C57BL/6N-Cd38tm3(CD38)Bcgen/Bcgen • 110046
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CD38: A multifunctional ectoenzyme regulating calcium signaling and immunity.
CD38 is a 42-kDa glycoprotein, also known as T10. It is an ADP-ribosyl hydrolase expressed on B cells, NK cells, and a subset of T cells, as well as in the brain, muscle, and kidney. In mice, CD38 expression is downregulated on germinal center B cells and plasma cells, whereas this downregulation is not observed in humans. By functioning as both a cyclase and a hydrolase, CD38 mediates lymphocyte activation, adhesion, and the metabolism of cADPR and NAADP. CD31 also serves as a known ligand for CD38.
NAD⁺ is broken down into byproducts that circulate in the bone marrow plasma within the myeloma niche, accumulating various amounts of ADO. Most ADO is taken up by purinergic cell receptors (ADORs) expressed by bone cells or immune cells within the niche. The outcome is either suppression of the anti-tumor activity of immune cells (Teff, NK cells, TAMs) or an increase in regulatory T cells (Tregs), mesenchymal-derived stromal cells (MDSCs), or dendritic cells (DCs), all of which suppress immune activity against tumors.
Increased expression of CD38 is an unfavorable diagnostic marker in chronic lymphocytic leukemia and is associated with enhanced disease progression. CD38 is also the therapeutic target of daratumumab (Darzalex), which is approved for the treatment of multiple myeloma.
Key Advantages
Validation
Application
Species specific analysis of CD38 gene expression in wild-type C57BL/6 mice and homozygous humanized B-hCD38 mice by RT-PCR. Spleen RNA was isolated from wild-type C57BL/6 mice (+/+) and homozygous B-hCD38 mice (H/H), and then cDNA libraries were synthesized by reverse transcription, followed by PCR with mouse Cd38 primers and human CD38 primers.
Species specific analysis of CD38 gene expression in wild-type C57BL/6 mice and homozygous humanized B-hCD38 mice by RT-qPCR. Splenocytes were collected from wild-type C57BL/6 mice and homozygous B-hCD38 mice (female, 10-week-old, n = 3). Values are expressed as mean ± SEM. Significance is determined by unpaired t-test. *P < 0.05, **P < 0.01, ***P < 0.001.
Strain specific CD38 expression analysis in wild-type C57BL/6 mice and homozygous humanized B-hCD38 mice by flow cytometry. Spleen and blood were collected from wild-type C57BL/6 mice and homozygous B-hCD38 mice. Protein expression was analyzed with anti-mouse CD38 antibody (Biolegend, 102732) and anti-human CD38 antibody (Biolegend, 356606) by flow cytometry.
Anti-human CD38 antibody binding assay in B-hCD38 mice. Splenocytes were collected from wild-type C57BL/6 mice and homozygous B-hCD38 mice and analyzed by flow cytometry with anti-hCD38 antibody Daratumumab analog (in-house) and anti-human CD38 antibody (Biolegend, 356606).
Anti-human CD38 antibody binding assay B-hCD38 mice. Spleen and blood were collected from homozygous B-hCD38 mice and analyzed by flow cytometry with anti-hCD38 antibody Daratumumab analog (provided by the client) and Isatuximab analog (provided by the client).
Anti-tumor activity of anti-human CD38 antibody in B-hCD38 mice. (A) Anti-human CD38 antibody Daratumumab analog (in house) and Isatuximab analog (in house) inhibit B-hCD38-luc E.G7-OVA tumor growth in B-hCD38 mice. (B) Body weight changes during treatment. Values are expressed as mean ± SEM.
In vivo luciferase images of B-hCD38-Luc E.G7-OVA cells. Murine T-cell lymphoma B-hCD38-luc E.G7-OVA cells were injected by tail vein into homozygous B-hCD38 mice (female, 6 week-old, n=6). Mice were grouped when total flux reached approximately 106 Ig, at which time they were treated with anti-human CD38 antibodies. Imaging was performed on day 0, Day3, day 7 and Day 10.
The binding of anti-CD38 antibody Daratumumab analog (in-house) to mouse B cells of B-hCD38 mice, mouse T-cell lymphoma B-hCD38-Luc E.G7-OVA, and human multiple myeloma cells MM.1S. was assessed by FACS.
Using B cells from the spleens of B-hCD38 mice, mouse T-cell lymphoma B-hCD38-Luc E.G7-OVA cells, or human multiple myeloma MM.1S cells as target cells, FcR-TANK cells were added at 5:1 ratio. Following the addition of varying concentrations of anti-hCD8 antibody and incubation at 37°C for 4 hours, specific lysis was assessed via flow cytometry. Panel A shows the results for three mice. Panel B shows the results for mouse T-cell lymphoma B-hCD38-Luc E.G7-OVA cells and human multiple myeloma MM.1S cells.
Analysis of leukocyte subpopulations by flow cytometry in immune organs and blood. Splenocytes, peripheral blood, and lymph nodes were isolated from C57BL/6JNifdc mice and homozygous B-hCD38 mice (female, 8-week-old, n = 4). Single live cells were gated on the CD45⁺ population and analyzed by flow cytometry as indicated. Values are expressed as mean ± SEM.
Analysis of T-cell subpopulations by flow cytometry in immune organs and blood. Splenocytes, peripheral blood, and lymph nodes were isolated from C57BL/6JNifdc mice and homozygous B-hCD38 mice (female, 8-week-old, n = 4). Single live cells were gated on the TCRβ⁺ T-cell population and analyzed by flow cytometry as indicated. Values are expressed as mean ± SEM.
Q: What should be noted when using B-hCD38 mice (#110046)?
A: In B-hCD38 mice (#110046), the extracellular domain of CD38 is only partially humanized rather than fully humanized. Therefore, it is necessary to verify the binding of anti-human CD38 antibodies to B-hCD38 mice (#110046) before starting in vivo experiments.
Q: What is the difference between B-hCD38 mice (#110046) and B-hCD38 mice ad (#113475)?
A: The targeting strategy for B-hCD38 mice (#110046) is humanization of a portion of the CD38 extracellular domain. B-hCD38 mice (#113475) were humanized with the full-length CD38 genome sequence, resulting in the expression of the full-length human CD38 protein.