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:Cellular and molecular networks governing precursor exhausted CD8+ T cells in chronic liver disease: Implications for immunotherapy.
多种病因引起的慢性肝病以及原发性肝癌构成了全球主要的健康负担,且治愈性治疗选择有限。
多种病因的慢性肝病以及原发性肝癌构成了重大的全球健康负担,治疗选择有限。CD8+ T细胞耗竭是这些病理状态下有效免疫控制的核心障碍。然而,前体耗竭CD8+ T细胞(Tpex)作为一种具有自我更新和增殖潜能的干细胞样亚群,保留了产生效应样后代并维持长期免疫监视的能力。在本综述中,我们首先对Tpex进行定义,以将其与慢性肝病和肝癌中其他相关的CD8+ T细胞状态区分开来,包括终末耗竭、效应样耗竭、组织驻留记忆和常规记忆T细胞。随后,我们总结了关于Tpex在良性和恶性肝病中的基础生物学、病因动力学和治疗相关性的当前认识。具体而言,我们审视了调控Tpex命运的转录、代谢和微环境网络,特别强调不同病因——包括病毒性肝炎、代谢功能障碍相关脂肪性肝病和自身免疫性肝炎——如何差异化地塑造Tpex的丰度和功能状态。在慢性病毒性肝炎中,Tpex动态受到病毒持续存在、代谢背景和合并感染的关键影响,进而对免疫检查点阻断的应答性具有直接意义。在肝细胞癌和肝内胆管癌中,Tpex特征不仅与临床结局相关,还受到肿瘤遗传景观和免疫微环境组成的调控。最后,我们重点介绍了新兴的针对Tpex的治疗策略,包括共刺激激动剂、代谢重编程、疫苗、CAR-T细胞工程和肠道微生物群调节,作为克服免疫治疗耐药的有前景的途径。
Chronic liver diseases of diverse etiologies, along with primary liver cancers, represent major global health burdens with limited curative options. CD8 + T-cell exhaustion is a central barrier to effective immune control in these pathological settings. However, precursor exhausted CD8 + T cells (Tpex), a stem-like subset with self-renewal and proliferative potential, retain the ability to generate effector-like progeny and sustain long-term immune surveillance. In this review, we first provide a definition of Tpex to distinguish them from other related CD8 + T-cell states, including terminally exhausted, effector-like exhausted, tissue-resident memory, and conventional memory T cells, in chronic liver diseases and liver cancer. We then summarize current knowledge on the fundamental biology, etiological dynamics, and therapeutic relevance of Tpex in both benign and malignant liver diseases. Specifically, we examine the transcriptional, metabolic, and microenvironmental networks that govern Tpex fate, with particular emphasis on how distinct etiologies, including viral hepatitis, metabolic dysfunction-associated steatotic liver disease, and autoimmune hepatitis, differentially shape Tpex abundance and functional state. In chronic viral hepatitis, Tpex dynamics are critically influenced by viral persistence, metabolic context, and co-infections, which in turn have direct implications for the responsiveness to immune checkpoint blockade. In hepatocellular carcinoma and intrahepatic cholangiocarcinoma, Tpex signatures are not only correlated with clinical outcomes but also modulated by tumor genetic landscapes and the composition of the immune microenvironment. Finally, we highlight emerging Tpex-targeted therapeutic strategies, including co-stimulatory agonists, metabolic reprogramming, vaccines, CAR-T cell engineering, and gut microbiota modulation, as promising avenues to overcome immunotherapy resistance.
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