014708A2 (en) 2007-07-23 2009-01-29 Cell Genesys, Inc. Pd-1 antibodies in combination with a cytokine-secreting cell and methods of use thereof
WO2009073533A2 (en) 2007-11-30 2009-06-11 Medarex, Inc. Anti-b7h4 monoclonal antibody-drug conjugate and methods of use

Family Cites Families (94)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2011464A (en) 1933-03-23 1935-08-13 Winkler Alfred Device for removing from a pile of sheets the sheet lowermost at the time
US4272398A (en) 1978-08-17 1981-06-09 The United States Of America As Represented By The Secretary Of Agriculture Microencapsulation process
US4376110A (en) 1980-08-04 1983-03-08 Hybritech, Incorporated Immunometric assays using monoclonal antibodies
US4769330A (en) 1981-12-24 1988-09-06 Health Research, Incorporated Modified vaccinia virus and methods for making and using the same
US5155020A (en) 1989-03-08 1992-10-13 Health Research Inc. Recombinant poxvirus host range selection system
US4650764A (en) 1983-04-12 1987-03-17 Wisconsin Alumni Research Foundation Helper cell
US4861719A (en) 1986-04-25 1989-08-29 Fred Hutchinson Cancer Research Center DNA constructs for retrovirus packaging cell lines
WO1988001213A1 (en) 1986-08-18 1988-02-25 Clinical Technologies Associates, Inc. Delivery systems for pharmacological agents
US4946778A (en) 1987-09-21 1990-08-07 Genex Corporation Single polypeptide chain binding molecules
US4980289A (en) 1987-04-27 1990-12-25 Wisconsin Alumni Research Foundation Promoter deficient retroviral vector
US4861627A (en) 1987-05-01 1989-08-29 Massachusetts Institute Of Technology Preparation of multiwall polymeric microcapsules
US6699475B1 (en) 1987-09-02 2004-03-02 Therion Biologics Corporation Recombinant pox virus for immunization against tumor-associated antigens
US5750375A (en) 1988-01-22 1998-05-12 Zymogenetics, Inc. Methods of producing secreted receptor analogs and biologically active dimerized polypeptide fusions
US6018026A (en) 1988-01-22 2000-01-25 Zymogenetics, Inc. Biologically active dimerized and multimerized polypeptide fusions
US5567584A (en) 1988-01-22 1996-10-22 Zymogenetics, Inc. Methods of using biologically active dimerized polypeptide fusions to detect PDGF
EP0721983A1 (en) 1988-01-22 1996-07-17 ZymoGenetics, Inc. Methods of producing biologically active peptide dimers
US5278056A (en) 1988-02-05 1994-01-11 The Trustees Of Columbia University In The City Of New York Retroviral packaging cell lines and process of using same
US5223409A (en) 1988-09-02 1993-06-29 Protein Engineering Corp. Directed evolution of novel binding proteins
US5124263A (en) 1989-01-12 1992-06-23 Wisconsin Alumni Research Foundation Recombination resistant retroviral helper cell and products produced thereby
US5225538A (en) 1989-02-23 1993-07-06 Genentech, Inc. Lymphocyte homing receptor/immunoglobulin fusion proteins
US5225336A (en) 1989-03-08 1993-07-06 Health Research Incorporated Recombinant poxvirus host range selection system
US5175099A (en) 1989-05-17 1992-12-29 Research Corporation Technologies, Inc. Retrovirus-mediated secretion of recombinant products
US5240846A (en) 1989-08-22 1993-08-31 The Regents Of The University Of Michigan Gene therapy vector for cystic fibrosis
US5013556A (en) 1989-10-20 1991-05-07 Liposome Technology, Inc. Liposomes with enhanced circulation time
US5283173A (en) 1990-01-24 1994-02-01 The Research Foundation Of State University Of New York System to detect protein-protein interactions
US5204243A (en) 1990-02-14 1993-04-20 Health Research Incorporated Recombinant poxvirus internal cores
US6641809B1 (en) 1990-03-26 2003-11-04 Bristol-Myers Squibb Company Method of regulating cellular processes mediated by B7 and CD28
NZ241954A (en) 1991-03-15 1994-01-26 Amgen Inc Compositions of g-csf for pulmonary administration.
US5637481A (en) 1993-02-01 1997-06-10 Bristol-Myers Squibb Company Expression vectors encoding bispecific fusion proteins and methods of producing biologically active bispecific fusion proteins in a mammalian cell
EP0609356A4 (en) * 1991-10-21 1994-10-26 Sphinx Pharma Corp 2-aminopropan-1,3-diol chemotherapeutic agents.
US5932448A (en) 1991-11-29 1999-08-03 Protein Design Labs., Inc. Bispecific antibody heterodimers
US5521184A (en) 1992-04-03 1996-05-28 Ciba-Geigy Corporation Pyrimidine derivatives and processes for the preparation thereof
TW225528B (enExample) 1992-04-03 1994-06-21 Ciba Geigy Ag
US5861310A (en) 1993-11-03 1999-01-19 Dana-Farber Cancer Institute Tumor cells modified to express B7-2 with increased immunogenicity and uses therefor
US5942607A (en) 1993-07-26 1999-08-24 Dana-Farber Cancer Institute B7-2: a CTLA4/CD28 ligand
US5451569A (en) 1994-04-19 1995-09-19 Hong Kong University Of Science And Technology R & D Corporation Limited Pulmonary drug delivery system
US5632983A (en) 1994-11-17 1997-05-27 University Of South Florida Method for treating secondary immunodeficiency
US5731168A (en) 1995-03-01 1998-03-24 Genentech, Inc. Method for making heteromultimeric polypeptides
US5675848A (en) 1995-10-18 1997-10-14 Mallinckrodt Medical, Inc. Inflatable blanket having perforations of different sizes
US6750334B1 (en) 1996-02-02 2004-06-15 Repligen Corporation CTLA4-immunoglobulin fusion proteins having modified effector functions and uses therefor
AU737910B2 (en) 1997-01-31 2001-09-06 Regents Of The University Of California, The Chimeric antibody fusion proteins for the recruitment and stimulation of an antitumor immune response
US20070224663A1 (en) 1997-03-07 2007-09-27 Human Genome Sciences, Inc. Human Secreted Proteins
US7368531B2 (en) 1997-03-07 2008-05-06 Human Genome Sciences, Inc. Human secreted proteins
US20060223088A1 (en) 1997-03-07 2006-10-05 Rosen Craig A Human secreted proteins
US6468546B1 (en) 1998-12-17 2002-10-22 Corixa Corporation Compositions and methods for therapy and diagnosis of ovarian cancer
AU6058500A (en) 1999-06-30 2001-01-31 Center For Blood Research, The Fusion protein and uses thereof
EP1074617A3 (en) 1999-07-29 2004-04-21 Research Association for Biotechnology Primers for synthesising full-length cDNA and their use
AR034118A1 (es) 2000-02-15 2004-02-04 Sugen Inc Compuestos de 2-indolinonas sustituidas con pirroles inhibidoras de proteinquinasas; sus composiciones farmaceuticas e intermediarios de sintesis
EP1274720A4 (en) 2000-04-12 2004-08-18 Human Genome Sciences Inc FUSION PROTEINS CONTAINING ALBUMIN
US7030219B2 (en) 2000-04-28 2006-04-18 Johns Hopkins University B7-DC, Dendritic cell co-stimulatory molecules
US20030031675A1 (en) * 2000-06-06 2003-02-13 Mikesell Glen E. B7-related nucleic acids and polypeptides useful for immunomodulation
WO2001094413A2 (en) 2000-06-06 2001-12-13 Bristol-Myers Squibb Company B7-related nucleic acids and polypeptides and their uses for immunomodulation
WO2001097843A2 (en) * 2000-06-22 2001-12-27 University Of Iowa Research Foundation Methods for enhancing antibody-induced cell lysis and treating cancer
EP1320599A2 (en) 2000-06-28 2003-06-25 Genetics Institute, LLC Pd-l2 molecules: pd-1 ligands and uses therefor
WO2002002587A1 (en) 2000-06-30 2002-01-10 Human Genome Sciences, Inc. B7-like polynucleotides, polypeptides, and antibodies
US6635750B1 (en) 2000-07-20 2003-10-21 Millennium Pharmaceuticals, Inc. B7-H2 nucleic acids, members of the B7 family
CA2422215A1 (en) 2000-09-20 2002-03-28 Amgen Inc. B7-like molecules and uses thereof
US7182942B2 (en) 2000-10-27 2007-02-27 Irx Therapeutics, Inc. Vaccine immunotherapy for immune suppressed patients
US7408041B2 (en) 2000-12-08 2008-08-05 Alexion Pharmaceuticals, Inc. Polypeptides and antibodies derived from chronic lymphocytic leukemia cells and uses thereof
US6551786B2 (en) 2001-01-04 2003-04-22 Myriad Genetics, Inc. Screen assay for selecting protein-protein interaction modulators
US6743619B1 (en) 2001-01-30 2004-06-01 Nuvelo Nucleic acids and polypeptides
AR036993A1 (es) 2001-04-02 2004-10-20 Wyeth Corp Uso de agentes que modulan la interaccion entre pd-1 y sus ligandos en la submodulacion de respuestas inmunologicas
US20060084794A1 (en) 2001-04-12 2006-04-20 Human Genome Sciences, Inc. Albumin fusion proteins
US7794710B2 (en) 2001-04-20 2010-09-14 Mayo Foundation For Medical Education And Research Methods of enhancing T cell responsiveness
GB0121285D0 (en) * 2001-09-03 2001-10-24 Cancer Res Ventures Ltd Anti-cancer combinations
DE60224822T2 (de) 2001-10-19 2009-01-22 Zymogenetics, Inc., Seattle Dimerisierter wachstumsfaktor sowie materialien und verfahren zu seiner herstellung
CA2466279A1 (en) 2001-11-13 2003-05-22 Dana-Farber Cancer Institute, Inc. Agents that modulate immune cell activation and methods of use thereof
US7164500B2 (en) 2002-01-29 2007-01-16 Hewlett-Packard Development Company, L.P. Method and apparatus for the automatic generation of image capture device control marks
EP1551376A4 (en) 2002-08-12 2010-10-06 Dynavax Tech Corp IMMUNOMODULATORY COMPOSITIONS, PREPARATION METHOD AND USER METHOD THEREFOR
US7432351B1 (en) 2002-10-04 2008-10-07 Mayo Foundation For Medical Education And Research B7-H1 variants
US7579437B2 (en) 2003-02-27 2009-08-25 Theravision Gmbh Polypeptides and methods for making the same
PT2251353E (pt) 2003-08-07 2013-05-07 Zymogenetics Inc Preparações homogéneas de il-28 e il-29
ATE517914T1 (de) 2004-03-08 2011-08-15 Zymogenetics Inc Dimere fusionsproteine und materialien und verfahren zu deren herstellung
MX2007002271A (es) * 2004-07-23 2007-06-15 Om Pharma Terapia anticancer combinada y composiciones farmaceuticas para la misma.
DK3428191T3 (da) 2004-10-06 2025-01-02 Mayo Found Medical Education & Res B7-h1 og pd-1 til behandling af renalcellekarcinom
AU2005302459A1 (en) 2004-10-29 2006-05-11 University Of Southern California Combination cancer immunotherapy with co-stimulatory molecules
GB0519303D0 (en) 2005-09-21 2005-11-02 Oxford Biomedica Ltd Chemo-immunotherapy method
US20070231344A1 (en) 2005-10-28 2007-10-04 The Brigham And Women's Hospital, Inc. Conjugate vaccines for non-proteinaceous antigens
CN101325971A (zh) 2005-12-07 2008-12-17 米德列斯公司 Ctla-4抗体剂量递增方案
JP2009518427A (ja) 2005-12-08 2009-05-07 ユニバーシティー オブ ルーイビル リサーチ ファンデーション,インコーポレーテッド Invivo細胞表面操作
US20090304711A1 (en) 2006-09-20 2009-12-10 Drew Pardoll Combinatorial Therapy of Cancer and Infectious Diseases with Anti-B7-H1 Antibodies
WO2008037080A1 (en) 2006-09-29 2008-04-03 Universite De Montreal Methods and compositions for immune response modulation and uses thereof
US20100055111A1 (en) * 2007-02-14 2010-03-04 Med. College Of Georgia Research Institute, Inc. Indoleamine 2,3-dioxygenase, pd-1/pd-l pathways, and ctla4 pathways in the activation of regulatory t cells
AU2008293885A1 (en) 2007-07-13 2009-03-05 The John Hopkins University B7-DC variants
EP2581441A1 (en) 2007-08-09 2013-04-17 Genzyme Corporation Method of treating autoimmune disease with mesenchymal stem cells
JP2011502163A (ja) 2007-10-31 2011-01-20 ザ スクリプス リサーチ インスティテュート 持続性ウイルス感染を治療するための併用療法
RU2531758C2 (ru) 2008-02-11 2014-10-27 Куретек Лтд. Моноклональные антитела для лечения опухолей
WO2009114110A1 (en) 2008-03-08 2009-09-17 Immungene, Inc. Engineered fusion molecules immunotherapy in cancer and inflammatory diseases
US8168757B2 (en) 2008-03-12 2012-05-01 Merck Sharp & Dohme Corp. PD-1 binding proteins
DE602008000891D1 (de) 2008-04-30 2010-05-12 Immatics Biotechnologies Gmbh Neuartige Formulierungen von Tumor-assoziierten Peptiden, welche an menschliche Leukozytenantigene der Klasse I oder II für Impfungen binden
JP2012500652A (ja) 2008-08-25 2012-01-12 アンプリミューン、インコーポレーテッド 標的化共刺激ポリペプチドおよび癌を処置するための使用方法
ES2545609T3 (es) 2008-08-25 2015-09-14 Amplimmune, Inc. Composiciones de antagonistas de PD-1 y métodos de uso
EP4209510B1 (en) 2008-12-09 2024-01-31 F. Hoffmann-La Roche AG Anti-pd-l1 antibodies and their use to enhance t-cell function
US20130017199A1 (en) 2009-11-24 2013-01-17 AMPLIMMUNE ,Inc. a corporation Simultaneous inhibition of pd-l1/pd-l2

Patent Citations (25)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5190929A (en) 1988-05-25 1993-03-02 Research Corporation Technologies, Inc. Cyclophosphamide analogs useful as anti-tumor agents
US7411051B2 (en) 1997-03-07 2008-08-12 Human Genome Sciences, Inc. Antibodies to HDPPA04 polypeptide
WO2001014557A1 (en) 1999-08-23 2001-03-01 Dana-Farber Cancer Institute, Inc. Pd-1, a receptor for b7-4, and uses therefor
US6803192B1 (en) 1999-11-30 2004-10-12 Mayo Foundation For Medical Education And Research B7-H1, a novel immunoregulatory molecule
WO2002079499A1 (en) 2001-04-02 2002-10-10 Wyeth Pd-1, a receptor for b7-4, and uses therefor
US20080274490A1 (en) 2001-04-02 2008-11-06 Dana-Farber Cancer Institute, Inc. PD-1, a receptor for B7-4, and uses therefor
US7105328B2 (en) 2001-04-02 2006-09-12 Dana-Farber Cancer Institute Methods for screening for compounds that modulate pd-1 signaling
WO2003099196A2 (en) 2002-05-23 2003-12-04 Cure Tech Ltd. Humanized immunomodulatory monoclonal antibodies for the treatment of neoplastic disease or immunodeficiency
WO2004004771A1 (ja) 2002-07-03 2004-01-15 Ono Pharmaceutical Co., Ltd. 免疫賦活組成物
US20060110383A1 (en) 2002-07-03 2006-05-25 Tasuku Honjo Immunopotentiative composition
US7390888B2 (en) 2002-07-16 2008-06-24 Mayo Foundation For Medical Education And Research Dendritic cell potentiation
US7052694B2 (en) 2002-07-16 2006-05-30 Mayo Foundation For Medical Education And Research Dendritic cell potentiation
WO2004056875A1 (en) 2002-12-23 2004-07-08 Wyeth Antibodies against pd-1 and uses therefor
WO2004072286A1 (ja) 2003-01-23 2004-08-26 Ono Pharmaceutical Co., Ltd. ヒトpd−1に対し特異性を有する物質
WO2006012232A1 (en) 2004-06-24 2006-02-02 Mayo Foundation For Medical Education And Research B7-h5, a costimulatory polypeptide
US20070166281A1 (en) 2004-08-21 2007-07-19 Kosak Kenneth M Chloroquine coupled antibodies and other proteins with methods for their synthesis
US20060099203A1 (en) 2004-11-05 2006-05-11 Pease Larry R B7-DC binding antibody
WO2006121168A1 (en) 2005-05-09 2006-11-16 Ono Pharmaceutical Co., Ltd. Human monoclonal antibodies to programmed death 1(pd-1) and methods for treating cancer using anti-pd-1 antibodies alone or in combination with other immunotherapeutics
WO2006133396A2 (en) 2005-06-08 2006-12-14 Dana-Farber Cancer Institute Methods and compositions for the treatment of persistent infections and cancer by inhibiting the programmed cell death 1 (pd-1) pathway
WO2007005874A2 (en) 2005-07-01 2007-01-11 Medarex, Inc. Human monoclonal antibodies to programmed death ligand 1 (pd-l1)
WO2007056539A2 (en) 2005-11-08 2007-05-18 Medarex, Inc. Prophylaxis and treatment of enterocolitis associated with anti-ctla-4 antibody therapy
US20070202077A1 (en) 2005-12-02 2007-08-30 Brodsky Robert A Use of High-Dose Oxazaphosphorine Drugs for Treating Immune Disorders
WO2008083174A2 (en) 2006-12-27 2008-07-10 Emory University Compositions and methods for the treatment of infections and tumors
WO2009014708A2 (en) 2007-07-23 2009-01-29 Cell Genesys, Inc. Pd-1 antibodies in combination with a cytokine-secreting cell and methods of use thereof
WO2009073533A2 (en) 2007-11-30 2009-06-11 Medarex, Inc. Anti-b7h4 monoclonal antibody-drug conjugate and methods of use

Non-Patent Citations (80)

* Cited by examiner, † Cited by third party
Title
BAJORATH ET AL., J. MOL. GRAPH. MODEL., vol. 15, 1997, pages 135 - 139
BAS; MASTRANGELO, CANCER IMMUNOL. IMMUNOTHER, vol. 47, 1998, pages 1 - 12
BASS KK; MASTRANGELO MJ: "Immunopotentiation with low-dose cyclophosphamide in the active specific immunotherapy of cancer", CANCER IMMUNOL.IMMUNOTHER, vol. 47, no. 1, September 1998 (1998-09-01), pages 1 - 12
BASS,K.K.; MASTRANGELO,M.J.: "Immunopotentiation with low-dose cyclophosphamide in the active specific immunotherapy of cancer", CANCER IMMUNOL. IMMUNOTHER., vol. 47, 1998, pages 1 - 12
BERGER ET AL., CLIN. CANCER RES., vol. 14, 2008, pages 3044 - 3051
BRODE S; COOKE A: "Immune-potentiating effects of the chemotherapeutic drug cyclophosphamide", CRIT REV.LMMUNOL., vol. 28, no. 2, 2008, pages 109 - 26
BRODE,S.; COOKE,A: "Immune-potentiating effects of the chemotherapeutic drug cyclophosphamide", CRIT REV. IMMUNOL., vol. 28, 2008, pages 109 - 126
BRODE; COOKE, CRIT REV. IMMUNOL., vol. 28, 2008, pages 109 - 126
BUTTE ET AL., IMMUNITY, vol. 27, 2007, pages 111 - 122
CHAMBERS; ALLISON, CURR. OPIN. IMMUNOL., vol. 9, 1997, pages 396 - 404
CHAPOVAL ET AL., NATURE IMMUNOL., vol. 2, 2001, pages 269 - 274
CHOI ET AL., J. IMMUNOL., vol. 171, 2003, pages 4650 - 4654
CUBILLOS-RUIZ ET AL., J. CLIN. INVEST., vol. 119, no. 8, 2009, pages 2231 - 2244
DONG ET AL., NATURE MED., vol. 5, 1999, pages 1365 - 1369
ERBE ET AL., J. BIOL. CHEM., vol. 277, 2002, pages 7363 - 7368
FREEMAN ET AL., J. EXP. MED., vol. 192, 2000, pages 1 - 9
FREEMAN ET AL., J. EXP. MED., vol. 192, 2000, pages 1027 - 1034
FREEMAN, PROC. NATL. ACAD. SCI. U. S. A, vol. 105, 2008, pages 10275 - 10276
FREEMAN,G.J.: "Structures of PD-1 with its ligands: sideways and dancing cheek to cheek", PROC. NATL. ACAD. SCI. U. S. A, vol. 105, 2008, pages 10275 - 10276
HENGST ET AL., CANCER RES., vol. 41, 1981, pages 2163 - 2167
HENGST JC; MOKYR MB; DRAY S: "Cooperation between cyclophosphamide tumoricidal activity and host antitumor immunity in the cure of mice bearing large MOPC-315 tumors", CANCER RES., vol. 41, no. 6, June 1981 (1981-06-01), pages 2163 - 7
HENGST JC; MOKYR MB; DRAY S: "Importance of timing in cyclophosphamide therapy of MOPC-315 tumor-bearing mice", CANCER RES., vol. 40, no. 7, July 1980 (1980-07-01), pages 2135 - 41
HENGST, CANCER RES., vol. 40, 1980, pages 2135 - 2141
HENGST,J.C.; MOKYR,M.B.; DRAY,S.: "Cooperation between cyclophosphamide tumoricidal activity and host antitumor immunity in the cure of mice bearing large MOPC-315 tumors", CANCER RES., vol. 41, 1981, pages 2163 - 2167
HENGST,J.C.; MOKYR,M.B.; DRAY,S.: "Importance of timing in cyclophosphamide therapy of MOPC-315 tumor-bearing mice", CANCER RES., vol. 40, 1980, pages 2135 - 2141
HIRANO F. ET AL., CANCER RESEARCH, 2005
HOCHMAN, J. ET AL., BIOCHEMISTRY, vol. 12, 1973, pages 1130 - 1135
HONEYCHURCH J; GLENNIE MJ; ILLIDGE TM: "Cyclophosphamide inhibition of anti-CD40 monoclonal antibody-based therapy of B cell lymphoma is dependent on CD11b+ cells", CANCER RES., vol. 65, no. 16, 15 August 2005 (2005-08-15), pages 7493 - 501
HONEYCHURCH,J.; GLENNIE,M.J.; ILIIDGE,T.M.: "Cyclophosphamide inhibition of anti-CD40 monoclonal antibody-based therapy of B cell lymphoma is dependent on CD11 b+ cells", CANCER RES., vol. 65, 2005, pages 7493 - 7501
IKEMIZU ET AL., IMMUNITY, vol. 12, 2000, pages 51 - 60
ISHIDA ET AL., EMBO J., vol. 11, 1992, pages 3887 - 3895
KABAT ET AL., J. BIOL. CHEM., vol. 252, 1977, pages 6609 - 6616
KEIR ET AL., CURR. OPIN. IMMUNOL., vol. 19, 2007, pages 309 - 314
KRUMMEL; ALLISON, J. EXP. MED., vol. 183, 1996, pages 2533 - 2540
LATCHMAN ET AL., NATURE IMMUNOL., vol. 2, 2001, pages 261 - 268
LAZAR MOLNAR ET AL., PNAS, vol. 105, 2008, pages 10483 - 10488
LENSHOW ET AL., ANNU. REV. IMMUNOL., vol. 14, 1996, pages 233 - 258
LI ET AL.: "Vascular endothelial growth factor blockade reduces intratumoral regulatory T cells and enhances the efficacy of a GM-CSF-secreting cancer immunotherapy", CLIN CANCER RES., vol. 12, no. 22, 15 November 2006 (2006-11-15), pages 6808 - 16
LIANG J; HUANG M; DUAN W; YU XQ; ZHOU S: "Design of new oxazaphosphorine anticancer drugs", CURR PHARM DES., vol. 13, no. 9, 2007, pages 963 - 78
MACHIELS ET AL., CANCER RES., vol. 61, 2001, pages 3689 - 3697
MACHIELS JP; REILLY RT; EMENS LA; ERCOLINI AM; LEI RY; WEINTRAUB D; OKOYE FI; JAFFEE EM: "Cyclophosphamide, doxorubicin, and paclitaxel enhance the antitumor immune response of granulocyte/macrophage-colony stimulating factor-secreting whole-cell vaccines in HER-2/neu tolerized mice", CANCER RES., vol. 61, no. 9, 1 May 2001 (2001-05-01), pages 3689 - 97
MACHIELS,J.P. ET AL.: "Cyclophosphamide, doxorubicin, and paclitaxel enhance the antitumor immune response of granulocyte/macrophage-colony stimulating factor-secreting whole-cell vaccines in HER-2/neu tolerized mice", CANCER RES., vol. 61, 2001, pages 3689 - 3697
MOLNAR ET AL.: "Crystal structure of the complex between programmed death-1 (PD-1) and its ligand PD-L2", PNAS, vol. 105, 29 July 2008 (2008-07-29), pages 10483 - 10488
NISHIMURA ET AL., IMMUNITY, vol. 11, 1999, pages 141 - 151
NISHIMURA ET AL., SCIENCE, vol. 291, 2001, pages 319 - 322
ONLAMOON ET AL., IMMUNOLOGY, vol. 124, 2008, pages 277 - 293
OSTROV ET AL., SCIENCE, vol. 290, 2000, pages 816 - 819
PERTOVAS ET AL., J. EXP. MED., vol. 203, 2006, pages 2281
PRASAD ET AL., IMMUNITY, vol. 18, 2003, pages 863 - 873
RATHMELL; THOMPSON, ANNU. REV. IMMUNOL., vol. 17, 1999, pages 781 - 828
ROUSSEAUX ET AL., METH. ENZYMOL., vol. 121, 1986, pages 663 - 69
SAMBROOK ET AL.: "Molecular Cloning: A Laboratory Manual, Second Edition,", 1989, COLD SPRING HARBOR
SCHWARTZ ET AL., NATURE IMMUNOL., vol. 3, 2002, pages 427 - 434
SCHWARTZ ET AL., NATURE, vol. 410, 2001, pages 604 - 608
See also references of EP2350129A4
SHARON, J. ET AL., BIOCHEMISTRY, vol. 15, 1976, pages 1591 - 1594
SICA ET AL., IMMUNITY, vol. 18, 2003, pages 849 - 861
STAMPER ET AL., NATURE, vol. 410, 2001, pages 608 - 611
SWALLOW ET AL., IMMUNITY, vol. 11, 1999, pages 423 - 432
TAIEB J; CHAPUT N; SCHARTZ N; ROUX S; NOVAULT S; MENARD C; GHIRINGHELLI F; TERME M; CARPENTIER AF; DARRASSE-JEZE G ET AL.: "Chemoimmunotherapy of tumors: cyclophosphamide synergizes with exosome based vaccines", J.IMMUNOL., vol. 176, no. 5, 1 March 2006 (2006-03-01), pages 2722 - 9
TAIEB,J. ET AL.: "Chemoimmunotherapy of tumors: cyclophosphamide synergizes with exosome based vaccines", J. IMMUNOL., vol. 176, 2006, pages 2722 - 2729
TAIEB,J., J. IMMUNOL., vol. 176, 2006, pages 2722 - 2729
TAMURA, BLOOD, vol. 97, 2001, pages 1809 - 1816
TSENG ET AL., J. EXP. MED., vol. 193, 2001, pages 839 - 846
TSUNG K; MEKO JB; TSUNG YL; PEPLINSKI GR; NORTON JA: "Immune response against large tumors eradicated by treatment with cyclophosphamide and IL-12", J.IMMUNOL., vol. 160, no. 3, 1 February 1998 (1998-02-01), pages 1369 - 77
TSUNG,K.; MEKO,J.B.; TSUNG,Y.L.; PEPLINSKI,G.R.; NORTON,J.A.: "Immune response against large tumors eradicated by treatment with cyclophosphamide and IL-12", J. IMMUNOL., vol. 160, 1998, pages 1369 - 1377
TUAN,: "Methods in Molecular Biology", vol. 62, 1997, HUMANA PRESS, article "Recombinant Gene Expression Protocols"
VAN DER MOST ET AL., CANCER IMMUNOL. IMMUNOTHER, vol. 58, 2009, pages 1219 - 1228
VAN DER MOST RG; CURRIE AJ; MAHENDRAN S; PROSSER A; DARABI A; ROBINSON BW; NOWAK AK; LAKE RA: "Tumor eradication after cyclophosphamide depends on concurrent depletion of regulatory T cells: a role for cycling TNFR2-expressing effector-suppressor T cells in limiting effective chemotherapy", CANCER LMMUNOL. LMMUNOTHER., vol. 58, no. 8, August 2009 (2009-08-01), pages 1219 - 28
VAN DER MOST,R.G. ET AL.: "Tumor eradication after cyclophosphamide depends on concurrent depletion of regulatory T cells: a role for cycling TNFR2-expressing effector-suppressor T cells in limiting effective chemotherapy", CANCER IMMUNOL. IMMUNOTHER., vol. 58, 2009, pages 1219 - 1228
WADA S; YOSHIMURA K; HIPKISS EL; HARRIS TJ; YEN HR; GOLDBERG MV; GROSSO JF; GETNET D; DEMARZO AM; NETTO GJ: "Cyclophosphamide augments antitumor immunity: studies in an autochthonous prostate cancer model", CANCER RES., vol. 69, no. 10, 15 May 2009 (2009-05-15), pages 4309 - 18
WAHL ET AL., J. NUC. MED., vol. 24, 1983, pages 316 - 325
WALUNAS ET AL., J. EXP. MED., vol. 183, 1996, pages 2541 - 2550
WAND ET AL., J. EXP. MED., vol. 195, 2002, pages 1033 - 1041
WANG ET AL., BLOOD, vol. 96, 2000, pages 2808 - 2813
WILLIAMS; BARCLAY, ANNU. REV. IMMUNOL., vol. 6, 1988, pages 381 - 405
WU ET AL.: "Methods in Gene Biotechnology", 1997, CRC PRESS
YOSHIMURA K ET AL., CANCER RESEARCH, 2007
YOSHINAGA ET AL., NATURE, vol. 402, 1999, pages 827 - 832
ZANG ET AL., PROC. NATL. ACAD. SCI. U.S.A., vol. 100, 2003, pages 10388 - 10392

Cited By (141)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8460927B2 (en) 1999-11-30 2013-06-11 Mayo Foundation For Medical Education And Research B7-H1 antibodies and method of use
US9370565B2 (en) 2000-04-28 2016-06-21 The Johns Hopkins University Dendritic cell co-stimulatory molecules
US8039589B1 (en) 2002-10-04 2011-10-18 Mayo Foundation For Medical Education And Research B7-DC variants
US8273864B2 (en) 2002-10-04 2012-09-25 Mayo Foundation For Medical Education And Research Nucleic acid molecules encoding B7-DC variants
US8747833B2 (en) 2004-10-06 2014-06-10 Mayo Foundation For Medical Education And Research B7-H1 and methods of diagnosis, prognosis, and treatment of cancer
US11242387B2 (en) 2004-10-06 2022-02-08 Mayo Foundation For Medical Education And Research Costimulatory B7-H1 in renal cell carcinoma patients: indicator of tumor aggressiveness and potential therapeutic target
US9803015B2 (en) 2004-10-06 2017-10-31 Mayo Foundation For Medical Education And Research Costimulatory B7-H1 in renal cell carcinoma patients: indicator of tumor aggressiveness and potential therapeutic target
US11939378B2 (en) 2004-10-06 2024-03-26 Mayo Foundation For Medical Education And Research Costimulatory B7-H1 in renal cell carcinoma patients: indicator of tumor aggressiveness and potential therapeutic target
US8445447B2 (en) 2007-07-13 2013-05-21 The Johns Hopkins University B7-DC variants immunogenic compositions and methods of use thereof
US8114845B2 (en) 2008-08-25 2012-02-14 Amplimmune, Inc. Compositions of PD-1 antagonists and methods of use
US8609089B2 (en) 2008-08-25 2013-12-17 Amplimmune, Inc. Compositions of PD-1 antagonists and methods of use
US9920123B2 (en) 2008-12-09 2018-03-20 Genentech, Inc. Anti-PD-L1 antibodies, compositions and articles of manufacture
EP2504028A4 (en) * 2009-11-24 2014-04-09 Amplimmune Inc SIMULTANEOUS INHIBITION OF PD-L1 / PD-L2
EP2910572A1 (en) * 2010-11-11 2015-08-26 The University of Hong Kong Soluble pd-1 variants, fusion constructs, and uses thereof
CN102298053A (zh) * 2011-05-20 2011-12-28 中山大学肿瘤防治中心 原发性肝细胞肝癌术后复发风险评估的组合抗体试剂盒
US9096642B2 (en) 2011-06-08 2015-08-04 Aurigene Discovery Technologies Limited Therapeutic compounds for immunomodulation
WO2012168944A1 (en) * 2011-06-08 2012-12-13 Aurigene Discovery Technologies Limited Therapeutic compounds for immunomodulation
CN103732238A (zh) * 2011-06-08 2014-04-16 奥瑞基尼探索技术有限公司 用于免疫调节的治疗性化合物
US9724413B2 (en) 2011-08-01 2017-08-08 Genentech, Inc. Methods of treating cancer using PD-1 axis binding antagonists and MEK inhibitors
JP2014525918A (ja) * 2011-08-01 2014-10-02 ジェネンテック, インコーポレイテッド Pd−1軸結合アンタゴニストとmek阻害剤を使用する癌の治療方法
US10646567B2 (en) 2011-08-01 2020-05-12 Genentech, Inc. Methods of treating cancer using PD-1 axis binding antagonists and MEK inhibitors
US11065285B2 (en) 2012-01-25 2021-07-20 Dnatrix, Inc. Biomarkers and combination therapies using oncolytic virus and immunomodulation
US11274316B2 (en) 2012-05-25 2022-03-15 Cellectis Use of pre T alpha or functional variant thereof for expanding TCR alpha deficient T cells
US11007224B2 (en) 2012-05-25 2021-05-18 Cellectis CD19 specific chimeric antigen receptor and uses thereof
US11603539B2 (en) 2012-05-25 2023-03-14 Cellectis Methods for engineering allogeneic and immunosuppressive resistant T cell for immunotherapy
WO2013176915A1 (en) * 2012-05-25 2013-11-28 Roman Galetto Methods for engineering allogeneic and immunosuppressive resistant t cell for immunotherapy
US11891614B2 (en) 2012-05-25 2024-02-06 Cellectis Methods for engineering allogeneic and immunosuppressive resistant T cell for immunotherapy
US11414674B2 (en) 2012-05-25 2022-08-16 Cellectis Use of pre T alpha or functional variant thereof for expanding TCR alpha deficient T cells
US10363270B2 (en) 2012-05-25 2019-07-30 Cellectis Methods for engineering allogeneic and immunosuppressive resistant T cell immunotherapy
US10517896B2 (en) 2012-05-25 2019-12-31 Cellectis Use of pre T alpha or functional variant thereof for expanding TCR alpha deficient T cells
US10342829B2 (en) 2012-05-25 2019-07-09 Cellectis Multi-chain chimeric antigen receptor and uses thereof
US10874693B2 (en) 2012-05-25 2020-12-29 Cellectis CD19 specific chimeric antigen receptor and uses thereof
US12577581B2 (en) 2012-05-25 2026-03-17 Cellectis Use of pre T alpha or functional variant thereof for expanding TCR alpha deficient T cells
US9895441B2 (en) 2012-05-31 2018-02-20 Genentech, Inc. Methods of treating cancer using PD-L1 axis binding antagonists and VEGF antagonists
WO2014008218A1 (en) 2012-07-02 2014-01-09 Bristol-Myers Squibb Company Optimization of antibodies that bind lymphocyte activation gene-3 (lag-3), and uses thereof
EP4553086A2 (en) 2012-07-02 2025-05-14 Bristol-Myers Squibb Company Optimization of antibodies that bind lymphocyte activation gene-3 (lag-3), and uses thereof
EP3795592A1 (en) 2012-07-02 2021-03-24 Bristol-Myers Squibb Company Optimization of antibodies that bind lymphocyte activation gene-3 (lag-3), and uses thereof
EP3275899A1 (en) 2012-07-02 2018-01-31 Bristol-Myers Squibb Company Optimization of antibodies that bind lymphocyte activation gene-3 (lag-3), and uses thereof
US11236175B2 (en) 2012-10-10 2022-02-01 Sangamo Therapeutics, Inc. T cell modifying compounds and uses thereof
US10167336B2 (en) 2013-03-14 2019-01-01 Mayo Foundation For Medical Education And Research Methods and materials for treating cancer
US11077144B2 (en) 2013-05-13 2021-08-03 Cellectis CD19 specific chimeric antigen receptor and uses thereof
WO2014194293A1 (en) 2013-05-30 2014-12-04 Amplimmune, Inc. Improved methods for the selection of patients for pd-1 or b7-h4 targeted therapies, and combination therapies thereof
EP3444271A1 (en) 2013-08-08 2019-02-20 Cytune Pharma Il-15 and il-15raplha sushi domain based modulokines
EP4269441A2 (en) 2013-08-08 2023-11-01 Cytune Pharma Il-15 and il-15ralpha sushi domain based on modulokines
EP3995507A1 (en) 2013-08-08 2022-05-11 Cytune Pharma Il-15 and il-15ralpha sushi domain based on modulokines
EP3659622A1 (en) 2013-08-08 2020-06-03 Cytune Pharma Combined pharmaceutical composition
US10188729B2 (en) 2013-08-20 2019-01-29 Merck Sharp & Dohme Corp. Modulation of tumor immunity
US10994008B2 (en) 2013-08-20 2021-05-04 Merck Sharp & Dohme Corp. Modulation of tumor immunity
US10570204B2 (en) 2013-09-26 2020-02-25 The Medical College Of Wisconsin, Inc. Methods for treating hematologic cancers
US11708412B2 (en) 2013-09-26 2023-07-25 Novartis Ag Methods for treating hematologic cancers
US11136393B2 (en) 2013-10-01 2021-10-05 Mayo Foundation For Medical Education And Research Methods for treating cancer in patients with elevated levels of Bim
US10259875B2 (en) 2013-10-01 2019-04-16 Mayo Foundation For Medical Education And Research Methods for treating cancer in patients with elevated levels of BIM
EP3087099A4 (en) * 2013-12-23 2017-07-19 Oncomed Pharmaceuticals, Inc. Immunotherapy with binding agents
US10737113B2 (en) 2014-01-23 2020-08-11 Regeneron Pharmaceuticals, Inc. Human antibodies to PD-1
US11117970B2 (en) 2014-01-23 2021-09-14 Regeneron Pharmaceuticals, Inc. Human antibodies to PD-L1
US9815898B2 (en) 2014-01-24 2017-11-14 Novartis Ag Antibody molecules to PD-1 and uses thereof
US10752687B2 (en) 2014-01-24 2020-08-25 Novartis Ag Antibody molecules to PD-1 and uses thereof
US9683048B2 (en) 2014-01-24 2017-06-20 Novartis Ag Antibody molecules to PD-1 and uses thereof
US11827704B2 (en) 2014-01-24 2023-11-28 Novartis Ag Antibody molecules to PD-1 and uses thereof
US11155620B2 (en) 2014-01-31 2021-10-26 Novartis Ag Method of detecting TIM-3 using antibody molecules to TIM-3
US10472419B2 (en) 2014-01-31 2019-11-12 Novartis Ag Antibody molecules to TIM-3 and uses thereof
US10981990B2 (en) 2014-01-31 2021-04-20 Novartis Ag Antibody molecules to TIM-3 and uses thereof
US12252535B2 (en) 2014-03-14 2025-03-18 Novartis Ag Antibody molecules to LAG-3 and uses thereof
US10730951B2 (en) 2014-03-31 2020-08-04 Genentech, Inc. Anti-OX40 antibodies and methods of use
US10302653B2 (en) 2014-05-22 2019-05-28 Mayo Foundation For Medical Education And Research Distinguishing antagonistic and agonistic anti B7-H1 antibodies
US10946093B2 (en) 2014-07-15 2021-03-16 Genentech, Inc. Methods of treating cancer using PD-1 axis binding antagonists and MEK inhibitors
US10517875B2 (en) 2014-07-23 2019-12-31 Mayo Foundation for Medical Engineering and Research Targeting DNA-PKcs and B7-H1 to treat cancer
US12514861B2 (en) 2014-07-23 2026-01-06 Mayo Foundation For Medical Education And Research Targeting DNA-PKCS and B7-H1 to treat cancer
US11504376B2 (en) 2014-07-23 2022-11-22 Mayo Foundation For Medical Education And Research Targeting DNA-PKCS and B7-H1 to treat cancer
US11344620B2 (en) 2014-09-13 2022-05-31 Novartis Ag Combination therapies
US12616723B1 (en) 2014-09-18 2026-05-05 David Gordon Bermudes Modified bacteria having improved pharmacokinetics and tumor colonization enhancing antitumor activity
US9616114B1 (en) 2014-09-18 2017-04-11 David Gordon Bermudes Modified bacteria having improved pharmacokinetics and tumor colonization enhancing antitumor activity
US11813295B1 (en) 2014-09-18 2023-11-14 Theobald Therapeutics LLC Modified bacteria having improved pharmacokinetics and tumor colonization enhancing antitumor activity
US11633435B1 (en) 2014-09-18 2023-04-25 David Gordon Bermudes Modified bacteria having improved pharmacokinetics and tumor colonization enhancing antitumor activity
US10729731B1 (en) 2014-09-18 2020-08-04 David Gordon Bermudes Modified bacteria having improved pharmacokinetics and tumor colonization enhancing antitumor activity
US10828356B1 (en) 2014-09-18 2020-11-10 David Gordon Bermudes Modified bacteria having improved pharmacokinetics and tumor colonization enhancing antitumor activity
US12486312B2 (en) 2015-04-17 2025-12-02 Alpine Immune Sciences, Inc. Immunomodulatory proteins with tunable affinities
US11319359B2 (en) 2015-04-17 2022-05-03 Alpine Immune Sciences, Inc. Immunomodulatory proteins with tunable affinities
US12378536B1 (en) 2015-05-11 2025-08-05 David Bermudes Chimeric protein toxins for expression by therapeutic bacteria
US12600777B2 (en) 2015-07-29 2026-04-14 Novartis Ag Combination therapies comprising antibody molecules to LAG-3
WO2017025498A1 (en) 2015-08-07 2017-02-16 Pieris Pharmaceuticals Gmbh Novel fusion polypeptide specific for lag-3 and pd-1
US11130810B2 (en) 2015-10-02 2021-09-28 Hoffmann-La Roche Inc. Bispecific antibodies specific for PD1 and TIM3
US10287352B2 (en) 2015-10-02 2019-05-14 Hoffman-La Roche Inc. Bispecific antibodies specific for PD1 and TIM3
WO2017055443A1 (en) 2015-10-02 2017-04-06 F. Hoffmann-La Roche Ag Anti-pd1 antibodies and methods of use
US12391757B2 (en) 2015-10-02 2025-08-19 Hoffmann-La Roche Inc. Bispecific antibodies specific for PD1 and TIM3
WO2017055404A1 (en) 2015-10-02 2017-04-06 F. Hoffmann-La Roche Ag Bispecific antibodies specific for pd1 and tim3
US10875923B2 (en) 2015-10-30 2020-12-29 Mayo Foundation For Medical Education And Research Antibodies to B7-H1
US12054557B2 (en) 2015-12-22 2024-08-06 Regeneron Pharmaceuticals, Inc. Combination of anti-PD-1 antibodies and bispecific anti-CD20/anti-CD3 antibodies to treat cancer
US11498967B2 (en) 2016-04-15 2022-11-15 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11359022B2 (en) 2016-04-15 2022-06-14 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11078282B2 (en) 2016-04-15 2021-08-03 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11479609B2 (en) 2016-04-15 2022-10-25 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
EP3243832A1 (en) 2016-05-13 2017-11-15 F. Hoffmann-La Roche AG Antigen binding molecules comprising a tnf family ligand trimer and pd1 binding moiety
US10457725B2 (en) 2016-05-13 2019-10-29 Regeneron Pharmaceuticals, Inc. Methods of treating skin cancer by administering a PD-1 inhibitor
US11505600B2 (en) 2016-05-13 2022-11-22 Regeneron Pharmaceuticals, Inc. Methods of treating skin cancer by administering a PD-1 inhibitor
US12624087B2 (en) 2016-07-28 2026-05-12 Alpine Immune Sciences, Inc. CD155 variant immunomodulatory proteins and uses thereof
US12215135B2 (en) 2016-10-27 2025-02-04 Io Biotech Aps PDL2 compounds
US11447537B2 (en) 2016-10-27 2022-09-20 Io Biotech Aps PDL2 compounds
US11124577B2 (en) 2016-11-02 2021-09-21 Engmab Sàrl Bispecific antibody against BCMA and CD3 and an immunological drug for combined use in treating multiple myeloma
WO2018083204A1 (en) 2016-11-02 2018-05-11 Engmab Sàrl Bispecific antibody against bcma and cd3 and an immunological drug for combined use in treating multiple myeloma
EP4295918A2 (en) 2016-11-02 2023-12-27 Bristol-Myers Squibb Company Bispecific antibody against bcma and cd3 and an immunological drug for combined use in treating multiple myeloma
US11180535B1 (en) 2016-12-07 2021-11-23 David Gordon Bermudes Saccharide binding, tumor penetration, and cytotoxic antitumor chimeric peptides from therapeutic bacteria
CN113354710A (zh) * 2016-12-09 2021-09-07 复诺健生物科技加拿大有限公司 用于抑制cd279相互作用的组合物和方法
US12630633B2 (en) 2016-12-16 2026-05-19 Novartis Ag Antibody molecules to PD-1 and uses thereof
WO2018134279A1 (en) 2017-01-18 2018-07-26 Pieris Pharmaceuticals Gmbh Novel fusion polypeptides specific for lag-3 and pd-1
US11117950B2 (en) 2017-03-16 2021-09-14 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11096988B2 (en) 2017-03-16 2021-08-24 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11639375B2 (en) 2017-03-16 2023-05-02 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11117948B2 (en) 2017-03-16 2021-09-14 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11230588B2 (en) 2017-03-16 2022-01-25 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11117949B2 (en) 2017-03-16 2021-09-14 Alpine Immune Sciences, Inc. CD80 variant immunomodulatory proteins and uses thereof
US11413331B2 (en) 2017-04-03 2022-08-16 Hoffmann-La Roche Inc. Immunoconjugates
US12023368B2 (en) 2017-04-03 2024-07-02 Hoffmann-La Roche Inc. Immunoconjugates
EP4516809A2 (en) 2017-04-05 2025-03-05 F. Hoffmann-La Roche AG Bispecific antibodies specifically binding to pd1 and lag3
US12611457B2 (en) 2017-04-05 2026-04-28 Hoffmnn-La Roche Inc. Bispecific antibodies specifically binding to PD1 and LAG3
US11285207B2 (en) 2017-04-05 2022-03-29 Hoffmann-La Roche Inc. Bispecific antibodies specifically binding to PD1 and LAG3
WO2018185043A1 (en) 2017-04-05 2018-10-11 F. Hoffmann-La Roche Ag Bispecific antibodies specifically binding to pd1 and lag3
US11603407B2 (en) 2017-04-06 2023-03-14 Regeneron Pharmaceuticals, Inc. Stable antibody formulation
WO2019149716A1 (en) 2018-01-31 2019-08-08 F. Hoffmann-La Roche Ag Bispecific antibodies comprising an antigen-binding site binding to lag3
US12331104B2 (en) 2018-05-31 2025-06-17 Novartis Ag Hepatitis B antibodies
US11932681B2 (en) 2018-05-31 2024-03-19 Novartis Ag Hepatitis B antibodies
WO2019229699A1 (en) 2018-05-31 2019-12-05 Novartis Ag Hepatitis b antibodies
WO2019234576A1 (en) 2018-06-03 2019-12-12 Lamkap Bio Beta Ltd. Bispecific antibodies against ceacam5 and cd47
US11555071B2 (en) 2018-06-03 2023-01-17 Lamkap Bio Beta Ltd. Bispecific antibodies against CEACAM5 and CD47
WO2020021061A1 (en) 2018-07-26 2020-01-30 Pieris Pharmaceuticals Gmbh Humanized anti-pd-1 antibodies and uses thereof
WO2020043683A1 (en) 2018-08-27 2020-03-05 Pieris Pharmaceuticals Gmbh Combination therapies comprising cd137/her2 bispecific agents and pd-1 axis inhibitors and uses thereof
WO2020053742A2 (en) 2018-09-10 2020-03-19 Novartis Ag Anti-hla-hbv peptide antibodies
US12264189B2 (en) 2018-10-31 2025-04-01 Mayo Foundation For Medical Education And Research Methods and materials for treating cancer
US12257286B2 (en) 2018-10-31 2025-03-25 Mayo Foundation For Medical Education And Research Methods and materials for treating cancer
US12624086B2 (en) 2018-10-31 2026-05-12 Mayo Foundation For Medical Education And Research Materials and methods for treating cancer
WO2021053587A1 (en) 2019-09-18 2021-03-25 Klaus Strein Bispecific antibodies against ceacam5 and cd3
US12441807B2 (en) 2019-09-18 2025-10-14 Lamkap Bio Alpha AG Bispecific antibodies against CEACAM5 and CD3
WO2021110647A1 (en) 2019-12-02 2021-06-10 Lamkap Bio Beta Ag Bispecific antibodies against ceacam5 and cd47
EP3831849A1 (en) 2019-12-02 2021-06-09 LamKap Bio beta AG Bispecific antibodies against ceacam5 and cd47
US11753481B2 (en) 2020-12-18 2023-09-12 Lamkap Bio Beta Ltd Bispecific antibodies against CEACAM5 and CD47
WO2022130348A1 (en) 2020-12-18 2022-06-23 Lamkap Bio Beta Ag Bispecific antibodies against ceacam5 and cd47
WO2023012147A1 (en) 2021-08-03 2023-02-09 F. Hoffmann-La Roche Ag Bispecific antibodies and methods of use
WO2023242351A1 (en) 2022-06-16 2023-12-21 Lamkap Bio Beta Ag Combination therapy of bispecific antibodies against ceacam5 and cd47 and bispecific antibodies against ceacam5 and cd3
WO2024163477A1 (en) 2023-01-31 2024-08-08 University Of Rochester Immune checkpoint blockade therapy for treating staphylococcus aureus infections
WO2025042742A1 (en) 2023-08-18 2025-02-27 Bristol-Myers Squibb Company Compositions comprising antibodies that bind bcma and cd3 and methods of treatment
WO2026003224A2 (en) 2024-06-26 2026-01-02 Iomx Therapeutics Ag Bispecific antigen binding proteins (abp) targeting immune checkpoint molecules and both leukocyte immunoglobulin-like receptor subfamily b1 (lilrb1) and lilrb2; combinations and uses thereof

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