Catalog #CP202

RecombiMAb anti-mouse/human VEGF-A

Clone B20-4.1.1-CP202
Reactivities Mouse
Applications in vivo VEGF-A neutralization
in vitro VEGF-A neutralization
ELISA
Isotype Mouse IgG2a, κ

$560.00 - $14,859.50

$560.00 - $14.00

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  • 100 mg - $14,859.50
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Product Description

The B20-4.1.1 monoclonal antibody (also known as B20.4.1.1) reacts with both mouse and human vascular endothelial growth factor A (VEGF-A). This antibody binds to all isoforms of VEGF-A, and it does not show any detectable cross-reactivity against VEGF-B, VEGF-C, VEGF-D, and placental growth factor. VEGF-A is a ~45 kDa homodimeric, disulfide-linked glycoprotein that plays a central role in endothelial cell proliferation, migration, angiogenesis, vasculogenesis, and vascular permeability. Solid tumors often depend on angiogenesis for growth and neovascularization, and inhibition of VEGF-A with neutralizing antibodies represents a key therapeutic strategy in cancer biology. In preclinical research, B20-4.1.1 is a well-characterized anti-VEGF-A antibody that potently neutralizes both murine and human VEGF-A. B20-4.1.1 is a derivative of the parental anti-VEGF clone B20-4, and it has been optimized for recombinant production in mammalian expression systems and for improved performance. This clone effectively blocks the interaction of all isoforms of VEGF-A with its receptors, VEGFR1 (Flt-1) and VEGFR2 (Flk-1/KDR). Bevacizumab biosimilar antibodies, on the other hand, do not reliably neutralize murine VEGF-A to block VEGFR signaling, limiting their utility in mouse models. B20-4.1.1 antibody has demonstrated robust in vivo efficacy across a range of preclinical models, evidenced by inhibition of tumor growth and reduction of vascular density, and it is a valuable tool for combinatorial immunotherapeutics, especially with immune checkpoint inhibitors.

Specifications

Isotype Mouse IgG2a, κ
Recommended Isotype Control(s) RecombiMAb mouse IgG2a isotype control, unknown specificity
Recommended Dilution Buffer InVivoPure pH 7.0 Dilution Buffer
Immunogen Human VEGF
Reported Applications in vivo VEGF-A neutralization
in vitro VEGF-A neutralization
ELISA
Formulation PBS, pH 7.0
Contains no stabilizers or preservatives
Endotoxin ≤0.5EU/mg (≤0.0005EU/μg)
Determined by LAL assay
Aggregation <5%
Determined by SEC
Purity ≥95%
Determined by SDS-PAGE
Sterility 0.2 µm filtration
Production Purified from CHO cell supernatant in an animal-free facility
Purification Protein A
Molecular Weight 150 kDa
Murine Pathogen Tests Ectromelia/Mousepox Virus: Negative
Hantavirus: Negative
K Virus: Negative
Lactate Dehydrogenase-Elevating Virus: Negative
Lymphocytic Choriomeningitis virus: Negative
Mouse Adenovirus: Negative
Mouse Cytomegalovirus: Negative
Mouse Hepatitis Virus: Negative
Mouse Minute Virus: Negative
Mouse Norovirus: Negative
Mouse Parvovirus: Negative
Mouse Rotavirus: Negative
Mycoplasma Pulmonis: Negative
Pneumonia Virus of Mice: Negative
Polyoma Virus: Negative
Reovirus Screen: Negative
Sendai Virus: Negative
Theiler’s Murine Encephalomyelitis: Negative
Storage The antibody solution should be stored at the stock concentration at 4°C. Do not freeze.
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Application References

  • in vivo VEGF-A neutralization in vitro VEGF-A neutralization ELISA
    Liang WC, Wu X, Peale FV, Lee CV, Meng YG, Gutierrez J, Fu L, Malik AK, Gerber HP, Ferrara N, Fuh G (2006). "Cross-species vascular endothelial growth factor (VEGF)-blocking antibodies completely inhibit the growth of human tumor xenografts and measu

    To fully assess the role of VEGF-A in tumor angiogenesis, antibodies that can block all sources of vascular endothelial growth factor (VEGF) are desired. Selectively targeting tumor-derived VEGF overlooks the contribution of host stromal VEGF. Other strategies, such as targeting VEGF receptors directly or using receptor decoys, result in inhibiting not only VEGF-A but also VEGF homologues (e.g. placental growth factor, VEGF-B, and VEGF-C), which may play a role in angiogenesis. Here we report the identification of novel anti-VEGF antibodies, B20 and G6, from synthetic antibody phage libraries, which block both human and murine VEGF action in vitro. Their affinity-improved variants completely inhibit three human tumor xenografts in mice of skeletal muscle, colorectal, and pancreatic origins (A673, HM-7, and HPAC). Avastin, which only inhibits the tumor-derived human VEGF, is approximately 90% effective at inhibiting HM-7 and A673 growth but is <50% effective at inhibiting HPAC growth. Indeed, HPAC tumors contain more host stroma invasion and stroma-derived VEGF than other tumors. Thus, the functional contribution of stromal VEGF varies greatly among tumors, and systemic blockade of both tumor and stroma-derived VEGF is sufficient for inhibiting the growth of tumor xenografts.

  • in vivo VEGF-A neutralization
    Yuan X, Wilhelmus KR (2009). "Corneal neovascularization during experimental fungal keratitis" Mol Vis .

    Purpose: To investigate the development of corneal neovascularization, the corneal expression of vascular endothelial growth factor (VEGF), and the antiangiogenic effects of a VEGF-inhibitory antibody during experimental keratomycosis. Methods: Scarified corneas of BALB/c mice were topically inoculated with Candidaalbicans and monitored daily for corneal neovascularization. A murine gene microarray compared infected corneas to controls 1 day after inoculation. Real-time reverse transcriptase polymerase chain reaction (RT-PCR) determined levels of genes encoding VEGF-A, VEGF-B, VEGF-C, and VEGF-D and placental growth factor in infected, mock-inoculated, and normal corneas. Immunostaining localized VEGF-A in corneal sections. An anti-VEGF-A antibody that binds to murine VEGF was evaluated for effects on corneal neovascularization and fungal recovery. Results: Eyes with C. albicans keratitis manifested limbal capillary budding on the second postinoculation day, and intrastromal neovascular tufts subsequently grew at a mean rate of 250+/-80 microm/day. One day after the onset of C. albicans keratitis, VEGF-A was upregulated 12.5 fold (p=0.01) by microarray and 8.8 fold (p=0.004) by real-time RT-PCR, followed by a measured decline toward baseline over one week. VEGF-A was present in the epithelium and stroma of infected corneas. Scarification alone did not alter VEGF expression compared to the normal cornea. Anti-VEGF-A antibody significantly (p<0.01) decreased the formation of new corneal blood vessels during experimental keratomycosis without adversely affecting the fungal load of C. albicans keratitis. Conclusions: Untreated C. albicans keratitis induces VEGF-A and leads to progressive corneal neovascularization that is preventable by a VEGF-blocking antibody.

  • in vivo VEGF-A neutralization in vitro VEGF-A neutralization
    MacMillan CJ, Doucette CD, Warford J, Furlong SJ, Hoskin DW, Easton AS (2014). "Murine experimental autoimmune encephalomyelitis is diminished by treatment with the angiogenesis inhibitors B20-4.1.1 and angiostatin (K1-3)" PLoS One 9(2):e89770.

    Angiogenesis is the formation of new blood vessels form pre-existing vasculature whose contribution to inflammatory conditions of the Central Nervous System is being studied in order to generate novel therapeutic targets. This study is the first to investigate the impact of two particular angiogenesis inhibitors on murine Experimental Autoimmune Encephalomyelitis (EAE), an inflammatory disease that mimics aspects of the human disease Multiple Sclerosis. The inhibitors were chosen to reduce angiogenesis by complimentary means. Extrinsic factors were targeted with B20-4.1.1 through its ability to bind to murine Vascular Endothelial Growth Factor (VEGF). Vascular processes connected to angiogenesis were targeted directly with K(1-3), the first three kringle domains of angiostatin. Mice treated with B20-4.1.1 and K(1-3) from onset of signs had reduced clinical scores 18-21 days after EAE induction. Both agents suppressed spinal cord angiogenesis without effect on local VEGF expression. B20-4.1.1 reduced spinal cord vascular permeability while K(1-3) had no effect. T cell infiltration into the spinal cord at day 21 was unaffected by either treatment. B20-4.1.1 reduced peripheral T cell proliferation while K(1-3) had no effect. Lymphoid cells from treated mice produced reduced levels of the T helper-17 (Th-17) cell cytokine interleukin (IL)-17 with no effect on the Th-1 cytokine interferon (IFN)-γ or Th-2 cytokine IL-4. However, when both drugs were added in vitro to naive T cells or to antigen stimulated T cells from mice with untreated EAE they had no effect on proliferation or levels of IL-17 or IFN-γ. We conclude that these angiogenesis inhibitors mitigate EAE by both suppressing spinal cord angiogenesis and reducing peripheral T cell activation.

  • ELISA
    Fuh G, Wu P, Liang WC, Ultsch M, Lee CV, Moffat B, Wiesmann C (2006). "Structure-function studies of two synthetic anti-vascular endothelial growth factor Fabs and comparison with the Avastin Fab" J Biol Chem 281(10):6625-31.

    In the quest to discover new research tools and to develop better agents in the fight against cancer, two antibodies, G6 and B20-4, were isolated from synthetic antibody phage libraries. Unlike the AVASTINtrade mark antibody, a recently approved agent for the treatment of patients with colorectal cancer, B20-4 and G6 bind and block both human and murine vascular endothelial growth factor (VEGF). Here we have analyzed and compared the binding epitopes on VEGF for these three antibodies using alanine-scanning mutagenesis and structural analyses. The epitopes recognized by both synthetic antibodies are conserved between human and mouse VEGF, and they match closely to the receptor epitopes both structurally and functionally. In contrast, the Avastin epitope overlaps minimally with the receptor binding surface and centers around a residue that is not conserved in mouse. Our structural and functional analyses elucidate the cross-species reactivity of all three antibodies and emphasize the potential advantages of antibody generation using phage display as the resulting antibodies do not depend on sequence differences across species and preferentially target natural protein-protein interaction surfaces.

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