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:DUSP6 ablation restores CAR T-cell fitness impaired by tumor CD58 loss through invigoration of AP-1 signaling.
DUSP6 ablation restores CAR T-cell fitness impaired by tumor CD58 loss through invigoration of AP-1 signaling.
CAR-T细胞疗法的原发性耐药限制了其广泛应用。
CAR T细胞疗法的原发性耐药限制了其广泛应用。我们此前的全基因组CRISPR/Cas9筛选揭示,肿瘤中关键的内在耐药因子CD58的缺失会导致免疫突触形成不足以及CAR T细胞活化和细胞毒性受损。然而,与CAR T细胞功能障碍相关的具体信号通路和转录变化尚未得到阐明。在此,我们揭示,在因肿瘤CD58缺失而受损的CAR T细胞中,AP-1介导的活化减弱,驱动了线粒体生物发生减少、代谢动力学受损、线粒体膜电位丧失和ROS积累。此外,这种AP-1减弱通过内在线粒体途径触发了死亡受体非依赖性凋亡。在寻求治疗策略时,我们通过药理学和遗传学手段阻断了位于AP-1信号上游的三种不同的抑制性磷酸酶。多方面验证表明,双特异性磷酸酶6(DUSP6)阻断是补充AP-1信号的有效方法,同时显著减少CAR T细胞凋亡并增强线粒体适应性、增殖和长期细胞毒性。DUSP6敲除的CAR T细胞的转录组谱显示T细胞活化特征显著上调以及代谢通路富集。在临床上,bulk和单细胞RNA-seq分析揭示,DUSP6在对T细胞免疫治疗有应答的患者中下调,暗示其与患者预后相关。我们的发现重新定位了CD58,它不仅是免疫突触的组成部分,也是CAR T细胞生物学中的代谢检查点,其缺失会触发AP-1依赖的线粒体紊乱,并 intrinsic apoptosis 创造允许性环境,而通过敲除抑制性磷酸酶DUSP6可以改善这一情况。至关重要的是,DUSP6敲除代表了一个有前景的工程靶点,可在更广泛的应用中增强CAR T细胞疗效。
Primary resistance to chimeric antigen receptor (CAR) T-cell therapies has limited their widespread application. Our prior genome-wide CRISPR/Cas9 screening revealed that the loss of CD58, a crucial intrinsic resistance factor in tumors, resulted in insufficient immune synapse formation and impaired CAR T-cell activation and cytotoxicity. However, the specific signaling pathway and transcriptional changes associated with CAR T-cell dysfunction have not been addressed. Here, we revealed that AP-1-mediated activation was attenuated in CAR T cells impaired by tumor CD58 loss, driving a decrease in mitochondrial biogenesis, metabolic kinetic impairment, mitochondrial membrane potential loss and ROS accumulation. Moreover, this AP-1 attenuation triggered death receptor-independent apoptosis through the intrinsic mitochondrial pathway. In seeking therapeutic strategies, we pharmacologically and genetically blocked three distinct inhibitory phosphatases positioned upstream of AP-1 signaling. Multifaceted validation has demonstrated that dual specificity phosphatase 6 (DUSP6) blockade is an effective approach to supplement AP-1 signaling while notably reducing CAR T-apoptosis and enhancing mitochondrial fitness, proliferation and long-term cytotoxicity. The transcriptomic profiles of DUSP6-ablated CAR T cells revealed markedly upregulated T-cell activation signatures and enriched metabolic pathways. Clinically, bulk and single-cell RNA-seq analyses revealed that DUSP6 was downregulated in patients who responded to T-cell-based immunotherapy, implying its relevance to patient outcomes. Our findings repositioned CD58 not merely as an immune synapse component but also a metabolic checkpoint in CAR T-cell biology, the loss of which triggers AP-1-dependent mitochondrial derangement and creates a permissive landscape for intrinsic apoptosis, which can be ameliorated by ablation of the inhibitory phosphatase DUSP6. Crucially, DUSP6 ablation represents a promising engineering target to potentiate CAR T-cell efficacy in broader applications.
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