EP2825201A1 - The filamentous bacteriophage as an angiogenesis modulator - Google Patents
The filamentous bacteriophage as an angiogenesis modulatorInfo
- Publication number
- EP2825201A1 EP2825201A1 EP13761938.3A EP13761938A EP2825201A1 EP 2825201 A1 EP2825201 A1 EP 2825201A1 EP 13761938 A EP13761938 A EP 13761938A EP 2825201 A1 EP2825201 A1 EP 2825201A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- filamentous bacteriophage
- lps
- phage
- angiogenesis
- bacteriophage
- 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- Withdrawn
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- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N7/00—Viruses; Bacteriophages; Compositions thereof; Preparation or purification thereof
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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
- A61K35/66—Microorganisms or materials therefrom
- A61K35/76—Viruses; Subviral particles; Bacteriophages
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P31/00—Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P35/00—Antineoplastic agents
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/005—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from viruses
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2319/00—Fusion polypeptide
- C07K2319/33—Fusion polypeptide fusions for targeting to specific cell types, e.g. tissue specific targeting, targeting of a bacterial subspecies
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2795/00—Bacteriophages
- C12N2795/00011—Details
- C12N2795/14011—Details ssDNA Bacteriophages
- C12N2795/14111—Inoviridae
- C12N2795/14122—New viral proteins or individual genes, new structural or functional aspects of known viral proteins or genes
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2795/00—Bacteriophages
- C12N2795/00011—Details
- C12N2795/14011—Details ssDNA Bacteriophages
- C12N2795/14111—Inoviridae
- C12N2795/14132—Use of virus as therapeutic agent, other than vaccine, e.g. as cytolytic agent
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2795/00—Bacteriophages
- C12N2795/00011—Details
- C12N2795/14011—Details ssDNA Bacteriophages
- C12N2795/14111—Inoviridae
- C12N2795/14141—Use of virus, viral particle or viral elements as a vector
- C12N2795/14145—Special targeting system for viral vectors
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N2795/00—Bacteriophages
- C12N2795/00011—Details
- C12N2795/14011—Details ssDNA Bacteriophages
- C12N2795/14111—Inoviridae
- C12N2795/14151—Methods of production or purification of viral material
Definitions
- the present invention relates to modulation of angiogenesis, such as the inhibition of angiogenesis in cancer and other diseases in which there is excessive angiogenesis and the promotion of angiogenesis in diseases or conditions in which there is insufficient angiogenesis.
- Angiogenesis is an intricate progression which takes part in normal states such as embryo development and menstrual cycle but is also related to several pathologies including wound healing, cancer, macular degeneration and ischemia (Risau 1997; Maas et al., 2001;
- Anti- angiogenesis agents such as bevacizumab, sunitinib and sorafenib have already been proven to be beneficial in cancer therapy, especially in combination with chemotherapy (Hurwitz et al., 2004; Sunitinib et al., 2010; and Ghassan et al., 2010), establishing anti-angiogenesis therapy as one of the fourth modality of cancer treatment together with surgery, chemotherapy and radiotherapy.
- VEGF vascular endothelial growth factor
- Angl/2 angiopoeitin 1 and 2
- Angl and Ang2 are ligands of Tie2 tyrosine kinase receptor. While Angl functions as Tie2 agonist the role of Ang2 is less understood and is generally referred to as a context dependent agonist/antagonist.
- Signals mediated by Tie2 promote fundamental processes in angiogenesis particularly by manipulating endothelial cells (EC) activity.
- Tie2 was demonstrated to induce EC migration, adhesion to extra cellular matrix (ECM) proteins and tube formation. Furthermore, binding of Ang2 or Angl to Tie2 modulates vessel stability by either promoting pericytes dissociation from pre-existing quiescent vessels or recruiting pericytes to support nascent vessels respectively (Dvorak, 2005; Huang et al, 2010; and Matijs et al, 2009).
- VEGF Vascular endothelial growth factor
- bacteriophage was combined with a type I collagen scaffold and, in the presence of human micro-vascular endothelial cells (hMVECs), was shown to promote angiogenesis of hMVECs on the scaffold of phage -VEGF bound collagen (Yoon et al, 2012)
- the present invention provides a method for treating cancer and a method for inhibiting angiogenesis.
- the method for treating cancer or for inhibiting angiogenesis involves administering to a patient suffering from cancer or in need of inhibition of angiogenesis an effective amount of a filamentous bacteriophage carrying bacterial Lipopolysaccharide (LPS) endotoxin on its surface, optionally displaying on its surface a peptide that binds to Tie2 receptor tyrosine kinase (such as a peptide comprising the amino acid sequence NLLMAAS (SEQ ID NO: l), with the proviso that the filamentous bacteriophage does not display an antibody or a tumor specific peptide (such as a melanoma tumor-specific peptide comprising the amino acid sequence of RRKRMTILKSRM (SEQ ID NO:2) or TRTKLPRLHLQS (SEQ ID NO:3)) on its surface.
- LPS Lipopolysaccharide
- the present invention also provides a method for promoting angiogenesis in a disease or condition in which there is insufficient angiogenesis.
- This method and use involves administering to a patient in need thereof an effective amount of a filamentous bacteriophage carrying bacterial Lipopolysaccharide (LPS) endotoxin on its surface, optionally displaying on its surface a peptide that binds to Tie2 receptor tyrosine kinase, with the proviso that the filamentous bacteriophage does not display vascular endothelial growth factor (VEGF) on its surface.
- LPS Lipopolysaccharide
- Figure 1 is a graph showing binding of AAP1 and helper phage at different titers to Tie2, coating buffer and streptavidin.
- Figure 2 presents images showing helper phage and AAP1 inhibiting tube formation in vitro.
- Figure 3 is a graph showing the average number of tube formation with angiogenic stimulators Angl and PHSRN in the presence or absence of AAP1 or helper phage.
- Figure 4 presents images showing helper phage and AAP1 inhibiting wound healing in vitro.
- Figure 5 is a graph showing cells per area unit with angiogenic stimulators Angl and PHSR in the presence or absence of AAP1 or helper phage.
- Figure 6 is a graph showing average tumor size from treatment with AAP1 , Ang2, helper phage and PBS control.
- Figures 7A-7C are Doppler sonograph images of tumors (Figs. 7A and 7B) and a graph (Fig. 7C) showing inhibition of angiogenesis and a graph in subcutaneous tumors with AAP1 and Ang2.
- Figures 8A-8D are tissue sections of subcutaneous tumors immunostained with ant-CD31 antibody (Figs. 8A-8C) and a graph of the number of blood vessels per area (Fig. 8D) for AAPl , helper page and PBS.
- Figures 9A and 9B are a graph (Fig. 9A) and a Western blot (Fig. 9B) showing the level of endotoxin (LPS) units remaining in stages of phage purification.
- LPS endotoxin
- Figures 10 is a graph showing dose dependent binding of helper phage to recombinant human Tie2 receptor in a direct ELISA. The first of each pair of bars is in the presence of Tie2 and the second of each pair of bars is in the absence of Tie2.
- Figure 1 1 is a graph of ELISA results showing helper phage binding to Tie2 is compromised by LPS removal or competition with LPS containing bacteria. Left bar of pairs is with Tie2 and right bar of pairs is without Tie2.
- Figure 12 is a graph of ELISA results showing that soluble Tie2 competes with helper phage over binding to immobilized Tie2. Left bar of pairs is with Tie2 and right bar of pairs is without Tie2.
- Figure 13 is a graph of ELISA results showing helper phage binds to Ang2 but not to Angl . Left bar of pairs is with Angl and right bar of pairs is with Ang2.
- Figures 14A and 14B are graphs of ELISA showing co-localization of LPS (detected with anti-LPS antibodies) and phage (detected with anti-P3 capture antibodies) in Fig. 14A and LPS localization on page, using capture antibodies, is dependent on phage purification. Left bar of pairs is with capture antibody and right bar of pairs is without capture antibody.
- Figures 15A-15F are transmission electron microscopy (TEM) images of co- localization of LPS and filamentous phage in sandwich ELISA based immunogold TEM with anti-p8 capture antibodies.
- TEM transmission electron microscopy
- Figures 16A and 16B are graphs showing that phage binds to LPS binding protein in a direct ELISA (Fig. 16A) and the quantification of LPS carried by phage (Fig. 16B).
- the left bar of pairs in Fig. 16B is with capture antibody and right bar of pairs is without capture antibody.
- Figures 17A-17D are Western blots (Figs. 17A and 17C) and graphs (Figs. 17B and 17D) showing that LPS or phage reduces the levels of phosphorylated Tie2 and ERK in HUVEC.
- Figures 18A-18D are images (Figs. 18A-18C) and a graph (Fig. 18D) showing that phage and LPS inhibit in vitro HUVEC tube formation.
- Figures 19A-19D are images and Figure 19E is a graph showing inhibition of in vitro angiogenesis by phage is dependent on LPS concentration in the phage preparation.
- Figures 20A-20D are images and Figure 20E is a graph showing that LPS inhibits Angl/Ang2 activity in in vitro HUVEC tube formation.
- Figures 21A is a graph and Figures 21B and 21C are images showing LPS inhibits in vitro wound healing.
- Figures 22A-22C are images and Figure 22D is a graph showing that phage and LPS inhibit vessel sprouting in an aorta ring assay.
- Figures 23 A and 23B are graphs showing that the inhibition of endothelial cell activity is not mediated by cell toxicity caused by LPS or phage administration. In Fig. 23B, each cluster of bars are from left to right in the descending order of representations as presented to the right of the graph.
- Figures 24A and 24B are graphs showing a similar trend of tumor inhibition between phage and LPS (Fig. 24A) with no significant change in body weight (Fig. 24B).
- Figures 24C and 24D are an in vivo fluorescence image (Fig. 24C) and graph (Fig. 24D) showing correlation with tumor inhibition observed in Fig. 24A.
- Figures 24E and 24F are a graph (Fig. 24E) and Doppler sonograph images (Fig. 24F) showing that phage decreases angiogenesis of internal blood vessels.
- Figures 24G and 24H are images of histological analysis with H&E staining showing that phage decreases the number of blood vessels observed.
- Figures 25A and 25D are Western blots and Figures 25B, 25C, 25E and 25F are graphs showing that treatment of subcutaneous tumors in mice with LPS downregulates Tie2 phosphorylation levels and downstream signaling.
- Figure 26 is a graph showing phage concentration in mice olfactory bulb compared with the rest of brain.
- Figures 27A-27D are an image of mouse brain parts (Fig. 27A) and graphs (Figs. 27B-27D) showing phage concentration in the anterior and posterior parts of the mouse brain and in different internal organs following intranasal administration.
- Figure 28 is a graph showing phage localization in mice gut and other peripheral organs following intranasal administration.
- Figures 29A-29D are graphs (Figs. 29A and 29D), CT scan (Fig. 29B), and a Kaplan-Meier plot (Fig. 29C) showing that intranasal administration of phage inhibits tumor growth in mice and increases mice survival rate.
- Figure 30 is a graph showing that peritumoral administration of phage inhibits Lewis lung carcinoma (LLC) subcutaneous tumors.
- LLC Lewis lung carcinoma
- Figures 31 A-3 IE are a Kaplan-Meier plot (Fig. 31 A), graphs (Figs. 3 IB and 31C), visible light/fluorescence imaging (Fig. 3 ID) and CT imaging (Fig. 3 IE) showing that intranasal administration of phage or LPS inhibits lung tumor growth and increases survival rate in mice.
- Figures 32A-32E are images and Figure 32F is a graph showing that AAPl, wild type filamentous, and filamentous helper phage promote cell adhesion in vitro.
- Figures 33A-33C are images and Figure 33D is a graph showing that helper phage and AAPl promote blood vessel formation in chick chorioallantoic membrane.
- HUVEC Human Umbilical Vein Endothelial Cells
- the present invention is based on the discovery by the present inventors that the filamentous phage, a gram-negative bacterial virus (Rakonjac et al, 2011), possesses an intrinsic ability to modulate angiogenesis and inhibit tumor growth and show that lipopolysaccharide (LPS), an endotoxin which is anchored to the outer membrane of gram-negative bacteria (Bryant et al., 2010), is attached to the phage surface and contributes to phage anti-angiogenic and antitumor activities. Moreover, phage and LPS complexes can interact with Tie2, modulate its phosphorylation and affect downstream signals such as ERK and Akt pathways that are activated during angiogenesis.
- LPS lipopolysaccharide
- phage and LPS complexes can interact with Tie2, modulate its phosphorylation and affect downstream signals such as ERK and Akt pathways that are activated during angiogenesis.
- GBM glioblastoma multiforme
- a prominent advantage of IN administration is that it bypasses the blood brain barrier and the first pass metabolism in the liver, and therefore results in relatively high bioavailability of the desired agent (Chapman et al., 2012). In addition, this route of administration is non-invasive and can be performed by the patients themselves.
- the present inventors also demonstrated that approximately 20% of the IN administered phages are inhaled and can be isolated from mice lungs. Lung cancer is the most common and deadliest cancer worldwide accounting for approximately 13% of all cancer cases and 18% of all cancer deaths (Ferlay et al., 2010; who.int/mediacentre/ factsheets/).
- the present inventors established an orthotopic lung tumor model and found that IN administration of phage significantly inhibited lung tumor growth and increased mice survival rate .
- the brain serves as a sanctuary for metastasis cells with lung cancer being the primary source of secondary brain tumors (Palmieri et al., 2007; Yamanaka 2009).
- IN administration of phages to a patient suffering from lung cancer can potentially inhibit lung tumor progression and prevent or inhibit the growth of brain metastasis simultaneously.
- the present inventors constructed a recombinant phage by cloning a known anti-angiogenic peptide (NLLMAAS; SEQ ID NO: 1) (Tournaire et al., 2004) to the major coat protein of the phage.
- NLLMAAS anti-angiogenic peptide
- This short peptide was demonstrated to bind to Tie2 receptor and inhibit its activity and was shown to inhibit angiogenesis in vitro and in vivo.
- This new phage which displays the recombinant protein on all of its major coat proteins (roughly 2700 copies) is termed Anti Angiogenic Phage 1 (AAPl).
- the present invention provides a method for treating cancer and, more generally, a method for inhibiting angiogenesis.
- Lipopolysaccharide (LPS) endotoxin on its surface optionally displaying on its surface a peptide that binds to Tie2 receptor tyrosine kinase (such as a peptide comprising the amino acid sequence NLLMAAS (SEQ ID NO: l), with the proviso that the filamentous bacteriophage does not display an antibody or a tumor specific peptide (such as a melanoma tumor-specific peptide comprising the amino acid sequence of RRKRMTILKSRM (SEQ ID NO:2) or
- TRTKLPRLHLQS (SEQ ID NO:3)) on its surface.
- angiogenesis is one whose vascular endothelium in an organ or tissue is characterized by a non- resting, stressed state and by excessive angiogenesis.
- the filamentous phage used in the treating cancer and in inhibiting angiogenesis is expected to work in a context dependent manner. It is anti-angiogenic in the context of cancer, where the vascular endothelium in the cancer tissue (where Tie2 is overexpressed) is in a stressed state with conditions favorable for angiogenesis. Thus, the context favors pro-antigenesis, leading to excessive angiogenesis, which needs to be inhibited.
- Non-limiting preferred examples of cancers to be treated using filamentous phage are cancers of the brain, lung stomach and other parts of the upper gastrointestinal tract, such as the esophagus and liver, and the lower gastrointestinal tract, such as the colon and rectum.
- a most preferred example of a cancer of the brain is glioblastoma.
- non-limiting examples of diseases in which it is desirable to inhibit angiogenesis include a skin disease such as psoriasis, warts, allergic dermatitis, keloid scars, pyogenic granulomas, blistering disease, Kaposi's sarcoma, and systemic sclerosis; a disease of the nasal or oral cavity, lung, and the gastrointestinal tract such as periodontal disease, primary pulmonary hypertension, asthma, nasal polyps, chronic airway inflammation, cystic fibrosis, inflammatory bowel disease (ulcerative colitis), peritoneal adhesions, and liver cirrhosis; and others such as multiple sclerosis, diabetic retinopathy, diabetic nephropathy, endometriosis, ovarian cysts, uterine bleeding, arthritis, and osteomyelitis, etc (Carmeliet, 2005 including supplemental information).
- a skin disease such as psoriasis, warts, allergic dermatitis, keloid scars, py
- the present invention also provides a method for promoting angiogenesis in such a disease or condition in which there is insufficient angiogenesis.
- This method and use involves administering to a patient in need thereof an effective amount of a filamentous bacteriophage carrying bacterial
- LPS Lipopolysaccharide
- VEGF vascular endothelial growth factor
- Non-limiting examples of such a disease or condition in which there is insufficient angiogenesis include stroke, hair loss, gastric or oral ulcerations, diabetic ulcers, Crohn's disease, chronic wounds, lupus, preeclampsia, nephropathy, etc (Carmeliet, 2005 including supplemental information).
- patient refers to humans and other mammals which are the object of therapeutic treatment.
- treating with respect to cancer is intended to mean substantially inhibiting, slowing or reversing the progression of cancer.
- antibody includes polyclonal antibodies, monoclonal antibodies, antibody compositions with polyepitope specificities, bispecific antibodies, diabodies, or other purified preparations of antibodies and recombinant antibodies.
- the antibodies can be whole antibodies, e.g., of any isotype (IgG, IgA, IgE, IgM, etc.), or antibody fragments that bind the antigen of interest.
- the antibody to be formulated is an antibody having the IgG isotype.
- Antibodies can be fragmented using conventional or other techniques and the fragments screened for binding to an antigen of interest. Generally, an antibody fragment comprises the antigen-binding and/or the variable region of an intact antibody.
- antibody fragment includes segments of proteolytically cleaved or recombinantly prepared portions of an antibody molecule that can selectively bind to a selected protein.
- proteolytic and/or recombinant fragments include Fab, F(ab')2, Fab', Fv, and single chain antibodies (scFv) containing a VL and/or VH domain joined by a peptide linker, domain antibodies (dAbs), Nanobodies® (antibody-derived biological therapeutic agents that contain the unique structural and functional properties of naturally- occurring heavy-chain antibodies), and UniBodies (antibodies lacking the hinge region).
- the scFvs may be covalently or noncovalently linked to form antibodies having two or more binding sites.
- a "pharmaceutical composition” refers to a preparation of one or more of the active ingredients described herein with other chemical components such as physiologically suitable carriers and excipients.
- the purpose of a pharmaceutical composition is to facilitate administration of an active ingredient to a patient.
- physiologically acceptable carrier and “pharmaceutically acceptable carrier,” which may be interchangeably used, refer to a carrier or a diluent that does not cause significant irritation to an organism and does not abrogate the biological activity and properties of the administered active ingredient.
- excipient refers to an inert substance added to a pharmaceutical composition to further facilitate administration of an active ingredient.
- excipients include calcium carbonate, calcium phosphate, various sugars and types of starch, cellulose derivatives, gelatin, vegetable oils and polyethylene glycols.
- wild type filamentous bacteriophage as used herein means a naturally occurring filamentous bacteriophage that is designated in the art as being wild type.
- wild type-like filamentous bacteriophage means a filamentous bacteriophage which is not exactly "wild type” but does not display any foreign peptides or proteins on its surface, such as helper phages, a non-limiting example of which is the commercially available M13K07 helper phage (New England Biolabs, Beverly, MA).
- inactivated wild type filamentous bacteriophage means a wild type filamentous bacteriophage that is not genetically altered by recombinant DNA means, but has been rendered incapable of replication, such as by UV -irradiation. Any mechanism which renders the phage incapable of replication, but does not disturb the filamentous structure of the bacteriophage (retains its ability to penetrate into the brain through the olfactory pathway) is contemplated by this invention.
- WT phage refers to both wild-type filamentous bacteriophage and inactivated wild-type filamentous bacteriophage.
- Filamentous bacteriophages are a group of structurally related viruses which contain a circular single-stranded DNA genome. They do not kill their host during productive infection.
- the phages that infect Escherichia coli containing the F plasmids are collectively referred to as Ff bacteriophages. They do not infect mammalian cells.
- the filamentous bacteriophage is independently selected from filamentous phages Ml 3, fl, fd and mixtures thereof.
- active ingredient refers to the preparation of the filamentous bacteriophage accountable for the biological effect.
- Techniques for formulation and administration of active ingredients, e.g., drugs, may be found in "Remington's Pharmaceutical Sciences,” Mack Publishing Co., Easton, PA, latest edition, which is incorporated herein by reference.
- Suitable routes of administration of the filamentous bacteriophage according to the present invention may, for example, include topical, oral, rectal, transmucosal, especially transnasal, intestinal or parenteral delivery, including intramuscular, subcutaneous and intramedullary injections as well as intrathecal, direct intraventricular, intravenous,
- intraperitoneal, intranasal, or intraocular injections are intraperitoneal, intranasal, or intraocular injections.
- the filamentous bacteriophage may be formulated in a pharmaceutical composition and may be manufactured by processes well known in the art, e.g., by means of conventional mixing, dissolving, granulating, dragee-making, levigating, emulsifying, encapsulating, entrapping or lyophilizing processes.
- compositions for use in accordance with the present invention thus may be formulated in a conventional manner using one or more physiologically acceptable carriers comprising excipients and auxiliaries, which facilitate processing of the active ingredients into preparations which, can be used pharmaceutically. Proper formulation is dependent upon the route of administration chosen.
- the active ingredient of the invention may be formulated in aqueous solutions, preferably in physiologically compatible buffers such as Hank's solution, Ringer's solution, or physiological salt buffer.
- physiologically compatible buffers such as Hank's solution, Ringer's solution, or physiological salt buffer.
- penetrants appropriate to the barrier to be permeated are used in the formulation. Such penetrants are generally known in the art.
- the compounds can be formulated readily by combining the active compounds with pharmaceutically acceptable carriers well known in the art.
- Such carriers enable the compounds of the invention to be formulated as tablets, pills, dragees, capsules, liquids, gels, syrups, slurries, suspensions, and the like, for oral ingestion by a patient.
- Pharmacological preparations for oral use can be made using a solid excipient, optionally grinding the resulting mixture, and processing the mixture of granules, after adding suitable auxiliaries if desired, to obtain tablets or dragee cores.
- Suitable excipients are, in particular, fillers such as sugars, including lactose, sucrose, mannitol, or sorbitol; cellulose preparations such as, for example, maize starch, wheat starch, rice starch, potato starch, gelatin, gum tragacanth, methyl cellulose, hydroxypropylmethyl-cellulose, sodium carbomethylcellulose; and/or physiologically acceptable polymers such as polyvinylpyrrolidone (PVP).
- disintegrating agents may be added, such as cross-linked polyvinyl pyrrolidone, agar, or alginic acid or a salt thereof such as sodium alginate.
- Dragee cores are provided with suitable coatings.
- suitable coatings may be used which may optionally contain gum arabic, talc, polyvinyl pyrrolidone, carbopol gel, polyethylene glycol, titanium dioxide, lacquer solutions and suitable organic solvents or solvent mixtures.
- Dyestuffs or pigments may be added to the tablets or dragee coatings for identification or to characterize different combinations of active compound doses.
- compositions which can be used orally, include push- fit capsules made of gelatin as well as soft, sealed capsules made of gelatin and a plasticizer, such as glycerol or sorbitol.
- the push-fit capsules may contain the active ingredients in admixture with filler such as lactose, binders such as starches, lubricants such as talc or magnesium stearate and, optionally, stabilizers.
- the active ingredient may be dissolved or suspended in suitable liquids, such as fatty oils, liquid paraffin, or liquid polyethylene glycols.
- stabilizers may be added. All formulations for oral administration should be in dosages suitable for the chosen route of administration.
- oral administration can be also be effected by mixing a phage preparation with food for ingestion by the patient.
- the oral route can serve to infect the microflora in the gastrointestinal (GI) tract (e.g., E. coli) with the administered/ingested phage so that the phage replicates in indigenous GI microflora to produce more phage to treat GI tract pathologies, particularly in the lower GI tract.
- GI gastrointestinal
- compositions may take the form of tablets or lozenges formulated in conventional manner.
- the active ingredient for use according to the present invention are conveniently delivered in the form of an aerosol spray presentation from a pressurized pack or a nebulizer with the use of a suitable propellant, e.g., dichlorodifluoromethane, trichlorofluoromethane, dichloro-tetrafluoroethane or carbon dioxide.
- a suitable propellant e.g., dichlorodifluoromethane, trichlorofluoromethane, dichloro-tetrafluoroethane or carbon dioxide.
- a nasal spray which does not require a pressurized pack or nebulizer as in an inhalation spray, can alternatively used for intranasal administration.
- the dosage unit may be determined by providing a valve to deliver a metered amount.
- Capsules and cartridges of, e.g., gelatin for use in a dispenser may be formulated containing a powder mix of the compound and a suitable powder base such as lac
- Formulations for injection may be presented in unit dosage form, e.g., in ampoules or in multidose containers with optionally, an added preservative.
- the compositions may be suspensions, solutions or emulsions in oily or aqueous vehicles, and may contain formulatory agents such as suspending, stabilizing and/or dispersing agents.
- compositions for parenteral administration include aqueous solutions of the active preparation in water-soluble form. Additionally, suspensions of the active ingredients may be prepared as appropriate oily or water based injection suspensions. Suitable lipophilic solvents or vehicles include fatty oils such as sesame oil, or synthetic fatty acids esters such as ethyl oleate, triglycerides or liposomes. Aqueous injection suspensions may contain substances, which increase the viscosity of the suspension, such as sodium carboxymethyl cellulose, sorbitol or dextran. Optionally, the suspension may also contain suitable stabilizers or agents which increase the solubility of the active ingredient to allow for the preparation of highly concentrated solutions.
- the active ingredient may be in powder form for constitution with a suitable vehicle, e.g., sterile, pyrogen-free water based solution, before use.
- a suitable vehicle e.g., sterile, pyrogen-free water based solution
- the active ingredient may also be formulated in rectal compositions such as suppositories or retention enemas, using, e.g., conventional suppository bases such as cocoa butter or other glycerides.
- compositions suitable for use in the context of the present invention include compositions wherein the active ingredient is contained in an amount effective to achieve the intended purpose. More specifically, a therapeutically effective amount means an amount of active ingredient effective to treat cancer or inhibit angiogenesis in a patient suffering from cancer or in need of inhibition of angiogenesis or effective to promote angiogenesis in a patient suffering from a disease or condition in which there is insufficient angiogenesis.
- the cancers to be treated by the filamentous bacteriophage or pharmaceutical composition containing this active ingredient include, but are not limited to brain, lung and stomach cancers, as well as cancers of the nasal and oral cavities and the upper gastrointestinal tract, such as cancer of the esophagus, and the lower gastrointestinal tract, such as the small intestine, colon and rectum.
- a preferred embodiment of brain cancer is a glioblastoma (GBM).
- the therapeutically effective amount or dose can be estimated initially from in vitro and cell culture assays.
- a dose can be formulated in animal models to achieve a desired concentration or titer. Such information can be used to more accurately determine useful doses in humans.
- the amount of bacterial LPS endotoxin carried on the filamentous bacteriophage is about 430 endotoxin
- soluble bacterial LPS endotoxin (i.e., not carried on phage) can be used to treat lung cancer or a cancer of the gastrointestinal tract, preferably formulated for intranasal administration.
- the dosage in endotoxin units for administration to a cancer patient would be in a similar range to the total endotoxin units that would otherwise be carried on filamentous bacteriophage in the titer of filamentous bacteriophage used for administration.
- Toxicity and therapeutic efficacy of the active ingredient described herein can be determined by standard pharmaceutical procedures in vitro, in cell cultures or experimental animals.
- the data obtained from these in vitro and cell culture assays and in animal studies can be used in formulating a range of dosage for use in human.
- the dosage may vary depending upon the dosage form employed and the route of administration utilized.
- the exact formulation, route of administration and dosage can be chosen by the individual physician in view of the patient's condition. (See, e.g., Fingl et al, in "The Pharmacological Basis of Therapeutics", Ch. 1 p. l (1975)).
- Dosage amount and interval may be adjusted individually to provide plasma, brain, local tissue or tumor levels of the filamentous bacteriophage which are sufficient to treat the cancer, inhibit angiogenesis or promote angiogenesis (minimal effective concentration, MEC).
- MEC minimum effective concentration
- Binding assays can be used to determine plasma concentrations.
- Dosage intervals can also be determined using the MEC value. Preparations should be administered using a regimen, which maintains plasma or tissue levels above the MEC for 10-90% of the time, preferable between 30-90% and most preferably 50-90%.
- dosing can be of a single or a plurality of administrations, with course of treatment lasting from several days to several months or until cure is effected or diminution of the disease state is achieved.
- compositions to be administered will, of course, be dependent on the subject being treated, the severity of the affliction, the manner of administration, the judgment of the prescribing physician, etc.
- the filamentous bacteriophage composition for treating cancer, for inhibiting angiogenesis or for promoting angiogenesis may, if desired, be presented in a pack or dispenser device, such as an FDA approved kit, which may contain one or more unit dosage forms containing the active ingredient.
- the pack may, for example, comprise metal or plastic foil, such as a blister pack.
- the pack or dispenser device may be accompanied by instructions for administration.
- the pack or dispenser may also be accommodated by a notice associated with the container in a form prescribed by a governmental agency regulating the manufacture, use or sale of pharmaceuticals, which notice is reflective of approval by the agency of the form of the compositions or human or veterinary administration. Such notice, for example, may be of labeling approved by the U.S. Food and Drug Administration for prescription drugs or of an approved product insert.
- Compositions comprising a preparation of the invention formulated in a compatible pharmaceutical carrier may also be prepared, placed in an appropriate container, and labeled for treatment of an indicated condition, as if further detailed above.
- AAP 1 or M 13K07 Helper Phage (New England Biolabs, Beverly, MA) were produced in Escherichia coli DH12S or TGI cells respectively and purified by PEG
- ELISA plate was coated with recombinant Tie2-FC (R&D) 4 ⁇ g/ml or with streptavidin 2 ⁇ g/ml in coating buffer or coating buffer only. The plate was blocked with 3% milk and incubated with phages for 1 hour at 25°C. Phages were detected with rabbit anti-M13 antibody (our laboratory preparation, 1 :2500) followed by goat anti rabbit HRP conjugated antibody (Jackson, 1 :2500) and developed with OPD (Sigma). Both phages bound to
- Fig. 1 show bound phage/well and are expressed as mean values ⁇ SME. Helper phage and AAPl inhibit tube formation in vitro
- HUVEC Longza, 3 10 4 cells per well
- Matrigel growth factors reduced, 50 ⁇ /well; 10 mg/ml
- AAPl angiogenic stimulators Angl (Huang et al., 2010) (300ng/ml) or Ac-PHSRN-NH2 (Peptide2, ⁇ g/ml) peptide (Aota et al, 1994) suspended in EGM2 (complete growing media containing optimal growth factors, Lonza).
- Angl Human et al., 2010
- Ac-PHSRN-NH2 Peptide2, ⁇ g/ml
- peptide Aota et al, 1994
- HUVEC (5xl0 5 ) were seeded in 6 well plate. Monolayer confluent cells were then scratched to form a gap in the middle of the plate and images were taken. Wells were then supplemented with Helper phages or AAPl (5E+12) with Angl or Ac-PHSRN-NH2 in EGM2. After 13 hours, the plates were recorded and the number of cells invading the gap was counted using the ImageJ software. As shown in Figs. 4 and 5, significantly fewer cells in the gap area were visualized in wells supplemented with either Helper phage or AAPl compared with wells treated with the activators Angl or Ac-PHSRN-NH2 only. Pos - positive control, cells only in EGM2. Results in Fig. 5 are expressed as mean values ⁇ SME (*P ⁇ 0.05).
- Helper phage, AAPl and Ang2 reduce tumor mass in vivo and inhibit angiogenesis in subcutaneous tumors
- a recombinant phage termed Anti- Angiogenic Phage 1 was constructed by cloning the short anti-angiogenic peptide sequence NLLMAAS (SEQ ID NO: l) (Tournaire et al, 2004) to the major coat protein of a phage with a single copy of the major coat protein gene. This resulted in a display of roughly 2700 copies of this peptide on each phage.
- the present inventors show that AAPl can bind to recombinant human Tie2 in ELISA and affects endothelial cells (EC) activity in vitro.
- helper phage which has a wild type-like phenotype (M13K07 Helper Phage, New England Biolabs) and served as a negative control, was observed to also bind to rfiTie2 and affect EC activity and tumor growth.
- the present inventors therefore focused on understanding the nature of the helper phage anti-angiogenic and anti- tumorigenic activities.
- An ELISA plate was coated with either rfiTie2 (4 ⁇ g/ml) in coating buffer or coating buffer alone. Different concentrations of Helper phages (PEG purified) were applied to the plate. Phages were detected by anti-p8 antibodies HRP conjugated and the dose dependent binding of phage to recombinant human Tie2 receptor in a direct ELISA is shown in Fig. 10 with results expressed as mean ⁇ SEM (*P ⁇ 0.05 as compared to 2.5E+12 phages).
- FIG. 12 Another ELISA was performed as previously described. 5E+12 of PEG purified phages with or without 4 ⁇ g of soluble recombinant human Angl, Ang2 or Tie2 were applied to the plate. The results in Fig. 12 show that soluble Tie2 competes with phage over binding to immobilized Tie2 with possible interaction between Angl/2 and phage, with the results expressed as mean ⁇ SEM (*P ⁇ 0.05,**P ⁇ 0.01 as compared to phage alone).
- An ELISA plate was coated with either rhAng2 or rhAngl (4 ⁇ g/ml) in coating buffer or coating buffer alone.
- Helper phages PEG purified
- Phages were detected by anti-p8 antibodies HRP conjugated.
- the results in Fig. 13 show the phage binds to Ang2 but not to Angl, the results expressed as mean ⁇ SEM (* ⁇ 0.05 as compared to samples without phages or without coating protein).
- LPS is attached to filamentous phages
- PEG purified phages were captured by anti-p3 antibodies. LPS was detected by anti-LPS antibodies followed by Alkaline phosphatase conjugated antibodies.
- Figure 14A shows co-localization of LPS and filamentous phage in a sandwich ELISA with the results expressed as mean ⁇ SEM (*P ⁇ 0.05, **P ⁇ 0.01 as compared between two sequential doses).
- ELISA was performed as previously described. Phage at different purification grades were applied to the plate.
- Figure 14B shows LPS localization on phage is dependent on the phage purification grade with the results expressed as mean ⁇ SEM (**P ⁇ 0.01 as compared to PEG purified phages).
- Figures 15A-15F show co-localization of LPS and filamentous phage in a sandwich ELISA-based immunogold TEM. PEG purified phages were immobilized to a nickel grid by anti-p8 capture antibodies. LPS was detected by anti-LPS antibodies followed by gold conjugated antibodies (arrow). The images in Figs. 15A-15D are presented in increasing magnification.
- Figure 16A shows that phage binds to LPS binding protein in a direct ELISA.
- the ELISA plate was coated with 4 ⁇ g/ml of rhLBP. E+13 phages were applied to the plate and detected by anti-p8 HRP conjugated antibody, with the results expressed as mean ⁇ SEM
- Figure 16B shows the quantitation of LPS carried by phage, where the results are presented as mean ⁇ SEM (**P ⁇ 0.01 as compared to control without a capture antibody). LPS and phages modulate Tie2 and ERK phosphorylation levels
- Figures 17A-17D are Western blots (Figs. 17A and 17C) and graphs (Figs. 17B and 17D) showing LPS or phage reduces the levels of phosphorylated Tie2 and ERK in HUVEC.
- HUVEC were serum-starved for 16 hours, then stimulated with LPS or phage for 10 minutes. Cells were lysed and the protein content was evaluated by Western Blot.
- Figs. 17A and 17C Western blots
- Figs. 17B and 17D graphs showing LPS or phage reduces the levels of phosphorylated Tie2 and ERK in HUVEC.
- HUVEC were serum-starved for 16 hours, then stimulated with LPS or phage for 10 minutes. Cells were lysed and the protein content was evaluated by Western Blot.
- HUVEC were serum starved for 12 hours. Cells were suspended in EGM2 medium with the indicated samples and seeded in a matrigel coated 24 well plate.
- Figures 18A- 18C are images and Figures 18D is a graph showing that phage and LPS inhibit in vitro HUVEC tube formation. Results are presented as mean ⁇ SEM (***P ⁇ 0.005 as compared to PBS)
- FIGS 19A-19E show the inhibition of in vitro angiogenesis by phage is dependent on LPS concentration in the phage preparation.
- HUVEC were serum starved for 12 hours.
- Cells were suspended in EGM2 medium with the indicated samples and seeded in a Matrigel coated 24 well plate. Results are presented as mean ⁇ SEM. (*P ⁇ 0.05,***P ⁇ 0.005).
- FIGS 20A-20E show that LPS inhibits Angl/Ang2 activity in in vitro HUVEC tube formation.
- HUVEC were serum-starved for 12 hours.
- Cells were suspended in EGM2 medium with the indicated samples and seeded in a matrigel coated 24 well plate. Tube length was quantified by measuring the length of capillary structures using software NIH ImageJ.
- HUVEC (5xl0 5 ) were seeded in 6 well plate. Monolayer confluent cells were scratched to form a gap in the middle of the plate and images were taken. Wells were then supplemented with samples as indicated diluted in EGM2. After 13 hours, the plates were recorded and the number of cells invading the gap was counted using the Image J software.
- Figures 21A-21C show that LPS inhibits in vitro wound healing as significantly fewer cells in the gap area were visualized in wells supplemented with either TGI bacteria supernatant or purified TGI bacteria LPS compared with wells treated with PBS (*P ⁇ 0.05).
- FIGs 23 A and 23B show that the inhibition of endothelial cell activity is not mediated by cell toxicity caused by LPS or phage administration.
- HUVEC were seeded in 96 well plates. At 50% confluence, wells were supplemented with the indicated LPS concentrations or PBS (Fig. 23A). Plates were incubated for 24 or 48 hours and cell viability was evaluated by the 3-(4,5-Dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) test. As demonstrated LPS did not induce decrease in cell viability.
- Fig. 23B HUVEC were seeded in 6 well plates and were supplemented with the indicated concentration of LPS or phages. 72 hours later, cells were subjected to cell cycle analysis by FACS. As shown, the percentage of cell death in all samples was below 10%>.
- LPS was purified by the LPS extraction kit (Intron) and phages were treated with triton to reduce endotoxin levels. Tumors dimensions were measured by a caliper and tumor volume was calculated as follows: width * length/2
- the graph in Fig. 24 A depicts similar trend of tumor inhibition between phage and LPS which was correlated to in vivo fluorescence readings (number of positive pixels) detected by the Maestro imaging instrument (Figs. 24C and 24D) suggesting a role for LPS in phage anti-tumor activity. Both helper phage and LPS administration significantly inhibited tumor growth compared to the PBS control group.
- Figs. 24E and 24F the effect of phage on tumor growth was accompanied by a significant decrease in angiogenesis of internal blood vessels as indicated by Doppler sonography. This observation was also supported by histopathology analysis with H&E staining (Fig. 24G and 24H; arrows point to blood vessels). No significant change in body weight was observed during the experiment in the treated groups compared to the PBS control group (Fig. 24B; results are expressed as mean values ⁇ SEM, *P ⁇ 0.05, ***P ⁇ 0.005).
- Protein content was analyzed in western blot with antibodies against phosphorylated Tie2 (Y992), total Tie2 (R&D), Phospho-p44/42 MAPK (Erkl/2, cell signaling), p-Akt (cell signaling) or beta-actin (Figs. 25A and 25D).
- Figures 25B, 25C, 25E and 25F show a decrease in Tie2 phosphorylation as well as in Akt and ERK phosphorylation levels following treatment of tumors with LPS compared to control. Results are presented as mean ⁇ SEM (*P ⁇ 0.05, **P ⁇ 0.01).
- helper phage to rfiTie2 was demonstrated to be specific and can be impaired by phage purification or by supplement of soluble LPS, suggesting that LPS mediates phages association with Tie2. It is also shown that phages can bind to Angiopoietin 2 (Ang2) which is a context dependent agonist/antagonist of Tie2, and is an important target in cancer therapy intervention (Huang et al., 2010). The localization of LPS on the surface of phages was confirmed and demonstrated that it is biologically active as indicated by immuno-purified phage reactivity in the LAL assay.
- Ang2 Angiopoietin 2
- Both phage and LPS can inhibit Tie2 signaling and affect ERK phosphorylation that controls angiogenesis and is found downstream to Tie2 (Huang et al, 2010; Brain et al., 1998; Meadows et al., 2001; and Shiojima et al., 2002). Phage and LPS can inhibit EC activity in vitro and vessel sprouting ex vivo. In the subcutaneous GBM allografts model, administration of LPS or phage with equal endotoxin units exhibited the same trend and both inhibited subcutaneous tumor progression in mice to the same extent. This highly suggests that LPS is the active agent in phage preparation and promotes their anti-tumor activity.
- helper phage had only moderate anti-tumor activity.
- helper phage but not AAPl were purified by cesium in addition to TRITON and thus had lower endotoxin concentration compared to AAPl .
- AAPl might have better anti-angiogenic and anti-tumorigenic activities than helper phages provided that both phages carry the same LPS amount (this was not tested in our experiments).
- LPS LPS to subcutaneous tumors in mice affects Tie2 signaling in vivo and downstream signaling such as p-ERK and p-Akt.
- phages are natural carriers of LPS which promotes their anti-angiogenic and anti-tumorigenic activities and their mechanism involves modulation of Tie2 signaling which is a key player in angiogenesis and cancer progression.
- FIG. 28 shows phage localization in mice gut and other peripheral organs following intranasal (IN) administration (Goren et al, 2007). Results are expressed in CPMs per organ weight (g) as well as mean ⁇ SD of each group.
- Urine and feces were collected from mice that were administered IN with helper phage. Their excretions were analyzed for phages content several days following each administration by infecting E.coli cells with urine and feces samples and growing them on a kanamycin containing media (helper phages carry kanamycin resistance gene (M13K07 Helper Phage, New England Biolabs)). The presence of phage in mice excretions was evaluated by sandwich ELISA with anti-phage polyclonal antibodies at the bottom and monoclonal antibodies on top. Phage was detected in urine and feces 3 weeks following IN administration. An additional examination, which was performed after 2 months, did not reveal phage in mice excretions.
- FIGS 29A-29D shows that intranasal administration of phage inhibits brain tumor growth and increases survival rate.
- mice received intranasal administration of either PBS, 1.9E+12 triton purified Helper phages or purified LPS in a total volume of 0.02ml (0.01ml in each nostril) on every second day. Both Helper phages and LPS were produced in the same bacteria ⁇ E.coli DH12S).
- mice C57BL/6 male mice (10 w/o) were inoculated subcutaneously in the flank with E+6 LLC cells in a total volume of 0.1ml. Treatment started when tumors reached 100 mm . Mice received peritumoral injections every second day of either PBS or 1.8E+12 triton purified phages. Tumors growth and volume was monitored with a caliper as described above. Figure 30 shows that peritumoral administration of phages inhibits Lewis lung carcinoma (LLC) subcutaneous tumors. Results are expressed as mean values ⁇ SEM (*P ⁇ 0.05).
- FIGS 31 A-3 IE show that intranasal administration of phage or LPS inhibits lung tumor growth and increases the survival rate in mice.
- Mice received intranasal administration of either PBS, 4.4E+11 Helper phage or equal amount of endotoxin units in a total volume of 0.02ml (0.01ml in each nostril) every second day. Both LPS and Helper phages were produced in the same bacteria (E.coli DH12S).
- Fig. 31 A A threshold of 10% decrease in mice weight from their initial weight at the day of cells inoculation was set to establish a Kaplan-Meier plot (Fig. 31 A).
- Treatment of mice with either LPS or phages improved survival rate by approximately 30%.
- Both LPS or phages administration inhibited mice weight loss compared to PBS control with a clear advantage of LPS treatment over phages administration (Figs. 3 IB).
- results in inhibition of tumor growth as indicated by reduction in fluorescence readings in ex-vivo lungs imaging by the Maestro instrument Figs. 31C and 3 ID
- Reduction in tumor growth was also supported by in vivo CT imaging (Fig. 3 IE). Results are expressed as mean values ⁇ SEM (*P ⁇ 0.05).
- phage also use an extracellular transport via the trigeminal nerve which connects to the pons and the cribriform plate and therefore facilitates transport to both anterior and posterior regions of the brain following IN administration (Chapman et al., 2012).
- phage might use other pathways to reach the CNS such as an intracellular pathway through the olfactory and the trigeminal nerves or transport via the blood circulation.
- the present inventors also found that approximately 20% of the IN administered phages are inhaled and are found in the lungs. The present inventors then show that peritumoral administration of phages inhibited subcutaneous tumor development of Lewis lung carcinoma (LLC) cells which prompted evaluation of phage efficacy in inhibiting LLC tumors in the lungs. This also demonstrates that phage anti-tumor activity is not restricted to GBM tumors and that that phage mechanism can be utilized to effectively inhibit other solid tumors growth. The present inventors also show that IN administration of phages can significantly inhibit orthotopic lung tumor progression and this activity was also accompanied by increase in mice survival rate.
- LLC Lewis lung carcinoma
- the present inventor further found that IN administration of soluble LPS without phage increased mice survival rate and inhibited mice weight loss in that experiment. This further supports the observation that LPS promotes phage anti-tumor activity.
- both anti- and pro- tumorigenic activities of LPS are described in the scientific literature (Melkamu et al., 2013; Chicoine et al., 2007; Moriya et al., 1984; and Dabrowska et al., 2004). This is in line with a recent report showing that IN administration of LPS increases lung tumor progression (Melkamu et al., 2013).
- LPS contradictive activity in tumorigenesis is not fully understood; however, it should be taken into consideration that different LPS serotypes can exert different activities when they are introduced to mammalian cells (Bryant et al., 2010).
- the present inventors demonstrate that soluble LPS or phage LPS complexes that origin from E.coli DH12S bacteria have anti-tumorigenic activities (LPS structure varies between bacteria).
- the present inventors found that most of the IN administered phage accumulate in the stomach (56%). These phage survived the extreme conditions of the stomach and remained intact as their infectivity was not impaired. Furthermore, the laboratory of the present inventors had previously shown that phage can be isolated from mice gut and stool samples (Goren et al, 2007) indicating that phage pass through the upper and lower digestive tracts following IN administration. This implies that IN or oral administration of phage might be utilized in inhibiting gastrointestinal (GI) cancers that are the most deadly and most common cancers worldwide following lung cancer (Ferlay et al., 2010; and who.int/mediacentre/ factsheets/).
- GI gastrointestinal
- Phages and LPS can promote angiogenesis in some settings
- HUVEC were incubated with TRITON purified helper phage, AAP 1 or wild type phage (E+12) for 30 min. Cells were then seeded on fibronectin coated 96 wells, and left to adhere for 45 minutes. Wells were washed, fixed with Paraformaldehyde (PFA) 4% and stained with crystal violet. Cells treated with AAPl, wild type filamentous phage or helper filamentous phage exhibited enhanced adhesion to fibronectin compared with untreated cells (Figs. 32A- 32F). Results are expressed as mean values ⁇ SEM (* ⁇ 0.05 as compared to untreated cells).
- PEG purified Helper phage or AAPl (2E+12) were administered to the chick chorioallantoic membrane (CAM) on day 7 of embryo development (E7) through a shell window. The window was sealed and eggs were incubated for 48 hours at 37°C. Images of the CAM were taken and blood vessels were counted. Figures 33A-33D show that the number of blood vessels was significantly elevated in phage treated CAM compared with PBS control (/? ⁇ 0.05) and that helper phage and AAP1 promote blood vessels formation in vivo.
- Ang2 activity is also context dependent as it can either promote vessel sprouting or lead to vessel regression depending on its concentration and the presence of other growth factors such as VEGF and Angl (Huang et al., 2010; Kim et al., 2000; Cao et al., 2007; Lobov et al., 2002; Hashizume et al., 2010; and Yuan et al., 2009).
- Ang2 The activity of Ang2 is in particular interesting because it competes with Angl over the same binding site in Tie2 and while both ligands have the same affinity (Maisonpierre et al., 1997; Barton et al., 2006; and Fiedler et al., 2003) Ang2 generally does not induce receptor phosphorylation and therefore antagonizes Angl activity (Maisonpierre et al, 1997; and Reiss et al, 2007). The nature of this activity was suggested to emanate from the extent of the ligand oligomerization as COMP-Ang2, a higher-order oligomerized form of Ang2 can induce Tie2 phosphorylation and imparts agonistic activity (Kim et al., 2009).
- LPS monomers with their size varied according to their oligosaccharide chain can also associate to form supramolecular structures in aqueous solutions with a molecular weight range of lOkDa to more than lOOOkDa (Anspach, 2001; Gorbet et al, 2005; and Darkow et al, 1999). Whether some of these structures are recognized by Tie2 and can therefore modulate its activation needs further investigation. However, this hypothesis can further explain LPS and phage context dependent activity.
- phage can introduce LPS to the CNS following IN administration better than IN administration of LPS alone. Provided the right conditions, this might lead to angiogenesis and can be proven beneficial in the treatment of pathologies where angiogenesis is impaired or required such as ischemia (Ferraral et al, 2005) or neurodegenerative diseases (Wang et al., 2011) that have a distinct and different profile than tumorigenesis.
- Phage with a wild type-like phenotype can affect endothelial cells
- EC activity and angiogenesis in vitro and in vivo and inhibit tumor progression. Inhibition of EC activity is not due to cell toxicity and might be attributed to phage ability to interfere with the Tie2/Ang system which has a crucial role in angiogenesis.
- the effect of phage on Tie2, EC activity, angiogenesis and tumor growth is at least partially mediated by LPS, which the present inventors show that is attached to the filamentous phage and inhibits EC activity. The present inventors then demonstrate that both LPS and phage inhibit subcutaneous allografts to the same extent following peritumoral administration.
- Intranasal (IN) administration of phage was shown to result in their bio-distribution in the brain and lungs and phage was shown to significantly inhibit orthotopic brain and lungs tumor growth and increase mice survival rate following IN administration.
- soluble LPS also exhibited anti-tumorigenic activity following IN administration.
- the results show that phage has an advantage over soluble LPS in inhibiting brain tumors progression following IN administration plausibly due to better penetration properties to the CNS.
- the present inventors demonstrate that phage pass throughout the GI and accumulate in mice gut including the stomach and were also found in mice feces which points to a potential use of phage in treating GI cancers.
- the present inventors also demonstrate that phage can have pro-angiogenic activities in some settings and that can be utilized in treating pathologies such as ischemia where angiogenesis can improve the course of the disease.
- filamentous phages are not neutral to the mammalian host, and can interfere with endothelial cells activity and angiogenesis. This can be utilized to treat angiogenesis-related pathologies.
- phage are useful in treating brain pathologies due to their unique ability to penetrate the CNS.
- LPS is not merely angiogenic but can also exert anti-angiogenic activities and inhibit tumor progression following IN administration.
- angiogenesis modulators such as filamentous phages and LPS might be useful in a large variety of applications.
- Nikolov DB Crystal structures of the Tie2 receptor ectodomain and the angiopoietin-2- Tie2 complex. Nat Struct Mo I Biol. 2006 Jun;13(6):524-32.
- Angiopoietin-2 functions as an autocrine protective factor in stressed endothelial cells. Proc Natl Acad Sci USA. 2006 October 17; 103(42): 15491-15496.
- Angiopoietin-1 and angiopoietin-2 share the same binding domains in the Tie-2 receptor involving the first Ig-like loop and the epidermal growth factor-like repeats. J Biol Chem. 2003 Jan 17;278(3)
- Tie2 is tied at the cell-cell contacts and to extracellular matrix by
- Angiopoietin-2 displays VEGF-dependent modulation of
- Palmieri D Chambers AF, Felding-Habermann B, Huang S, Steeg PS. The biology of metastasis to a sanctuary site. Clin Cancer Res. 2007 Mar 15; 13(6): 1656-62.
- VEGF- induced angiogenesis ameliorates the memory impairment in APP transgenic mouse model of Alzheimer's disease. Biochem Biophys Res Commun. 2011 Aug 5;411(3):620-6.
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