Reprogramming glutamine metabolism enhances BCMA -CAR T-cell fitness and therapeutic efficacy in multiple myeloma

谷氨酰胺 细胞毒性T细胞 重编程 谷氨酰胺酶 生物 癌症研究 免疫疗法 T细胞 癌细胞 抗原 谷氨酰胺分解 免疫系统 细胞生物学 癌症免疫疗法 化学 嵌合抗原受体 分子生物学 新陈代谢 干扰素 免疫学
作者
Flor Navarro,Teresa Lozano,Andrea Fuentes-García,Inés Sánchez-Moreno,Marta Larráyoz,Pedro Justicia-Lirio,Beatriz Perucha,Maialen Martinez-Tabar,Rebeca Martínez-Turrillas,Noëlia Casares,Celia Martín-Otal,Marta Gorraiz,Erin W. Meermeier,Marta Chesi,Douglas F. Lake,P. Leif Bergsagel,Eva Santamaría,María Eréndira Calleja-Cervantes,Patxi San Martín‐Úriz,Lorea Jordana-Urriza
出处
期刊:Blood [Elsevier BV]
卷期号:146 (24): 2931-2944 被引量:19
标识
DOI:10.1182/blood.2024027496
摘要

ABSTRACT: Glutamine dependence of cancer cells reduces local glutamine availability, which hinders antitumor T-cell functionality and facilitates immune evasion. We thus speculated that glutamine deprivation might be limiting efficacy of chimeric antigen receptor (CAR) T-cell therapies in patients with cancer. We have seen that antigen-specific T cells are unable to proliferate or produce interferon gamma (IFN-γ) in response to antigen stimulation when glutamine concentration is limited. Using multiple myeloma (MM) as a glutamine-dependent disease model, we found that murine CAR T cells selectively targeting B-cell maturation antigen (Bcma) in MM cells were sensitive to glutamine deprivation. However, CAR T cells engineered to increase glutamine uptake by expression of the glutamine transporter Asct2 exhibited enhanced proliferation and responsiveness to antigen stimulation, increased production of IFN-γ, and heightened cytotoxic activity, even under conditions of low glutamine concentration. Mechanistically, Asct2 overexpression reprogrammed the metabolic fitness of CAR T cells by upregulating the mechanistic target of rapamycin complex 1 gene signature, modifying the solute carrier transporter repertoire, and improving both basal oxygen consumption rate and glycolytic function, thereby enhancing CAR T-cell persistence in vivo. Accordingly, expression of Asct2 increased the efficacy of Bcma-CAR T cells in syngeneic and genetically engineered mouse models of MM, which prolonged mouse survival. In patients, higher-level expression of ASCT2 by MM cells predicted poor outcome to combined immunotherapy and BCMA-CAR T-cell therapy. Our results indicate that reprogramming glutamine metabolism may enhance antitumor CAR T-cell functionality in MM. This approach may also be effective for other cancers that depend on glutamine as a key energy source and metabolic hallmark.
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