Immunogenetic Metabolomics Reveals Key Enzymes That Modulate CAR T-cell Metabolism and Function

Author:

Renauer Paul12345ORCID,Park Jonathan J.12356ORCID,Bai Meizhu123ORCID,Acosta Arianny1237ORCID,Lee Won-Ho1237ORCID,Lin Guang Han1237ORCID,Zhang Yueqi123ORCID,Dai Xiaoyun123ORCID,Wang Guangchuan123ORCID,Errami Youssef123ORCID,Wu Terence8ORCID,Clark Paul123ORCID,Ye Lupeng123ORCID,Yang Quanjun123ORCID,Chen Sidi123456910111213141516ORCID

Affiliation:

1. 1Department of Genetics, Yale University School of Medicine, New Haven, Connecticut.

2. 2System Biology Institute, Yale University, West Haven, Connecticut.

3. 3Center for Cancer Systems Biology, Yale University, West Haven, Connecticut.

4. 4Combined Program in the Biological and Biomedical Sciences, Yale University, New Haven, Connecticut.

5. 5Molecular Cell Biology, Genetics, and Development Program, Yale University, New Haven, Connecticut.

6. 6M.D.-Ph.D. Program, Yale University, West Haven, Connecticut.

7. 7Yale College, Yale University, New Haven, Connecticut.

8. 8West Campus Analytical Core, Mass Spectrometry/Proteomics Facility, West Haven, Connecticut.

9. 9Immunobiology Program, Yale University, New Haven, Connecticut.

10. 10Comprehensive Cancer Center, Yale University School of Medicine, New Haven, Connecticut.

11. 11Department of Neurosurgery, Yale University School of Medicine, New Haven, Connecticut.

12. 12Stem Cell Center, Yale University School of Medicine, New Haven, Connecticut.

13. 13Liver Center, Yale University School of Medicine, New Haven, Connecticut.

14. 14Center for Biomedical Data Science, Yale University School of Medicine, New Haven, Connecticut.

15. 15Center for RNA Science and Medicine, Yale University School of Medicine, New Haven, Connecticut.

16. 16Wu-Tsai Center, Yale University, New Haven, Connecticut.

Abstract

Abstract Immune evasion is a critical step of cancer progression that remains a major obstacle for current T cell–based immunotherapies. Hence, we investigated whether it is possible to genetically reprogram T cells to exploit a common tumor-intrinsic evasion mechanism whereby cancer cells suppress T-cell function by generating a metabolically unfavorable tumor microenvironment (TME). In an in silico screen, we identified ADA and PDK1 as metabolic regulators. We then showed that overexpression (OE) of these genes enhanced the cytolysis of CD19-specific chimeric antigen receptor (CAR) T cells against cognate leukemia cells, and conversely, ADA or PDK1 deficiency dampened this effect. ADA-OE in CAR T cells improved cancer cytolysis under high concentrations of adenosine, the ADA substrate, and an immunosuppressive metabolite in the TME. High-throughput transcriptomics and metabolomics analysis of these CAR T cells revealed alterations of global gene expression and metabolic signatures in both ADA- and PDK1-engineered CAR T cells. Functional and immunologic analyses demonstrated that ADA-OE increased proliferation and decreased exhaustion in CD19-specific and HER2-specific CAR T cells. ADA-OE improved tumor infiltration and clearance by HER2-specific CAR T cells in an in vivo colorectal cancer model. Collectively, these data unveil systematic knowledge of metabolic reprogramming directly in CAR T cells and reveal potential targets for improving CAR T-cell therapy.

Funder

National Institutes of Health

DoD

AACR

Publisher

American Association for Cancer Research (AACR)

Subject

Cancer Research,Immunology

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