决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:FECH, a novel metabolic target influencing CAR T-cell phenotype and function.
这些数据揭示了LIN的双重作用机制,结合了对肿瘤细胞的直接细胞毒性与与血红素生物合成相关的CAR T细胞代谢重编程。
近期I/II期临床试验表明,靶向双唾液酸神经节苷脂GD2的嵌合抗原受体(CAR)T细胞是复发或难治性高危神经母细胞瘤(NB)儿科患者的一种有前景的治疗选择。然而,不完全且异质性的临床反应凸显了提高CAR T细胞疗效和持久性的必要性。我们此前在弥漫性内生性桥脑胶质瘤中证明了双重胰岛素样生长因子1受体/胰岛素受体(IGF1R/IR)抑制剂linsitinib(LIN)与第三代GD2.CAR T细胞联合使用的治疗获益,其中LIN诱导肿瘤细胞死亡并调节CAR T细胞表型。在此,我们将这些发现扩展至NB,并探索LIN介导的CAR T细胞调节机制。LIN与CAR T细胞联合使用显著增强了LIN敏感性NB细胞系的抗肿瘤活性。在机制上,我们研究了亚铁螯合酶(FECH),这是一种参与血红素生物合成的线粒体酶,也是LIN的已知脱靶。LIN处理或用N-甲基原卟啉IX选择性抑制FECH可减少细胞内血红素,减弱激活和耗竭标志物的表达,并促进与体内CAR T细胞持久性和功能性改善相关的中央记忆特征。两种处理同样通过减少慢性抗原激活的CAR T细胞中的糖酵解和线粒体呼吸来降低ATP产生。总体而言,这些数据揭示了LIN的双重作用机制,即将直接的肿瘤细胞毒性与与血红素生物合成相关的CAR T细胞代谢重编程相结合。这些发现表明血红素代谢是CAR T细胞表型和功能的调节因子,并支持进一步研究FECH以提高NB及其他疾病的治疗效果。
Recent phase I/II clinical trials have demonstrated that chimeric antigen receptor (CAR) T cells targeting the disialogangliosade GD2 represent a promising therapeutic option for pediatric patients with relapsed or refractory high-risk neuroblastoma (NB). However, incomplete and heterogeneous clinical responses highlight the need to improve CAR T-cell efficacy and persistence. We previously demonstrated the therapeutic benefit of combining the dual insulin-like growth factor 1 receptor/insulin receptor (IGF1R/IR) inhibitor linsitinib (LIN) with third-generation GD2.CAR T cells in diffuse intrinsic pontine glioma, where LIN induced tumor cell death and modulated the CAR T-cell phenotype. Here, we extended these findings to NB and explored the mechanisms of LIN-mediated CAR T-cell modulation. LIN, in combination with CAR T cells, significantly enhanced antitumor activity in LIN-sensitive NB cell lines. Mechanistically, we investigated ferrochelatase (FECH), a mitochondrial enzyme involved in heme biosynthesis, and a known off-target of LIN. LIN treatment or selective FECH inhibition with N-methyl protoporphyrin IX reduced intracellular heme, attenuated activation and exhaustion marker expression and promoted central memory characteristics associated with improved in vivo CAR T-cell persistence and functionality. Both treatments similarly decreased ATP production by reducing glycolysis and mitochondrial respiration in chronical antigen-activated CAR T cells. Collectively, these data reveal a dual mechanism of action for LIN, combining direct tumor cell cytotoxicity with metabolic reprogramming of CAR T cells linked to heme biosynthesis. These findings identify heme metabolism as regulator of CAR T-cell phenotype and function and support further investigation of FECH to enhance therapeutic efficacy in NB and beyond.
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