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:Sustained and specific multiplexed immune checkpoint modulation in CAR T cells induced by targeted epigenome editing.
Sustained and specific multiplexed immune checkpoint modulation in CAR T cells induced by targeted epigenome editing.
装备有嵌合抗原受体(CAR)的工程化T细胞已显示出巨大的临床成功,但肿瘤介导的T细胞抑制性受体刺激会导致耗竭,阻碍患者的持久缓解。
装备了嵌合抗原受体(CAR)的工程化T细胞已显示出巨大的临床成功,但肿瘤介导的T细胞抑制性受体刺激会导致耗竭,阻碍患者的持久缓解。通过检查点抑制或基因组编辑敲除编码这些受体的基因来减轻这种效应已显示出前景。然而,这些操作的副作用需要更好的替代方案。靶向表观基因组编辑提供了一种在不改变DNA的情况下改变基因表达的有效策略。其“命中即走”机制能够实现持久、多重基因表达调控,且安全性更高。在此,我们描述了在原发性人T细胞和前列腺癌特异性CAR T细胞中,对两个关键耗竭相关基因PDCD1和LAG3进行多重表观基因组编辑失活。表观遗传修饰的CAR T细胞在一系列功能测定中与亲本细胞无法区分。尽管该模型不能完全模拟T细胞耗竭,限制了功能评估,但基因沉默在多次分裂和重复CAR刺激后仍保持持久。此外,转录组分析显示脱靶效应极小,且不直接归因于所使用的效应器。我们证明,靶向表观基因组编辑对于多重基因抑制是有效且安全的,并在工程化具有增强和可定制特征的CAR T细胞方面具有潜力。
Engineered T cells equipped with a chimeric antigen receptor (CAR) have shown tremendous clinical success, but tumor-mediated stimulation of T cell inhibitory receptors leads to exhaustion, hampering durable remission in patients. Mitigation of this effect via checkpoint inhibition or genome editing to knockout the genes encoding for these receptors has shown promise. Yet, the side effects of these procedures require better alternatives. Targeted epigenome editing offers a potent strategy to alter gene expression without DNA modifications. Its hit-and-run mechanism enables durable, multiplexed modulation of gene expression with greater safety. Here, we describe multiplexed epigenome editing inactivation of two critical-exhaustion-related genes, PDCD1 and LAG3 , both in primary human T cells and in prostate-cancer-specific CAR T cells. Epigenetically modified CAR T cells are indistinguishable from parental cells across a range of functional assays. Although the model does not fully mimic T cell exhaustion, limiting functional assessment, gene silencing remains durable across multiple divisions and repeated CAR stimulations. Furthermore, transcriptomic analysis revealed minimal off-target effects not directly attributable to the effectors used. We demonstrate that targeted epigenome editing is effective and safe for multiplexed gene inhibition and holds potential in engineering CAR T cells with enhanced and customizable features.
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