Immunometabolic Adaptation of CD19-Targeted CAR T Cells in the Central Nervous System Microenvironment of Patients Promotes Memory Development

Author:

Goldberg Lior12ORCID,Haas Eric R.13ORCID,Urak Ryan1ORCID,Vyas Vibhuti1ORCID,Pathak Khyatiben V.45ORCID,Garcia-Mansfield Krystine45ORCID,Pirrotte Patrick45ORCID,Singhal Jyotsana6ORCID,Figarola James L.6ORCID,Aldoss Ibrahim1ORCID,Forman Stephen J.1ORCID,Wang Xiuli1ORCID

Affiliation:

1. 1Department of Hematology and Hematopoietic Cell Transplantation, T-cell Therapeutics Research Laboratories, Beckman Research Institute, City of Hope National Medical Center, Duarte, California.

2. 2Department of Pediatrics, City of Hope National Medical Center, Duarte, California.

3. 3Ionic Cytometry Solutions, Cambridge, Massachusetts.

4. 4Integrated Mass Spectrometry Shared Resource, City of Hope Comprehensive Cancer Center, Duarte, California.

5. 5Cancer and Cell Biology Division, Translational Genomics Research Institute, Phoenix, Arizona.

6. 6Division of Diabetes and Metabolic Diseases Research, Beckman Research Institute, City of Hope National Medical Center, Duarte, California.

Abstract

Abstract Metabolic reprogramming is a hallmark of T-cell activation, and metabolic fitness is fundamental for T-cell–mediated antitumor immunity. Insights into the metabolic plasticity of chimeric antigen receptor (CAR) T cells in patients could help identify approaches to improve their efficacy in treating cancer. Here, we investigated the spatiotemporal immunometabolic adaptation of CD19-targeted CAR T cells using clinical samples from CAR T-cell–treated patients. Context-dependent immunometabolic adaptation of CAR T cells demonstrated the link between their metabolism, activation, differentiation, function, and local microenvironment. Specifically, compared with the peripheral blood, low lipid availability, high IL15, and low TGFβ in the central nervous system microenvironment promoted immunometabolic adaptation of CAR T cells, including upregulation of a lipolytic signature and memory properties. Pharmacologic inhibition of lipolysis in cerebrospinal fluid led to decreased CAR T-cell survival. Furthermore, manufacturing CAR T cells in cerebrospinal fluid enhanced their metabolic fitness and antileukemic activity. Overall, this study elucidates spatiotemporal immunometabolic rewiring of CAR T cells in patients and demonstrates that these adaptations can be exploited to maximize the therapeutic efficacy of CAR T cells. Significance: The spatiotemporal immunometabolic landscape of CD19-targeted CAR T cells from patients reveals metabolic adaptations in specific microenvironments that can be exploited to maximize the therapeutic efficacy of CAR T cells.

Funder

National Institutes of Health

Publisher

American Association for Cancer Research (AACR)

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