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Preclinical Analysis of Candidate Anti-Human CD79 Therapeutic Antibodies Using a Humanized CD79 Mouse Model
Scott M Wemlinger1, Chelsea R Parker Harp2, Bo Yu3
1Department of Immunology and Microbiology, University of Colorado Denver, Anschutz Medical Campus, Aurora, CO.
Insights
Researchers developed knockin mice with human CD79 domains to test therapies targeting B cell receptor (BCR) signaling. These mice enable preclinical evaluation of anti-CD79 antibodies, showing potential for treating autoimmune diseases and B cell cancers.
Area of Science:
- Immunology
- Molecular Biology
- Therapeutic Development
Background:
- The B cell receptor (BCR) complex, including CD79A and CD79B, is crucial for B cell function and a target for autoimmune and cancer therapies.
- Preclinical studies are hindered by the lack of cross-reactivity between human-specific therapeutic antibodies and mouse CD79.
Purpose of the Study:
- To generate and characterize knockin mice expressing human CD79 extracellular domains for preclinical testing of anti-human CD79 therapies.
- To evaluate the efficacy of anti-human CD79 antibodies in mouse models of autoimmunity.
Main Methods:
- Generation of knockin mice with human CD79A and CD79B extracellular Ig-like domains.
- Characterization of chimeric CD79 expression and function.
- Assessment of anti-human CD79 antibody effects on B cells (phenotype, signaling) and in autoimmune models.
Main Results:
- Human and mouse CD79 extracellular domains are functionally interchangeable.
- Anti-human CD79 antibodies (lacking Fc effector function) reduce surface IgM/IgD, uncouple BCR signaling, and increase PTEN expression, mimicking anergy.
- Therapy with anti-human CD79 prevented disease in two mouse models of autoimmunity and showed potential to inhibit antibody secretion by plasma cells.
Conclusions:
- The generated knockin mice are valuable tools for preclinical evaluation of anti-CD79 therapies.
- Anti-human CD79 antibodies demonstrate therapeutic potential for autoimmune diseases by modulating B cell function and preventing disease progression.
Abstract:
The BCR comprises a membrane-bound Ig that is noncovalently associated with a heterodimer of CD79A and CD79B. While the BCR Ig component functions to sense extracellular Ag, CD79 subunits contain cytoplasmic ITAMs that mediate intracellular propagation of BCR signals critical for B cell development, survival, and Ag-induced activation. CD79 is therefore an attractive target for Ab and chimeric Ag receptor T cell therapies for autoimmunity and B cell neoplasia. Although the mouse is an attractive model for preclinical testing, due to its well-defined immune system, an obstacle is the lack of cross-reactivity of candidate therapeutic anti-human mAbs with mouse CD79. To overcome this problem, we generated knockin mice in which the extracellular Ig-like domains of CD79A and CD79B were replaced with human equivalents. In this study, we describe the generation and characterization of mice expressing chimeric CD79 and report studies that demonstrate their utility in preclinical analysis of anti-human CD79 therapy. We demonstrate that human and mouse CD79 extracellular domains are functionally interchangeable, and that anti-human CD79 lacking Fc region effector function does not cause significant B cell depletion, but induces 1) decreased expression of plasma membrane-associated IgM and IgD, 2) uncoupling of BCR-induced tyrosine phosphorylation and calcium mobilization, and 3) increased expression of PTEN, consistent with the levels observed in anergic B cells. Finally, anti-human CD79 treatment prevents disease development in two mouse models of autoimmunity. We also present evidence that anti-human CD79 treatment may inhibit Ab secretion by terminally differentiated plasmablasts and plasma cells in vitro.
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