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 谷氨酰胺酶 生物 癌症研究 免疫疗法 T细胞 癌细胞 抗原 免疫系统 细胞生物学 免疫学 癌症 生物化学 体外 氨基酸 遗传学
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:5
标识
DOI:10.1182/blood.2024027496
摘要

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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