Catalog #CP246

RecombiMAb anti-mouse IL-4Rα (CD124) (LALA-PG)

Clone REGN1103-CP246
Reactivities Mouse
Applications in vivo blockade of mouse IL-4Rα*
in vitro blockade of mouse IL-4Rα*
Western blot
*These applications are reported for the original REGN1103 (mouse IgG1, κ isotype) antibody.
Isotype Mouse IgG2a (LALA-PG), κ
(switched from Mouse IgG1, κ)

$560.00 - $14,859.50

$560.00 - $14.00

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  • 100 mg - $14,859.50
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  • 5 mg - $2,170.50
  • 1 mg - $560.00
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Product Description

The REGN1103-CP246 antibody is a recombinant mouse IgG2a isotype variant of the anti-mouse interleukin-4 receptor alpha subunit (IL-4Rα) clone REGN1103. The REGN1103 antibody is an established mouse surrogate antibody of a human IL-4Rα-specific dupilumab antibody. The REGN1103-CP246 antibody reacts with murine IL-4Rα, a type I transmembrane cytokine receptor that is also called CD124, Il4ra, and IL-4-binding protein (IL4-BP). In mice, IL-4Rα is expressed broadly on hematopoietic cells, including T and B lymphocytes, NK cells, basophils, mast cells, and monocytes/macrophages, and on non-hematopoietic tissues such as endothelial cells, adipocytes, hepatocytes, and certain neurons. IL-4Rα serves as the essential signaling subunit for both type I (IL-4Rα/γc) and type II (IL-4Rα/IL-13Rα1) receptor complexes. IL-4Rα binds IL-4 with high affinity to promote Th2 differentiation. IL-4Rα also responds to IL-13 to regulate the production of IgE, chemokine, and mucus at sites of allergic inflammation. Ligand engagement triggers JAK1/3 (type I) or JAK1/2–TYK2 (type II) activation, leading to STAT6 phosphorylation and transcriptional programs that drive Th2 differentiation, IgE class switching in B cells, alternative (M2) macrophage activation, and tissue remodeling. Neutralizing antibodies against mouse IL-4Rα are a powerful tool to dissect IL-4/IL-13 biology, facilitating mechanistic experiments, biomarker validation, and combination-therapy screening in preclinical in vivo models of tumor immunity, allergy, fibrosis, and infection.

Specifications

Isotype Mouse IgG2a (LALA-PG), κ
Recommended Isotype Control(s) RecombiMAb mouse IgG2a (LALA-PG) isotype control, unknown specificity
Recommended Dilution Buffer InVivoPure pH 7.0 Dilution Buffer
Mutations LALA-PG
Immunogen Mouse Interleukin-4 receptor subunit alpha (IL-4Rα)
Reported Applications in vivo blockade of mouse IL-4Rα*
in vitro blockade of mouse IL-4Rα*
Western blot
*These applications are reported for the original REGN1103 (mouse IgG1, κ isotype) antibody.
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 mammalian cell supernatant in an animal-free facility
Purification Protein G
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.
Need a Custom Formulation? See All Antibody Customization Options

Application References

  • in vivo blockade of mouse IL-4Rα*
    Wechsler ME, Souza-Machado A, Xu C, Mao X, Kapoor U, Khokhar FA, O'Malley JT, Petro CD, Casullo VM, Mannent LP, Rowe PJ, Jacob-Nara JA, Ruddy M, Laws E, Purcell LA, Hardin M (2021). "Preclinical and clinical experience with dupilumab on the correlate

    Background: The safety and tolerability of live attenuated vaccines in patients administered dupilumab for moderate-to-severe asthma have not been previously evaluated. During the LIBERTY ASTHMA TRAVERSE open-label extension study (ClinicalTrials.gov identifier NCT02134028), a yellow fever outbreak in Brazil required administration of a live attenuated vaccine to at-risk individuals. Objective: Our aim was to evaluate immune response to a live attenuated vaccine in the context of IL-4 receptor blockade (REGN1103, a dupilumab surrogate) in mice and in dupilumab-treated patients with moderate-to-severe asthma who participated in TRAVERSE. Methods: In the preclinical study, mice were coadministered REGN1103/isotype control and live attenuated influenza vaccine/control, followed by influenza virus challenge. During TRAVERSE, 37 patients discontinued dupilumab treatment and were administered 17D live attenuated yellow fever vaccine (YFV). Safety and tolerability data, dupilumab serum concentrations, and plaque reduction neutralization titers before and after vaccination were collected. Results: In the preclinical study, there was no impact of REGN1103 on vaccine efficacy in mice. In TRAVERSE, all 37 patients who received YFV achieved seroprotection despite most having therapeutic levels of dupilumab, with the magnitude of response appearing unrelated to prevaccination dupilumab concentrations. No instances of vaccine-related adverse events or vaccine hypersensitivity were reported in 36 patients; 1 patient reported nonserious body ache, malaise, and dizziness 7 days after vaccination but recovered fully. Conclusion: The preclinical model suggested that dupilumab does not affect the efficacy of live attenuated influenza vaccine. The live attenuated YFV did not raise safety concerns and appeared to be well tolerated in patients with asthma who recently discontinued dupilumab treatment, and dupilumab concentrations had no apparent impact on immunologic response to the vaccine.

  • in vitro blockade of mouse IL-4Rα* in vivo blockade of mouse IL-4Rα*
    Limnander A, Kaur N, Asrat S, Tasker C, Boyapati A, Ben LH, Janczy J, Pedraza P, Abreu P, Chen WC, Godin S, Daniel BJ, Chin H, DeVeaux M, Rodriguez Lorenc K, Sirulnik A, Harari O, Stahl N, Sleeman MA, Murphy AJ, Yancopoulos GD, Orengo JM (2023). "A t

    Immunoglobulin E (IgE) is a key driver of type 1 hypersensitivity reactions and allergic disorders, which are globally increasing in number and severity. Although eliminating pathogenic IgE may be a powerful way to treat allergy, no therapeutic strategy reported to date can fully ablate IgE production. Interleukin-4 receptor α (IL-4Rα) signaling is required for IgE class switching, and IL-4Rα blockade gradually reduces, but does not eliminate, IgE. The persistence of IgE after IL-4Rα blockade may be due to long-lived IgE+ plasma cells that maintain serological memory to allergens and thus may be susceptible to plasma cell-targeted therapeutics. We demonstrate that transient administration of a B cell maturation antigen x CD3 (BCMAxCD3) bispecific antibody markedly depletes IgE, as well as other immunoglobulins, by ablating long-lived plasma cells, although IgE and other immunoglobulins rapidly rebound after treatment. Concomitant IL-4Rα blockade specifically and durably prevents the reemergence of IgE by blocking IgE class switching while allowing the restoration of other immunoglobulins. Moreover, this combination treatment prevented anaphylaxis in mice. Together with additional cynomolgus monkey and human data, our studies demonstrate that allergic memory is primarily maintained by both non-IgE+ memory B cells that require class switching and long-lived IgE+ plasma cells. Our combination approach to durably eliminate pathogenic IgE has potential to benefit allergy in humans while preserving antibody-mediated immunity.

  • in vivo blockade of mouse IL-4Rα*
    Cleary MM, Bharathy N, Abraham J, Kim JA, Rudzinski ER, Michalek JE, Keller C (2021). "Interleukin-4 Receptor Inhibition Targeting Metastasis Independent of Macrophages" Mol Cancer Ther 20(5):906-914.

    Rhabdomyosarcoma (RMS) is the most common soft tissue sarcoma occurring in children and carries a dismal prognosis when metastatic disease is detected. Our previous work has suggested the cytokine receptor IL4Rα may play a role in contributing to metastasis in the alveolar subtype of rhabdomyosarcoma (aRMS), and thus could present a therapeutic target. The IL4 signaling axis has been characterized in various adult cancers as well; however, pediatric trials often follow similar adult trials and the role of the IL4Rα receptor has not been explored in the context of a mediator of metastasis in adult disease. Here, we demonstrate that the impact of IL4Rα blockade in an orthotopic allograft model of aRMS is not mediated by a macrophage response. We further examine the effect of IL4 blockade in adult colon, breast, and prostate cancers and find that inhibition of IL4Rα signaling modulates in vitro cell viability of HCT-116 colon carcinoma cells; however, this finding did not translate to an autocrine-related in vivo difference in tumor burden or lung metastasis. Our results suggest that if humanized IL4 mouse host strains are not available (or not ideal due to the need for immunosuppressing the host innate immune response for xenograft systems), then genetically-engineered mice and mouse allograft studies may be the best indicator of therapeutic targeting efficacy.

  • in vivo blockade of mouse IL-4Rα*
    Han H, Cummings S, Shade KC, Johnson J, Qian G, Gans J, Shankara S, Escobedo J, Zarazinski E, Bodinizzo R, Bangari D, Bryce P, Hicks A (2023). "Cellular mechanisms and effects of IL-4 receptor blockade in experimental conjunctivitis evoked by skin in

    Ocular surface diseases, including conjunctivitis, are recognized as common comorbidities in atopic dermatitis (AD) and occur at an increased frequency in patients with AD treated with biologics targeting IL-4 receptor α (IL-4Rα) or IL-13. However, the inflammatory mechanisms underlying this pathology are unknown. Here, we developed a potentially novel mouse model of skin inflammation-evoked conjunctivitis and showed that it is dependent on CD4+ T cells and basophils. Blockade of IL-4Rα partially attenuated conjunctivitis development, downregulated basophil activation, and led to a reduction in expression of genes related to type 2 cytokine responses. Together, these data suggest that an IL-4Rα/basophil axis plays a role in the development of murine allergic conjunctivitis. Interestingly, we found a significant augmentation of a number of genes that encode tear proteins and enzymes in anti-IL-4Rα-treated mice, and it may underlie the partial efficacy in this model and may represent candidate mediators of the increased frequency of conjunctivitis following dupilumab in patients with AD.

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