B-hCD3E mice

C57BL/6-Cd3etm2(CD3E)Bcgen/Bcgen • 110008

B-hCD3E mice

Catalog Number: 110008
Strain Name: C57BL/6-Cd3etm2(CD3E)Bcgen/Bcgen
Strain Background: C57BL/6
NCBI gene ID: 916 (Human)
Aliases: T3E; TCRE; IMD18; CD3epsilon
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B-hCD3E mice

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  • Description
  • Targeting strategy
  • Phenotypic analysis
  • Efficacy

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      Description

      CD3: An Important Therapeutic Target in Immunotherapy

      • Gene Information: CD3 is a protein complex that forms part of the T-cell receptor (TCR) signaling machinery. It consists of four chains encoded by CD3D, CD3E, CD3G, and CD247. Together with the TCR, CD3 transmits antigen recognition signals from the cell surface to the cell interior and is essential for T-cell development and activation.
      • Protein Expression: CD3 is expressed on nearly all mature T cells, including CD4⁺ T cells, CD8⁺ T cells, and γδ T cells. It is generally absent from B cells, NK cells, and myeloid cells.
      • Signaling Pathway: CD3 mediates TCR signaling through intracellular ITAM motifs. After antigen recognition, CD3 recruits signaling molecules such as ZAP-70, leading to activation of the NFAT, NF-κB, and MAPK/AP-1 pathways.
      • Therapeutic Inhibition: CD3 is an important therapeutic target for modulating T-cell activity. Anti-CD3 antibodies, such as Teplizumab, can suppress or regulate T-cell responses and are used in autoimmune diseases. CD3 is also widely used in bispecific T-cell engagers, which redirect T cells to kill tumor cells, as seen with Blinatumomab.
      Targeting strategy

      Targeting strategy of CD3E humanized mice.
      In CD3E humanized mice, the exons 2–6 of the mouse Cd3e gene, which encode the extracellular domain, were replaced with human CD3E exons 2–7. This precise knock-in design enables strain-specific expression of human CD3E, supporting preclinical evaluation of CD3-targeted immunotherapies.

      CD3E Protein Expression in Spleen
      • Human CD3E was detected on T cells populations in B-hCD3E mice, but not in wild-type C57BL/6 mice.
      • Mouse CD3E was detected on T cells populations in wild-type C57BL/6 mice, but not in B-hCD3E mice.

      Mouse and human CD3E expression analysis in splenocytes. Splenocytes were collected from wild-type C57BL/6 mice (+/+) and homozygous B-hCD3E mice (H/H), and analyzed by flow cytometry with species-specific anti-mouse CD3ε antibody (Biolegend, 100326, clone 145-2C11) and anti-human CD3ε antibody (Biolegend 300428,  clone UCHT1).

      In Vitro T Cell Activation
      • T cell activation in B-hCD3E mice was significantly up-regulated by anti-hCD3ε antibody, similar to the activation level shown in C57BL/6 mice treated with anti-mCD3ε antibody.

      In vitro T cells activation. T cells (2.5×106) were isolated from splenocytes of C57BL/6 and B-hCD3E mice (n=4), and were incubated in the presence of anti-mouse CD3ε antibody (BioXCell, BE0001-1, clone 145-2C11, 2μg/ml), anti-human CD3ε antibody (BioXCell, BE0001-2, clone OKT3, 2μg/ml) and anti-mCD28 antibody (BioXCell, BE0015-1, clone 37.51, 5μg/ml) for 48h. T cell activation was tested by flow cytometry.

      • Concentration of IFN-γ and IL-2 in B-hCD3E mice was similar to that of C57BL/6 mice, indicating that Cd3e humanization in B-hCD3E mice does not change the cytokine secretion after T cell activation.

      In vitro T cells activation. T cells (2.5×106) were isolated from the splenocytes of C57BL/6 and B-hCD3E mice (n=4), incubated in the presence of anti-mouse CD3ε antibody (BioXCell, BE0001-1, clone 145-2C11, 2ug/ml), anti-human CD3ε antibody (BioXCell, BE0001-2, clone OKT3, 2ug/ml) and anti-mCD28 antibody (BioXCell, BE0015-1, clone 37.51, 5ug/ml) for 24h, 48h and 72h. IFN-γ and IL-2 productions were then tested using ELISA method. Values are expressed as mean ± SEM. ND: not detectable.

      In Vivo T Cell Activation
      • T cell activation in B-hCD3E mice was significantly up-regulated by anti-hCD3ε antibody.
      • Introduction of hCD3E in place of its mouse counterpart does not affect T cell activation in spleen.

      In vivo T cells activation. C57BL/6 and B-hCD3E mice were injected intraperitoneally with anti-CD3E antibody (10ug/mouse). After 24h, T cells were isolated from splenocytes of C57BL/6 and B-hCD3E mice (n=4). T cell proliferation was measured by flow cytometry.

      In Vitro T Cell Cytotoxicity
      • The anti-CD3/PD-L1 bispecific antibody mediated dose-dependent cytotoxicity against B-hPD-L1 MC38 cells in the presence of effector cells.
      • Increased tumor cell killing was observed with higher effector-to-target (E:T) ratios.

      In vitro cytotoxicity evaluation of an anti-CD3/PD-L1 bispecific antibody against human PD-L1–expressing MC38 Cells. B-hCD3E mouse spleen cells were mixed with MC38-hPD-L1 and various concentrations of CD3-PD-L1 bispecific antibodies provided by the client were added. The killing activity was detected after 48 hours. When effector cells : target  cells (E:T) =10:1, the EC50 of CD3-PD-L1 bispecific antibodies activity was 452.4 ng/mL; When E:T=20:1, the EC50 of CD3-PD-L1 bispecific antibodies activity was 144.2 ng/mL.

      Serum Titers of OVA-specific Antibodies
      • The levels of antibodies titers of B-hCD3E mice before immunization were similar to those in C57BL/6 mice, and the specific antibody titers in the serum of each mouse were significantly increased after the third immunizations.
      • Introduction of hCD3EDG instead of its mouse counterpart did not affect the humoral immune response of mice.

      Serum Titers of OVA-Specific Antibodies.​​ B-hCD3E mice (n=5, 6-week-old) were immunized three times with OVA, 2 weeks apart. Blood samples were collected a week after immunization. (A) Quantification of serum IgG subtypes of mice before immunization. (B) Serum titer test of mice after the second and third immunizations. Values are expressed as mean ± SEM.

      Analysis of Leukocyte Subpopulations
      • Percent of T, B, NK, Monocyte, DC and macrophage cells in homozygous B-hCD3E mice were similar to those in the C57BL/6 mice.
      • Introduction of hCD3E in place of its mouse counterpart does not change the overall development, differentiation or distribution of these cell types in spleen.

      Analysis of leukocyte subpopulations by flow cytometry in immune organs. Splenocytes were isolated from female C57BL/6 and B-hCD3E mice (n=3, 6-week-old). Flow cytometry analysis of the splenocytes was performed to assess leukocyte subpopulations. A. Representative FACS plots. Single live cells were gated for CD45+ population and used for further analysis as indicated here. B. Results of FACS analysis.

      Analysis of T Cell Subpopulations
      • The percent of CD8+ T cells, CD4+ T cells, and Treg cells in homozygous B-hCD3E mice were similar to those in the C57BL/6 mice.
      • Introduction of hCD3E in place of its mouse counterpart does not change the overall development, differentiation or distribution of these T cell subtypes in spleen.

      Analysis of T-cell subpopulations by flow cytometry in immune organs. Splenocytes were isolated from female C57BL/6 and B-hCD3E mice (n=3, 6-week-old). Flow cytometry analysis of the splenocytes was performed to assess leukocyte subpopulations. A. Representative FACS plots. Single live CD45+ cells were gated for TCRβ+ T cell population and used for further analysis as indicated here. B. Results of FACS analysis. Values are expressed as mean ± SEM.

      Analysis of Leukocyte Subpopulations
      • The cellular composition of the mouse thymus consists predominantly of T cells and their developmental stages, with only minor contributions from other lineages.

      Analysis of leukocyte subpopulations by flow cytometry in immune organs. Thymocytes were isolated from female C57BL/6 and B-hCD3E mice (n=3, 6-week-old). Flow cytometry analysis of the thymocytes was performed to assess leukocyte subpopulations. Representative FACS plots. Single live cells were gated for CD45+ population and used for further analysis as indicated here.

      Analysis of T Cell Subpopulations
      • The percent of CD8+ T cells, CD4+ T cells, and Treg cells in homozygous B-hCD3E mice were similar to those in the C57BL/6 mice.
      • Introduction of hCD3E in place of its mouse counterpart does not change the overall development, differentiation or distribution of these T cell subtypes in thymus.

      Analysis of T-cell subpopulations by flow cytometry in immune organs. Thymocytes were isolated from female C57BL/6 and B-hCD3E mice (n=3, 6-week-old). Flow cytometry analysis of the thymocytes was performed to assess leukocyte subpopulations. A. Representative FACS plots. Single live CD45+ cells were gated for TCRβ+ cell population and used for further analysis as indicated here. B. Results of FACS analysis. Values are expressed as mean ± SEM.

      Analysis of T and B Cell Subpopulations
      • The percent of T, B cells in homozygous B-hCD3E mice were similar to those in the C57BL/6 mice.
      • Introduction of hCD3E in place of its mouse counterpart does not change the overall development, differentiation or distribution of these cell types in spleen, peripheral blood and lymph node.

      Analysis of T-cell and B-cell subpopulations by flow cytometry in immune organs and blood. Lymphocytes were isolated from spleen, peripheral blood and lymph node of C57BL/6 and B-hCD3E mice (n=4). Flow cytometry analysis was performed to assess lymphocytes subpopulations. Single live cells were gated for CD45 population and used for further analysis as indicated here.

      Organ Weight and Total Cell Number of Thymus and Spleen

      (A, B) Thymus and spleen were isolated and weighed from C57BL/6 and B-hCD3E mice (n=6). The thymus weight in B-hCD3E mice is significantly lower than that of C57BL/6 mice. (C) The number of splenocytes in C57BL/6 and B-hCD3E mice was similar. (D) The number of thymocytes in B-hCD3E mice was significantly lower than that in C57BL/6. (E) The thymus of B-hCD3E mice (female, 8-week-old, n=3) showed no significant abnormal changes, with clear boundaries between the cortex and medulla and normal cell morphology.

      Hematology Analysis
      • No significant differences were observed compared with wild-type mice.

      Complete blood count (CBC) of B-hCD3E mice. Values are expressed as mean ± SEM.

      Blood Biochemical Analysis
      • No significant differences were observed compared with wild-type mice.

      Blood biochemical parameters of B-hCD3E mice are shown. Values are expressed as mean ± SEM.

      Efficacy Evaluation of anti-CD3ε Antibody and anti-PD-1 Antibody in the Treatment of the Subcutaneous MC38 Model in B-hCD3E mice

      Efficacy of anti-CD3ε antibody and anti-PD-1 antibody in B-hCD3E mice. Murine colon cancer MC38 cells were subcutaneously implanted into C57BL/6 mice (A) and B-hCD3E mice (B). Mice were grouped when the tumor size was approximately 150±50mm3 (n=5). In B-hCD3E mice, mPD-1 antibody (Purchase from BioXCell) significantly inhibited tumor growth, indicating their T cells function normally. However, in B-hCD3E mice, tumor growth was faster after anti-hCD3E antibody (Teplizumab, in house) treatment, which may be caused by activation induced cell death (AICD). As a result, the B-hCD3E mouse model is a powerful tool for in vivo CD3 antibody pharmacological efficacy studies.

      Efficacy Evaluation of anti-CD3ε Antibody and anti-PD-1 Antibody in the Treatment of the Subcutaneous MC38 Model in B-hCD3E mice

      T cells and B cells analysis. Lymphocytes were isolated from peripheral blood at 48 hours after treatment. In the anti-hCD3 antibody (Teplizumab, in house) treatment group, the proportion of T cells was significantly decreased due to the activation induced cell death (AICD) effect caused by CD3E antibody treatment. However, the proportion of T cells has no significant change in the anti-mPD-1 antibody group (Purchase from BioXCell). (A) Compared with hlgG Ab , there is no significant difference in the percentage of CD19+ cells in total CD45+ cells after hCD3 Ab or mCD3 Ab treatment. (B) Compared with hlgG Ab, the percentage of TCR-β positive cells was significantly decreased after treatment with hCD3 Ab in the humanized mice.

      Efficacy Evaluation of anti-hCD3ε Antibody in the Treatment of the Subcutaneous MC38 Model in B-hCD3E mice

      Efficacy of anti-hCD3ε antibody in B-hCD3E mice. Murine colon cancer MC38 cells were subcutaneously implanted into B-hCD3E mice. Mice were divided into control and treatment groups(n=5) when tumor size was approximately 150±50 mm3. High doses of hCD3E antibodies provided by the client resulted in faster tumor growth due to activation induced cell death (AICD), confirming that the B-hCD3E mouse model is a powerful tool for in vivo anti-hCD3 antibody pharmacological efficacy study. (A) Tumor average volume ±SEM, (B) Mice average weight ± SEM.

      T cells and B cells analysis. The ratio of B and T cells in the blood was detected by flow cytometry. Lymphocytes were isolated from peripheral blood at the end of the experiment. In the treatment group, the proportion of T cells was significantly reduced due to the activation induced cell death (AICD) effect caused by CD3E antibody treatment. Dose-dependent T cell depletion caused by hCD3 Ab treatment.

      Efficacy Evaluation of an Antibody(X) in the Treatment of the Subcutaneous MC38 Model in B-hCD3E mice

      Efficacy of an Antibody(X) in B-hCD3E mice. (A) High-dose Antibody X inhibited MC38 tumor growth in B-hCD3E mice(n=5). Murine colon cancer MC38 cells were subcutaneously implanted into homozygous B-hCD3E mice. Mice were grouped when tumor volume reached approximately 100 mm3, at which time they were treated with Antibody X provided by the client with doses and schedules indicated in panel; (B) Body weight changes during treatment. As shown in panel A, high-dose Antibody X were efficacious in controlling tumor growth in B-hCD3E mice, demonstrating that the B-hCD3E mice provide a powerful preclinical model for in vivo evaluation of Antibody X . Values are expressed as mean ±SEM.

      Efficacy Evaluation of Blinatumomab in the Treatment of the Subcutaneous B-hCD19 MC38 Model in B-hCD3E mice

      Efficacy of Blinatumomab in B-hCD3E mice. MC38-hCD19 cells were implanted subcutaneously into B-hCD3E mice. The mice were divided into control and treatment groups (n=6) when the tumor size was about 150±50 mm3. High-dose hCD3E antibody (Blinatumomab, commercially available) significantly inhibited tumor growth, confirming that the B-hCD3E mouse model is a powerful tool for evaluating the efficacy of bispecific antibody against hCD3E in vivo.(A) Tumor average volume ± SEM, (B) Mice average weight ±SEM.

      Efficacy Evaluation of anti-hCD3/hEPCAM BsAbs in the Treatment of the Subcutaneous B-hEPCAM MC38 Model in B-hCD3E mice

      Efficacy of anti-hCD3/hEPCAM BsAbs in B-hCD3E mice. MC38-hEpCAM cells were implanted subcutaneously into B-hCD3E mice. The mice were divided into control and treatment groups when the tumor size was about 100±20 mm3. The results show that the anti-hCD3E/hEpCAM bispecific antibody provided by the client has a moderate degree of antitumor activity compared to the control group. The data also show that anti-mouse CD4 (a CD4-depleting antibody) enhances the antitumor activity of the bispecific anti-hCD3E/hEpCAM antibody. 

      Efficacy Evaluation of an Antibody(X) in the Treatment of the Subcutaneous B-hDLL3 MC38 Model in B-hCD3E mice

      Efficacy of an Antibody(X) in B-hCD3E mice. B-hDLL3 MC38 cells were subcutaneously implanted into B-hCD3E mice (female, 8-week-old, n=6). Mice were grouped when the tumor size was approximately 100 mm3, at which time they were treated with BsAb X provided by the client with doses and schedules indicated in panel. (A) Tumor volume changes during treatment. (B) Body weight changes during treatment. As shown in panel A, BsAb X was efficacious in controlling tumor growth in B-hCD3E mice, demonstrating that the B-hCD3E mouse model is a powerful tool for in vivo efficacy study of T cell bispecific antibody. Values are expressed as mean ± SEM.

      AICD analysis after antibody treatment in B-hCD3E mice

      The ratio of T cells in spleen and blood were analyzed at 24h、72 and 168h by flow cytometry.

      * When publishing results obtained using this animal model, please acknowledge the source as follows: The animal model [B-hCD3E mice] (Cat# 110008) was purchased from Biocytogen.