EP2956170A1 - Composition and method for diagnosis and immunotherapy of lung cancer - Google Patents
Composition and method for diagnosis and immunotherapy of lung cancerInfo
- Publication number
- EP2956170A1 EP2956170A1 EP14751009.3A EP14751009A EP2956170A1 EP 2956170 A1 EP2956170 A1 EP 2956170A1 EP 14751009 A EP14751009 A EP 14751009A EP 2956170 A1 EP2956170 A1 EP 2956170A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- akap
- pttgl
- antigen
- lung cancer
- tumor
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
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Classifications
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/575—Immunoassay; Biospecific binding assay; Materials therefor for cancer
- G01N33/5752—Immunoassay; Biospecific binding assay; Materials therefor for cancer of the lungs
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K40/00—Cellular immunotherapy
- A61K40/10—Cellular immunotherapy characterised by the cell type used
- A61K40/19—Dendritic cells
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K40/00—Cellular immunotherapy
- A61K40/20—Cellular immunotherapy characterised by the effect or the function of the cells
- A61K40/24—Antigen-presenting cells [APC]
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K40/00—Cellular immunotherapy
- A61K40/40—Cellular immunotherapy characterised by antigens that are targeted or presented by cells of the immune system
- A61K40/41—Vertebrate antigens
- A61K40/42—Cancer antigens
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K16/00—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies
- C07K16/18—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans
- C07K16/28—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
- C07K16/30—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants from tumour cells
- C07K16/3023—Lung
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/575—Immunoassay; Biospecific binding assay; Materials therefor for cancer
- G01N33/5758—Immunoassay; Biospecific binding assay; Materials therefor for cancer involving compounds serving as markers for tumours, cancers or neoplasias, e.g. cellular determinants, receptors, heat shock/stress proteins, A-protein, oligosaccharides or metabolites
- G01N33/57585—Immunoassay; Biospecific binding assay; Materials therefor for cancer involving compounds serving as markers for tumours, cancers or neoplasias, e.g. cellular determinants, receptors, heat shock/stress proteins, A-protein, oligosaccharides or metabolites involving compounds identifiable in body fluids
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K35/00—Medicinal preparations containing materials or reaction products thereof with undetermined constitution
- A61K35/12—Materials from mammals; Compositions comprising non-specified tissues or cells; Compositions comprising non-embryonic stem cells; Genetically modified cells
- A61K35/14—Blood; Artificial blood
- A61K35/15—Cells of the myeloid line, e.g. granulocytes, basophils, eosinophils, neutrophils, leucocytes, monocytes, macrophages or mast cells; Myeloid precursor cells; Antigen-presenting cells, e.g. dendritic cells
Definitions
- One embodiment of the present invention relates in general to the field of detection of lung cancer and immunotherapy thereof, specifically to methods and compositions for diagnosis and treatment of lung cancer.
- Lung cancer is the leading cause of cancer-related deaths, worldwide. Approximately 226,160 new cases and 160,340 deaths are expected in the Unites States in 2012 (1).
- the World Health Organization classifies lung cancer into four major histological types: (1) squamous cell carcinoma (SCC), (2) adenocarcinoma, (3) large cell carcinoma, and (4) small cell lung carcinoma (SCLC).
- SCC squamous cell carcinoma
- SCLC small cell lung carcinoma
- NSCLC non- small cell lung carcinoma
- NSCLC non- small cell lung carcinoma
- lung cancer is second behind prostate cancer for males and third behind breast and colorectal cancers for women. Yet, lung cancer is the most common cause of cancer deaths. Typically, a combination of X-ray and sputum cytology is used to diagnose lung cancer. Unfortunately, by the time a patient seeks medical help for their symptoms, the cancer is at such an advanced state it is usually incurable.
- NSCLC non-small cell lung cancer
- Standard treatments for NSCLC include chemotherapy, radiation therapy, surgery or a combination of these treatments.
- these therapeutic interventions are associated with significant side effects (2), and generally offer patients limited benefits (3).
- molecular target therapies to our armamentarium
- the more recent addition to the armamentarium against NSCLC are targeted therapies.
- these agents such those based on the monoclonal antibodies bevacizumab, they can be used only in 16.5% of chemotherapy recipients (1, 4).
- NSLC is still is the leading cause of cancer-related deaths in the world.
- U.S. Patent No. 5,773,579 entitled, "Lung cancer marker,” discloses an isolated and purified nucleic acid sequence and corresponding amino acid sequence to a novel protein specific for human lung cancer cells. This gene is expressed at a much higher level in these cells than in normal lung cells, other normal tissues and other tumor cell lines tested. Also disclosed are three additional recombinant forms of this gene and protein, in the first two cases a membrane spanning region is removed and in the third case, an amino acid is changed by in vitro mutagenesis.
- U.S. Patent Application Publication No. 2012/0100558, entitled, "Lung Cancer Diagnosis,” is directed to the diagnosis of lung cancer in a subject before onset of symptoms in which the method includes screening a biological fluid from the subject for the presence therein of autoantibodies that are specific for one or more pre-diagnostic lung cancer indicator proteins, including LAMR1, and optionally additionally or alternatively including annexin I and/or 14-3-3-theta and/or other pre-diagnostic lung cancer indicator proteins as presently disclosed, as the defined antigens.
- pre-diagnostic lung cancer indicator proteins including LAMR1
- annexin I and/or 14-3-3-theta and/or other pre-diagnostic lung cancer indicator proteins as presently disclosed, as the defined antigens.
- U.S. Patent Application Publication No. 2011/0177079 entitled, "Cancer-testis antigens,” discloses cancer-testis antigens and the nucleic acid molecules that encode them.
- the invention also relates to the use of the nucleic acid molecules, polypeptides and fragments thereof in methods and compositions for the diagnosis and treatment of diseases, such as cancer. More specifically, the invention relates to the discovery of novel cancer-testis (CT) antigens.
- CT cancer-testis
- U.S. Patent Application Publication No. 2010/0291156 entitled, "Composition for Treating Lung Cancer, Particularly of Non-Small Lung Cancers (NSCLC),” is directed to active (immunostimulatory) compositions with at least one RNA, preferably an mRNA, encoding at least two (preferably different) antigens capable of eliciting an (adaptive) immune response in a mammal.
- the invention is also said to teach a vaccine comprising said active (immunostimulatory) composition, and to the use of said active (immunostimulatory) composition (for the preparation of a vaccine) and/or of the vaccine for eliciting an (adaptive) immune response for the treatment of lung cancer, particularly of non-small cell lung cancers (NSCLC), preferably selected from the three main sub-types squamous cell lung carcinoma, adenocarcinoma and large cell lung carcinoma, or of disorders related thereto.
- NSCLC non-small cell lung cancers
- the present invention includes a composition for the treatment of lung cancer comprising an isolated antigen presenting cell that has been loaded to present at least one SP17, AKAP-4, or PTTGl tumor-associated antigens and that generates a cytotoxic T lymphocyte specific immune response to at least one of SP17, AKAP-4, or PTTGl, respectively, expressed by one or more lung cancer cells.
- the antigen presenting cell is a dendritic cell.
- the antigen presenting cell is an autologous dendritic cell.
- the composition further comprises at least one of NYESO- 1, XAGE-1, ADAM29 and MAGEC1 antigens.
- the composition comprises a nucleotide sequence that codes for the recombinant SP17, AKAP-4, or PTTGl tumor- associated antigen.
- the present invention includes a method for identifying a human subject suspected of having subject or at least at risk of developing lung cancer comprising the steps of: obtaining a sample from the subject; and determining the presence or absence of a specific immunoglobulin in the sample specific for at least one of anti-SP17, AKAP-4, or PTTGl, wherein the presence of the at least one of anti-SP17, AKAP-4, or PTTGl specific immunoglobulin in the sample indicating the subject is afflicted with or at least at risk of developing lung cancer.
- Another embodiment of the present invention includes a method for the determination of the tumor marker profile of an individual suffering from cancer comprising: obtaining a sample of bodily fluids from the individual; contacting the sample of bodily fluids from the individual with at least one of SP17, AKAP-4, or PTTGl tumor-associated antigen; and determining the presence or absence of a complex of the at least one of SP17, AKAP-4, or PTTGl tumor-associated antigen bound to one or more autoantibodies present in the sample of bodily fluids, wherein the one or more autoantibodies being immunologically specific to the at least one of SP17, AKAP-4, or PTTGl tumor-associated antigen; wherein the presence of the complex provides the tumor marker profile of the individual, and wherein the tumor marker profile is determined as an indication of the course of disease.
- the presence of the complex indicates the detection of cancer.
- the cancer is lung cancer.
- compositions for the treatment of cancer comprising at least one of an SP17, AKAP-4, or PTTGl tumor-associated antigen capable of generating an SP17, AKAP-4, or PTTGl specific cytotoxic T lymphocyte specific for one or more lung cancer cells.
- the composition further comprises at least one antigen presenting cell.
- the antigen presenting cell is a dendritic cell.
- the at least one antigen presenting cell is a pulsed or loaded with the peptide or an expression construct encoding the SP17, AKAP-4, or PTTGl tumor-associated antigen.
- the at least one of an SP17, AKAP-4, or PTTGl tumor-associated antigen is isolated from a non-small cell lung carcinoma.
- Another embodiment of the present invention includes a method for detecting lung cancer in a subject comprising the steps of: obtaining a sample from the subject; and determining the presence or absence of SP17, AKAP-4, or PTTGl in the sample, wherein the presence of SP17, AKAP-4, or PTTGl in the sample indicates the subject is afflicted with or at least at risk for developing lung cancer.
- the sample is a blood sample.
- compositions comprising a nucleic acid vector that expressed an immuno stimulatory antigen, wherein the antigen comprises the nucleotide sequence coding for at least one of an SP17, AKAP-4, or PTTGl lung cancer-associated antigen.
- the antigen is a peptide antigen.
- Yet another embodiment of the present invention includes a method for the treatment of cancer comprising the steps of: administering to a mammal in need thereof a synergistic, therapeutically effective amount of a lung cancer antigen, in addition to at least one of diluents, vehicles, excipients, or inactive ingredients; generating a specific cytotoxic T lymphocytes (CTL) from the lung cancer antigen; and targeting one or more tumor cells with the specific cytotoxic T lymphocytes.
- the lung cancer antigen is SP17, AKAP-4, or PTTG1.
- FIGURES 1A-1C are images showing RT-PCR analysis of Cancer/testis antigens (CTA) expression.
- FIGURE 2 shows flow-cytometry analysis of cells incubated with the indicated antibody and corresponding isotypic controls.
- FIGURE 3 shows immunofluorescence performed on NSCLC cell lines, CRL-5928, CRL-5922, on the normal bronchus epithelium-derived cells CRL-2503, and one representative patient.
- FIGURES 4A-4C are graphs of enzyme linked immunosorbent assay (ELISA) data for the detection of circulating CTA-specific IgG.
- ELISA enzyme linked immunosorbent assay
- FIGURES 5A-5F are graphs of the analysis of Cytotoxic T-Lymphocyte (CTL) activity and specificity.
- FIGURES 6A-6F are ELISA analyzed for the levels of the indicated cytokines and ELISPOT analysis of IFN- ⁇ expression by patients' CTLs co-cultured with autologous tumor cells. Description of the Invention
- epitopes include but are not limited to a polypeptide and a nucleic acid encoding a polypeptide, wherein expression of the nucleic acid into a polypeptide is capable of stimulating an immune response when the polypeptide is processed and presented on a Major Histocompatibility Complex (MHC) molecule.
- MHC Major Histocompatibility Complex
- epitopes include peptides presented on the surface of cells non-covalently bound to the binding groove of Class I or Class II MHC, such that they can interact with T cell receptors and the respective T cell accessory molecules.
- antigens and epitopes also apply when discussing the antigen binding portion of an antibody, wherein the antibody binds to a specific structure of the antigen.
- Epitopes that are displayed by MHC on antigen presenting cells are cleavage peptides or products of larger peptide or protein antigen precursors.
- protein antigens are often digested by proteasomes resident in the cell. Intracellular proteasomal digestion produces peptide fragments of about 3 to 23 amino acids in length that are then loaded onto the MHC protein. Additional proteolytic activities within the cell, or in the extracellular milieu, can trim and process these fragments further. Processing of MHC Class II epitopes generally occurs via intracellular proteases from the lysosomal/endosomal compartment.
- the present invention includes, in one embodiment, pre-processed peptides that are attached to the anti-CD40 antibody (or fragment thereof) that directs the peptides against which an enhanced immune response is sought directly to antigen presenting cells.
- the present invention includes methods for specifically identifying the epitopes within antigens most likely to lead to the immune response sought for the specific sources of antigen presenting cells and responder T cells.
- the present invention allows for a rapid and easy assay for the identification of those epitopes that are most likely to produce the desired immune response using the patient's own antigen presenting cells and T cell repertoire.
- the compositions and methods of the present invention are applicable to any protein sequence, allowing the user to identify the epitopes that are capable of binding to MHC and are properly presented to T cells that will respond to the antigen. Accordingly, the invention is not limited to any particular target or medical condition, but instead encompasses and MHC epitope(s) from any useful source.
- CTAs cancer/testis antigens
- CTAs NY-ESO-1 and MAGE-A2/3/4/6 have been detected in Non-Small Cell Lung Cancer (NSCLC) primary tumors and their immunogenicity suggests indicates they are promising targets for potentially effective lung cancer vaccines (11-14).
- NSCLC Non-Small Cell Lung Cancer
- the inventors have previously validated the CTAs SP17, AKAP4, Ropporin, and PTTG1 as potential immunotherapeutic targets in ovarian cancer, multiple myeloma, and prostate cancer (6, 15-17).
- RNA and protein expression pattern of SP17, AKAP4 and PTTG1 in NSCLC cell lines and primary tumor samples from NSCLC patients as well as their immunogenicity by measuring the presence of CTA specific antibodies (Abs) in sera of lung cancer patients and the feasibility of generating CTA-specific cytotoxic anti-tumor responses in vitro, using autologous peripheral blood mononucleated cells (PBMCs).
- PBMCs peripheral blood mononucleated cells
- NSCLC was historically thought to be weakly immunogenic because of the low frequency of tumor-infiltrating T cells (21), studies using murine NSCLC models have shown that is it possible to activate an effective immune response utilizing a DC -based approach (22, 23).
- tumor antigen-specific T cell responses have been detected in patients with NSCLC (23), indicating that identifying specific NSCLC-associated antigens and presenting them in an optimal fashion to the immune system may generate tumor-specific effector T cells generally absent or inactive in this disease (24).
- the potential role of immunotherapy in improving patients' survival and reducing morbidities associated to standard treatments has been demonstrated by a recent meta-analysis of clinical vaccine trials in patients with NSCLC (25).
- CTAs are tumor-associated antigens particularly suitable for tumor immunotherapy due to their highly tumor-restricted expression pattern and their immunogenicity (7, 9).
- the present invention provides the use of three CTA, namely SP17, AKAP4, and PTTG1, in the immunotherapy of NSCLC.
- the inventors analyzed for the first time the differential expression of 3 CTAs, namely SP17, AKAP4, and PTTG1, in a panel of normal tissues, three NSCLC cell lines, one normal bronchus cell line, primary tumor cells from 17 NSCLC patients, and bronchus epithelial cells from 8 healthy subjects. None of the nontumoral tissues expressed RNA levels for the selected CTAs, with the exception of the testis (7, 10). NSCLC cell lines expressed SP17, AKAP4, and PTTG1 transcripts and proteins, while the normal bronchus epithelium cell line showed weakly SP17 RNA expression only.
- a protein For a protein to serve as a target for immunotherapy it should be able to elicit a strong and measurable immune response, a characteristic known as immunogenicity.
- the present inventors found that the majority of NSCLC patients' sera were positive for at least two CTA- specific antibodies, with only patient #5 displaying anti-SP17 but not anti-AKAP4 or anti-PTTGl IgG. While there was a complete concordance between mRNA and protein expression data in tumor tissues, the humoral anti-tumor response, measured as anti-CTA antibodies in sera, resulted more heterogeneous. For example, three NSCLC patients (#2, 13, 14) were classified as anti-SP17 negative, although their tumors expressed SP17.
- the inventors examined T cell response to CTA-loaded dendritic cells (DCs).
- DCs CTA-loaded dendritic cells
- the application of DCs is a widely recognized method for the stimulation of tumor antigen-specific T cell responses and the present inventors have previously used this technique in MM, cervical and prostate cancer (6, 15, 30, 31).
- the present inventors selected 5 patients that tested positive for SP17, AKAP4, or PTTG1 protein expression in tumor cells.
- Patients' PBMCs stimulated with CTA-presenting DCs displayed significant lytic activity against autologous lung cancer cells and NSCLC-derived cell lines.
- NSCLC patients show an abnormal Th-2-type cytokine pattern (34), which negatively impacts a significant response to immunotherapy (35), it is possible (but not a limitation of the present invention) that the ability of CTA- loaded DCs to stimulate a T-helper Th-1 profile is clinically relevant (36).
- the activation of effector T lymphocytes was further demonstrated by ELISPOT analysis, which revealed a high frequency of IFN- ⁇ -expressing cells in PBMCs primed with CTA-loaded DCs and exposed to autologous tumor cells. This is finding is relevant, since IFN- ⁇ has been shown to exert significant inhibitory effects in NSCLC growth (37).
- the present invention provides that the CTAs: SP17, AKAP-4, and PTTG1, are selectively expressed in NSCLC and that their expression can be exploited to generate specific CTL-mediated antitumor responses.
- the NSCLC cell lines CRL-5928 (squamous cell carcinoma), CRL-5922 (adenocarcinoma), and the immortalized, non-tumorigenic human bronchial epithelial cell line CRL-2503 (established by transfection with the origin of replication-defective SV40 large T plasmid), were from the American Type Culture Collection (Manassas, VA, USA) and were maintained in RPMI-1640 medium (Invitrogen, Carlsbad, CA, USA) supplemented with 10% V/V FBS (Invitrogen, Carlsbad, CA, USA) at 37°C and 5% co 2 .
- the present inventors evaluated 17 NSCLC tumor samples derived from surgical procedures and 8 samples from healthy subjects who underwent bronchial biopsy.
- Sera were collected at the time of routine blood tests as previously described (6). Materials from human subjects were obtained with approval from the local ethics committee and the patients' informed consent. Punch biopsies were minced and tissue fragments were plated in complete medium (RPMI-1640 medium supplemented with 10% FBS, 20 mM HEPES buffer, 100 U/mL penicillin, 100 mg/mL streptomycin). Cells were maintained in 5% C0 2 and 37°C for 24 hours prior to analysis. The normal tissue panel was from Applied Biosystems (Foster City, CA).
- Negative controls were obtained with cells incubated with equal amounts of matching isotypic Abs (Novus Biologicals, LLC, Littleton, CO, USA). After 1 hour incubation on ice, cells were washed three times in permeabilization buffer, then incubated 20 minutes on ice with the appropriate FITC-conjugated secondary antibody (BD Biosciences, San Jose, CA, USA). Fluorescence intensity was measured using a FACS-Canto flow cytometer (BD).
- Polystyrene 96-well plates were coated with human recombinant proteins (SP17, AKAP4 or PTTG1, all from Novus Biologicals, LLC, Littleton, CO, USA) in 50 ⁇ L carbonate coating buffer (10 g/well) for 2 hours at 23°C under gentle agitation. After washing twice with 100 PBS, unspecific binding sites were blocked with 1% W/V BSA in PBS for 1 hour at 23°C. Then, BSA was removed and 50 ⁇ L sera were added (diluted 1 :5 in PBS).
- human recombinant proteins SP17, AKAP4 or PTTG1
- PBMCs Heparinized blood was centrifuged in a Ficoll-Hypaque density gradient to separate PBMCs from 5 patients.
- PBMCs were seeded into 6-well culture plates with 3 mL RPMI-1640 medium and 10% FBS at 8-10x106 cells/well.
- the present inventors removed the nonadherent cells and cultured the adherent cells in RPMI-1640 supplemented with 10% FBS, 1000 IU/mL interleukin 4 (IL-4) and 800 IU/mL granulocytes-macrophage colony-stimulating factor 8 (GM-CSF).
- IL-4 interleukin 4
- GM-CSF granulocytes-macrophage colony-stimulating factor 8
- DCs were harvested and pulsed with human recombinant SP17, AKAP4 or PTTG1 as described (6, 15). DCs were washed twice and placed in a 50 mL polypropylene tube. Recombinant proteins were mixed with the cationic lipid DOTAP (Roche, Mannheim, Germany) at room temperature for 20 minutes, and added to the DCs for 3 hours at 37°C, with occasional agitation.
- DOTAP cationic lipid
- Antigen-pulsed DCs were co-cultured with fresh autologous PBMCs (6) at a ratio of 1 :10 in RPMI-1640 with 10%o autologous serum, 10 IU/mL IL-2 and 5 ng/mL IL-7 at 37°C, 5%> C0 2 .
- Irradiated autologous PBMCs feeder cells and recombinant CTAs 50 g/mL were added once a week, and IL-2 was added every 3 days.
- Recombinant CTA were endotoxin-free, as confirmed by endotoxin detection assay performed through the ToxinSensor Chromogenic LAL Endotoxin Assay Kit (GenScript USA Inc., 08854, NJ).
- Target cells included autologous DCs (unstimulated or pulsed with the lung-cancer irrelevant HPV-E/ antigen), and autologous tumor cells (at the effector-target cell ratios of 40:1, 20:1, or 10:1).
- Antibodies against HLA class I (W6/32) and HLA class II (L243) were added at a concentration of 25 g/mL to evaluate HLA restricted cytotoxicity, with a fixed 20:1 effector :target ratio.
- ELISA was performed on the supernatants of activated PBMCs and autologous tumor cells 4 hours co- culture (20:1 effectontarget ratio).
- the U-CyTech sandwich ELISA kits (U-CyTech, Utrecht, The Netherlands) was used for the detection of human IL-4, IL-5, IL-10, interferon (IFN)-y, and tumor necrosis factor a (TNF)-a, in accordance with the manufacturer's directions. Reactions were developed by adding TMB Microwell substrate, stopping the reaction by the addition of 2M H 2 SO 4 . The absorbance was read at 450 nm. Data are presented as the ODs measured with activated PBMCs divided by the ODs obtained with PBMCs incubated with autologous DCs without antigens (OD ratio).
- IFN- ⁇ expression by patients' CTLs (20:1 effector: target ratio) was evaluated using ELISPOT assay (UCyTech, Utrecht, The Netherlands), according to the manufacturer's directions as the present inventors described elsewhere (15). Spots counts were performed with an AID ELISPOT Reader System (Cell Technology, Inc., Columbia, MD).
- FIGURES 1A-1C are images showing RT-PCR analysis of CTA expression.
- FIGURE 1A is an image of a gel showing PCR on cDNA prepared from a normal tissue panel.
- FIGURE IB is an image of a gel showing PCR on cDNA from NSCLC cell lines CRL-5928 (1), CRL-5922 (2), or the normal bronchus epithelium-derived cells CRL-2503 (3).
- FIGURE 1C is an image of a gel showing PCR on cDNA from NSCLC primary tumors. Positive control was cDNA prepared from the testis, while negative controls were PCR performed with RNA without previous retro -transcription (no RT), and PCR performed without template (no template), ⁇ -actin was used to confirm successful retro-transcription.
- SP 17/AKAP4/PTTG 1 RNA is selectively expressed by NSCLC cell lines and primary tumors, but not in nontumoral cell lines and tissues.
- Gene expression of SP17, AKAP4, and PTTG1 was determined with RT-PCR using RNA from a panel of normal tissues as seen in FIGURE 1A.
- Three cell lines two derived NSCLC and one derived from normal bronchus epithelium are shown in FIGURE IB, and a cohort of 17 patients newly diagnosed with NSCLC is shown in FIGURE 1C.
- the present inventors analyzed CTA expression in the testis (6, 16, 17), while negative controls were obtained using pooled RNA that did not undergo retro-transcription (to exclude possible amplification of contaminating genomic DNA) and in which RT-PCR was performed without template. While none of the normal tissues expressed detectable RNA levels for SP17, AKAP-4 and PTTGl, (as seen in FIGURE 1A), the normal bronchial cell line CRL-2503 demonstrated weak expression of SP17 RNA (as seen in FIGURE IB). The NSCLC cell lines CRL- 5928 and CRL-5922 demonstrated significant RNA expression of the three CTAs evaluated (as seen in FIGURE IB). Moreover, tumors from all 17 NSCLC patients were positive for SP17 while 65% of tumors expressed AKAP4 (11/17), and 59% PTTGl (10/17) (as seen in FIGURE 1C).
- FIGURE 2 shows flow-cytometry analysis of cells incubated with the indicated antibody (colored histograms) or corresponding isotypic controls (black histograms). Fluorescence intensity was measured on FSC/SSC-gated cells (10,000 events) in the FL1 channel (Log scale) using a FACS-Canto flow cytometer (BD). The plots are arranged by SP17 AKAP4 and PTTGl in cell lines and primary patients' samples. SP17, AKAP4 and PTTGl are expressed at the protein level by NSCLC cell lines and primary patients' samples, but not by normal bronchus epithelium.
- FIGURE 2 shows that SP17, AKAP4 and PTTGl are expressed by NSCLC-derived but not by normal bronchus-derived cell lines.
- nontumoral CRL-2503 cells were negative for SP17 protein, even though the SP17 gene was weakly expressed (FIGURES IB and 2).
- the present inventors performed a similar analysis on patient-derived NSCLC tumors/tissues, which was fully consistent the RT-PCR data.
- FIGURE 2 shows representative results from 3 patients.
- FIGURE 2 shows immunofluorescence performed on NSCLC cell lines, CRL-5928, CRL-5922, on the normal bronchus epithelium-derived cells CRL-2503, and one representative patient.
- the present inventors show the positive stain for SP17, AKAP4, and PTTGl (green signal) in the cytoplasm. Pictures were taken at 60X magnification by an inverted florescence microscope (Olympus 1X71).
- the present inventors compared the levels of circulating CTA-specific IgG autoantibodies in sera from NSCLC patients with those from healthy subjects, by indirect ELISA. A subject was considered positive if the ELISA signal was at least 3 standard deviations higher than the median signal found in healthy subjects (20).
- FIGURES 4A-4C are graphs of ELISA data for the detection of circulating CTA-specific IgG for SP17, AKAP4, and PTTGl .
- FIGURES 4A-4C ELISA for the detection of circulating CTA-specific IgG.
- Graphs display mean OD values calculated from studies run in triplicate (squares, NSCLC patients' sera; diamonds, healthy subjects' sera). The horizontal line represents the positivity cut-off, calculated as three times the median value obtained from the healthy control group. Consistently with expression data from RT-PCR, flow- cytometry and immunofluorescence, FIGURES 4A-4C show that the majority of NSCLC patients displayed CTA specific circulating autoantibodies.
- FIGURES 5A-5F are graphs of the analysis of CTL activity and specificity.
- the histograms show the percentage of specific lysis obtained through a non-radioactive EUROPIUM-based assay under the indicated different conditions.
- the left panel shows the CTL activity at different ratios of effector (E): target 22 (T) cells. Bars represent the mean of experiments run in triplicate, and error bars represent standard deviations.
- the right panel shows the analysis of CTL specificity. Bars represent the mean values obtained from experiments run on the selected 5 patients, while error bars represent standard deviations.
- Antibodies against HLA class I (W6/32) and HLA class II (L243) were added, at a concentration of 25 g/mL to evaluate HLA restricted cytotoxicity.
- CTL indicates cytotoxic T lymphocyte; DC, dendritic cell; HLA, human leukocyte antigen; E7, HPVE7 antigen; PBMCs, peripheral blood mononucleated cell.
- the present inventors successfully generated CTLs capable of efficiently killing autologous tumor cells from 5 patients as seen in FIGURES 5A-F left column. For this analysis, the present inventors selected the patients that displayed specific CTA expression at the protein level in their tumor cells.
- cytotoxic effect was supported by the high percentage of lysis of autologous tumor cells and NSCLC-derived cell lines (40% to more than 80%), whereas non-tumoral cells (DC, DC pulsed with the unrelated HPV-E7 antigen, and the normal bronchus-derived cell line CRL-2503) were lysed in ⁇ 10% (FIGURES 5A-F, right).
- HLA class I restriction was shown by lysis inhibition by an antibody directed 12 against monomorphic HLA class I molecules, but not HLA class II molecules as seen in FIGURES 5A-F, right column.
- FIGURES 6A, 6C and 6E are ELISA analyzed for the levels of the indicated cytokines and FIGURES 6B, 6D and 6F are ELISPOT analysis of IFN- ⁇ expression by patients' CTLs co-cultured with autologous tumor cells.
- FIGURES 6A, 6C and 6E are ELISA of supernatants from co-cultures (20:1 effectontarget ratio) of autologous tumor cells and PBMCs stimulated with CTA-pulsed or unmodified DCs were analyzed for the levels of the indicated cytokines. All measurement were run in triplicate.
- Results are displayed as the mean ODs measured with activated PBMCs divided by the mean ODs obtained with PBMCs incubated with autologous DCs without antigens (OD 450 ratio).
- FIGURES 6B, 6D and 6F are ELISPOT analysis of IFN- ⁇ expression by patients' CTLs co-cultured with autologous tumor cells (20:1 effectontarget ratio) was evaluated using ELISPOT assay as detailed in the Materials and Methods section. Spot counts were performed with an AID ELISPOT Reader System (Cell Technology, Inc., Columbia, MD) and normalized per 106 PBMCs. Results represent the means ⁇ standard deviations of assays run in triplicate.
- T cell activation and polarization toward the Thl effector phenotype was shown by the ELISA based measurement of cytokine expression: after stimulation with CTA-pulsed DCs and co-cultured with tumor cells, the levels of IFN- ⁇ and TNF-a were increased by more than 50 times, whereas IL-4, IL-5, and IL-10 were substantially unchanged (as seen in FIGURES 6A, 6C and 6E).
- the ELISPOT results for IFN- ⁇ further confirmed the increased high occurrence of IFN-y-producing cells in PBMCs activated with ropporin-presenting DCs co-cultured with autologous tumor cells (FIGURES 6A, 6C and 6E).
- SP17/AKAP4/PTTG1 RNA is selectively expressed by NSCLC cell lines and primary tumors, but not in nontumoral cell lines and tissues.
- FIGURE 1A While none of the normal tissues expressed detectable RNA levels for SP17, AKAP-4 and PTTGl, (FIGURE 1A), the normal bronchial cell line CRL-2503 demonstrated weak expression of SP17 RNA (FIGURE IB).
- tumors from all 17 NSCLC patients were positive for SP17 while 65% of tumors expressed AKAP4 (11/17), and 59% PTTGl (10/17) (FIGURE 1C).
- SP17/AKAP4/PTTG1 are expressed at the protein level by NSCLC cell lines and primary patients' samples, but not by normal bronchus epithelium.
- FIGURE 2 shows that SP17/AKAP4/PTTG1 are expressed by NSCLC-derived but not by normal bronchus-derived cell lines.
- nontumoral CRL-2503 cells were negative for SP17 protein, even though the SP17 gene was weakly expressed (FIGURES IB and 2).
- the present inventors then performed a similar analysis on patient-derived NSCLC tumors/tissues which was fully consistent the RT-PCR data.
- FIGURE 2 shows representative results from 3 patients.
- FIGURE 2 shows cytoplasmic localization of SP17/AKAP4/PTTG1 in tumor cells but none or borderline signal in the normal bronchus cell line CRL-2503, in accordance with results from flow-cytometry.
- Circulating CTA-specific autoantibodies are detectable in the sera of NSCLC patients.
- the present inventors compared the levels of circulating CTA-specific IgG autoantibodies in sera from NSCLC patients with those from healthy subjects, by indirect ELISA. A subject was considered positive if the ELISA. signal was at least 3 standard deviations higher than the median signal found in healthy subjects (20). Consistently with expression data from RT-PCR, flow-cytometry and immunofluorescence, FIGURES 4A-C show that the majority of NSCLC patients displayed CTAspecific circulating autoantibodies.
- the present inventors successfully generated CTLs capable of efficiently killing autologous tumor cells from 5 patients (FIGURES 5A-F, left). For this analysis, the present inventors selected the patients that displayed specific CTA expression at the protein level in their tumor cells. The specificity of cytotoxic effect was supported by the high percentage of lysis of autologous tumor cells and NSCLC-derived cell lines (40% to more than 80%), whereas nontumoral cells (DC, DC pulsed with the unrelated HPV-E7 antigen, and the normal bronchus-derived cell line CRL-2503) were lysed in ⁇ 10% (FIGURES 5A-F, right).
- HLA class I restriction was shown by lysis inhibition by an antibody directed against monomorphic HLA class I molecules, but not HLA class II molecules (FIGURES 5A-F, right).
- T cell activation and polarization toward the Thl effector phenotype was shown by the ELISA based measurement of cytokine expression: after stimulation with CTA-pulsed DCs and cocultured with tumor cells, the levels of IFN- ⁇ and TNF-a were increased by more than 50 times, whereas IL-4, IL-5, and IL- 10 were substantially unchanged (FIGURES 6A-F, left).
- the ELISPOT results for IFN- ⁇ further confirmed the increased high occurrence of IFN-y-producing cells in PBMCs activated with ropporin- presenting DCs co-cultured with autologous tumor cells (FIGURES 6A-F, right).
- NSCLC was historically thought to be weakly immunogenic because of the low frequency of tumor-infiltrating T cells (21), studies using murine NSCLC models have shown that is it possible to activate an effective immune response utilizing a DC -based approach (22, 23).
- tumor antigen-specific T cell responses have been detected in patients with NSCLC (23), indicating that identifying specific NSCLC-associated antigens and presenting them in an optimal fashion to the immune system may generate tumor-specific effector T cells generally absent or inactive in this disease (24).
- the potential role of immunotherapy in improving patients' survival and reducing morbidities associated to standard treatments has been demonstrated by a recent meta-analysis of 12 clinical vaccine trials in patients with NSCLC (25).
- CTAs are tumor-associated antigens particularly suitable for tumor immunotherapy due to their highly tumor-restricted expression pattern and their immunogenicity (7, 9).
- the present inventors show the use of three CTA, namely SP17, AKAP4, and PTTG1, in the immunotherapy of NSCLC.
- the present inventors analyzed for the first time the differential expression of 3 CTAs, namely SP17, AKAP4, PTTG1, in a panel of normal tissues, three NSCLC cell lines, one normal bronchus cell line, primary tumor cells from 17 NSCLC patients, and bronchus epithelial cells from 8 healthy subjects.
- 3 CTAs namely SP17, AKAP4, PTTG1
- NSCLC cell lines expressed SP17/AKAP4/PTTG1 transcripts and proteins, while the normal bronchus epithelium cell line showed weakly SP17 RNA expression only. This is consistent with our previous report showing that SP17 is expressed in ciliated somatic epithelia, including those of the airways (26).
- the present inventors found that the majority of NSCLC patients' sera were positive for at least two CTA-specific antibodies, with only patient #5 displaying anti-SP17 but not anti-AKAP4 or anti-PTTGl IgG. While there was a complete concordance between mRNA and protein expression data in tumor tissues, the humoral anti-tumor response, measured as anti-CTA antibodies in sera, resulted more heterogeneous. For example, three NSCLC patients (#2, 13, 14) were classified as anti-SP17 negative, although their tumors expressed SP17. Interestingly, all of the AKAP4- or PTTG1- positive patients also displayed the corresponding specific autoantibodies in their sera. A recent study by Shan Q. et al.
- the present inventors examined T cell response to CTA-loaded dendritic cells (DCs).
- DCs CTA-loaded dendritic cells
- the application of DCs is a widely recognized method for the stimulation of tumor antigen-specific T cell responses and the present inventors have previously used this technique in MM, cervical and prostate cancer (6, 15, 30, 31).
- the present inventors selected 5 patients that tested positive for SP17, AKAP4, or PTTG1 protein expression in tumor cells. As expected, patients' PBMCs stimulated with CTA-presenting DCs displayed significant lytic activity against autologous lung cancer cells and NSCLC -derived cell lines.
- NSCLC patients show an abnormal Th-2-type cytokine pattern (34), which negatively impacts a significant response to immunotherapy (35), it is possible, but not a limitation of the present invention, that CTA-loaded DCs have the ability to stimulate a T-helper Th-1 profile.
- the activation of effector T lymphocytes was further demonstrated by ELISPOT analysis, which revealed a high frequency of IFN- ⁇ -expressing cells in PBMCs primed with CTA-loaded DCs and exposed to autologous tumor cells. This is finding is relevant, since IFN- ⁇ has been shown to exert significant inhibitory effects in NSCLC growth (37).
- compositions of the invention can be used to achieve methods of the invention.
- the words “comprising” (and any form of comprising, such as “comprise” and “comprises”), “having” (and any form of having, such as “have” and “has”), "including” (and any form of including, such as “includes” and “include”) or “containing” (and any form of containing, such as “contains” and “contain”) are inclusive or open-ended and do not exclude additional, unrecited elements or method steps.
- A, B, C, or combinations thereof refers to all permutations and combinations of the listed items preceding the term.
- A, B, C, or combinations thereof is intended to include at least one of: A, B, C, AB, AC, BC, or ABC, and if order is important in a particular context, also BA, CA, CB, CBA, BCA, ACB, BAC, or CAB.
- expressly included are combinations that contain repeats of one or more item or term, such as BB, AAA, AB, BBC, AAABCCCC, CBBAAA, CABABB, and so forth.
- BB BB
- AAA AAA
- AB BBC
- AAABCCCCCC CBBAAA
- CABABB CABABB
- Gadgeel SM The optimal chemotherapy for stage III non-small cell lung cancer patients. Curr Oncol Rep. 2011 ;13:272-9.
- AKAP-4 a novel cancer testis antigen for multiple myeloma: Br J Haematol. 2008 Feb;140(4):465-8.
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