CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Glutamine-driven metabolic reprogramming promotes CAR-T cell function through mTOR-SREBP2 mediated HMGCS1 upregulation in ovarian cancer.
Glutamine-driven metabolic reprogramming promotes CAR-T cell function through mTOR-SREBP2 mediated HMGCS1 upregulation in ovarian cancer.
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我们的发现强调了通过 mTOR-SREBP2-HMGCS1 轴由谷氨酰胺驱动的代谢重编程,作为增强 CAR-T 细胞在卵巢癌中疗效的一种策略。
CAR-T(CAR-T)细胞疗法在癌症治疗中具有前景,但其疗效常受到肿瘤微环境中代谢限制的阻碍。本研究探讨谷氨酰胺在增强CAR-T 细胞对抗卵巢癌功能中的作用。
对接受MSLN-CAR-T 细胞治疗的卵巢癌患者血液样本进行了代谢组学分析,以识别代谢变化。在体外,对CAR-T 细胞进行谷氨酰胺预处理,并评估其增殖、CAR表达、肿瘤裂解和细胞因子产生(TNF-、IFN-)。机制研究聚焦于mTOR-SREBP2通路及其对HMGCS1表达、膜稳定性和免疫突触形成的影响。在体内,评估了谷氨酰胺预处理CAR-T 细胞的抗肿瘤效果和记忆表型。
在對MSLN-CAR-T 細胞治療有反應的卵巢癌患者血液中觀察到谷氨酰胺水平升高。谷氨酰胺預處理增強了CAR-T 細胞增殖、CAR表達、腫瘤裂解和細胞因子產生。機制上,谷氨酰胺激活mTOR-SREBP2通路,上調HMGCS1並促進膜穩定性和免疫突觸形成。在體內,谷氨酰胺預處理的CAR-T 細胞表現出優越的腫瘤浸潤、持續的抗腫瘤活性和保留的記憶亞群。
Chimeric antigen receptor T (CAR-T) cell therapy holds promise for cancer treatment, but its efficacy is often hindered by metabolic constraints in the tumor microenvironment. This study investigates the role of glutamine in enhancing CAR-T cell function against ovarian cancer.
Metabolomic profiling of blood samples from ovarian cancer patients treated with MSLN-CAR-T cells was conducted to identify metabolic changes. In vitro, glutamine pretreatment was applied to CAR-T cells, and their proliferation, CAR expression, tumor lysis, and cytokine production (TNF- , IFN- ) were assessed. Mechanistic studies focused on the mTOR-SREBP2 pathway and its effect on HMGCS1 expression, membrane stability and immune synapse formation. In vivo, the antitumor effects and memory phenotype of glutamine-pretreated CAR-T cells were evaluated.
Elevated glutamine levels were observed in the blood of ovarian cancer patients who responded to MSLN-CAR-T cell treatment. Glutamine pretreatment enhanced CAR-T cell proliferation, CAR expression, tumor lysis, and cytokine production. Mechanistically, glutamine activated the mTOR-SREBP2 pathway, upregulating HMGCS1 and promoting membrane stability and immune synapse formation. In vivo, glutamine-pretreated CAR-T cells exhibited superior tumor infiltration, sustained antitumor activity, and preserved memory subsets.
Our findings highlight glutamine-driven metabolic rewiring via the mTOR-SREBP2-HMGCS1 axis as a strategy to augment CAR-T cell efficacy in ovarian cancer. TRIAL REGISTRATION: NCT05372692.
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