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A Syngeneic Mouse B-Cell Lymphoma Model for Pre-Clinical Evaluation of CD19 CAR T Cells
Published on: October 16, 2018
A tandem CD19/CD20 CAR lentiviral vector drives on-target and off-target antigen modulation in leukemia cell lines
Dina Schneider1, Ying Xiong1, Darong Wu1
1Lentigen Technology, Inc., 910 Clopper Rd., Gaithersburg, MD 20878 USA.
Background:
Clinical success with chimeric antigen receptor (CAR)- based immunotherapy for leukemia has been accompanied by the associated finding that antigen-escape variants of the disease are responsible for relapse. To target hematologic malignancies with a chimeric antigen receptor (CAR) that targets two antigens with a single vector, and thus potentially lessen the chance of leukemic escape mutations, a tandem-CAR approach was investigated.
Methods:
Antigen binding domains from the FMC63 (anti-CD19) and Leu16 (anti-CD20) antibodies were linked in differing configurations to transmembrane and T cell signaling domains to create tandem-CARs. Expression on the surface of primary human T cells was induced by transduction with a single lentiviral vector (LV) encoding the tandem-CAR. Tandem-CARs were compared to single antigen targeting CARs in vitro and in vivo, and to an admixture of transduced cells expressing each CAR in vivo in immunodeficient (NSG) disease-bearing mice.
Results:
Tandem constructs efficient killed the Raji leukemia cell line both in vitro and in vivo. Tandem CARs generated less cytokine than the CD20 CAR, but similar to CD19 CARs, on their own. In co-culture experiments at low effector to target ratios with both single- and tandem- CAR-T cells, a rapid down-modulation of full-length CD19 expression was seen on leukemia targets. There also was a partial down-modulation of CD22, and to a lesser degree, of CD20. Our data also highlight the extreme sensitivity of the NALM-6 cell line to general lymphocyte-mediated cytotoxicity. While single and tandem constructs were effective in vivo in a standard setting, in a high-disease burden setting, the tandem CAR proved both effective and less toxic than an admixture of transduced T cell populations expressing single CARs.
Conclusion:
Tandem CARs are equally effective in standard disease models to single antigen specificity CARs, and may be both more effective and less toxic in a higher disease burden setting. This may be due to optimized cell killing with more moderate cytokine production. The rapid co-modulation of CD19, CD20, and CD22 may account for the ability to rapidly evolve escape mutants by selecting for leukemic clones that not require these target antigens for continued expansion.
Insights
Tandem chimeric antigen receptor (CAR)-T therapy targets two antigens simultaneously, reducing leukemia relapse from antigen-escape variants. This approach is effective and potentially less toxic in high-disease burden settings.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Chimeric antigen receptor (CAR)-based immunotherapy shows clinical success in leukemia.
- Relapse in leukemia is often due to antigen-escape variants.
- A tandem-CAR approach was investigated to target multiple antigens and prevent escape mutations.
Purpose of the Study:
- To investigate a tandem-CAR approach targeting two antigens (CD19 and CD20) simultaneously.
- To evaluate the efficacy and safety of tandem-CARs compared to single-antigen CARs.
- To assess the potential of tandem-CARs to overcome antigen-escape mechanisms in hematologic malignancies.
Main Methods:
- Tandem-CARs were constructed by linking antigen-binding domains of anti-CD19 and anti-CD20 antibodies.
- Lentiviral vectors were used to express tandem-CARs on primary human T cells.
- In vitro and in vivo studies compared tandem-CARs to single-antigen CARs and a mixture of single-CARs in immunodeficient mice.
Main Results:
- Tandem-CAR constructs effectively killed leukemia cell lines (Raji) in vitro and in vivo.
- Tandem-CARs showed moderate cytokine production, comparable to CD19 CARs.
- Leukemia targets exhibited rapid down-modulation of CD19, CD20, and CD22 expression.
- In high-disease burden settings, tandem-CARs were more effective and less toxic than a mixture of single-CARs.
Conclusions:
- Tandem-CARs are effective in standard disease models and may offer improved efficacy and reduced toxicity in high-disease burden scenarios.
- Moderate cytokine production by tandem-CARs may contribute to their safety profile.
- The observed co-modulation of CD19, CD20, and CD22 suggests a mechanism to prevent the evolution of escape mutants.
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