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:Targeting T-cell exhaustion and tumour immune evasion: a review of emerging strategies.
Targeting T-cell exhaustion and tumour immune evasion: a review of emerging strategies.
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过继性 T 细胞疗法和免疫检查点阻断已在部分恶性肿瘤中实现持久缓解,然而大多数患者仍未获得持久获益。
过继性T细胞疗法和免疫检查点阻断已在部分恶性肿瘤中产生持久缓解,但大多数患者仍未能获得持久获益。这一失败背后有两个汇聚性障碍:T细胞耗竭和肿瘤免疫逃逸。T细胞耗竭源于肿瘤微环境(TME)中的慢性抗原刺激,涵盖从可逆的、干细胞样祖细胞耗竭细胞到功能恢复有限的终末期耗竭细胞的等级层次,这一转变由TOX和NR4A家族等转录因子在表观遗传学上强制推动。与此同时,肿瘤通过沉默抗原呈递通路(包括MHC I类分子)来逃避免疫识别。本综述讨论一种针对这两个障碍的互补治疗策略:通过敲除耗竭相关转录因子来工程化改造T细胞,使其在TME中具有更强的持久性,并利用DNA甲基转移酶抑制剂(DNMTi)和组蛋白去乙酰化酶抑制剂(HDACi)重编程肿瘤细胞以恢复免疫原性。我们还探讨了新出现的证据,即TME的代谢和神经免疫特征,包括神经至肿瘤的线粒体转移,可能在某些肿瘤背景下促进免疫抵抗。重要的是,我们强调大多数支持性证据来自CAR-T 和小鼠系统,仍需在TCR工程化T细胞(TCR-T)平台中进行直接验证。我们进一步概述了一个个性化、生物标志物指导的框架,该框架整合T细胞特征、肿瘤的表观遗传学景观和肿瘤神经支配密度,以将联合治疗与个体患者相匹配。将抗耗竭 T 细胞与经过重编程、免疫可见的肿瘤相结合,可能有助于应对免疫抵抗机制并改善治疗结局。
Adoptive T-cell therapies and immune checkpoint blockade have produced durable remissions in selected malignancies, yet most patients still fail to achieve lasting benefit. Two convergent obstacles underlie much of this failure: T-cell exhaustion and tumour immune evasion. T-cell exhaustion arises from chronic antigen stimulation in the tumour microenvironment (TME) and spans a hierarchy from reversible, stem-like progenitor-exhausted cells to terminally exhausted cells with limited functional recovery, which is a transition epigenetically enforced by transcription factors such as TOX and the NR4A family. In parallel, tumours evade recognition by silencing antigen-presentation pathways, including MHC class I. This review discusses a complementary therapeutic strategy that addresses both obstacles: engineering T cells for greater durability in the TME through knockout of exhaustion-associated transcription factors, and reprogramming tumour cells with DNA methyltransferase (DNMTi) and histone deacetylase (HDACi) inhibitors to restore immunogenicity. We also consider emerging evidence that metabolic and neuro-immune features of the TME, including nerve-to-tumour mitochondrial transfer, may contribute to immune resistance in some tumour contexts. Importantly, we emphasise that most supporting evidence derives from CAR-T and murine systems, and that direct validation in TCR-engineered T-cell (TCR-T) platforms is still required. We further outline a personalised, biomarker-guided framework that integrates T-cell signatures, the epigenetic landscape of the tumour, and tumour innervation density to match combination therapy to the individual patient. Integrating exhaustion-resistant T cells with a reprogrammed, immunologically visible tumour may help address mechanisms of immune resistance and improve therapeutic outcomes.
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