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:CRISPR-engineered microbiome: living therapeutics revolutionize blood cancer immunotherapy.
选定的临床前模型报告了显著的抗肿瘤效果,在啮齿动物研究中肿瘤缩小常超过60%,并在受控条件下恢复了CAR-T细胞功能;然而,不同模型间的效应量存在差异,且向人类的转化仍未得到证实。
白血病、淋巴瘤和骨髓瘤等血液系统恶性肿瘤由于免疫逃逸、抗原异质性以及治疗相关毒性,在许多患者中仍然难治。为应对这些挑战,我们综述了近期利用CRISPR工程化肠道共生菌作为精准“活体治疗”来调节宿主免疫并直接靶向恶性克隆的策略。我们围绕三个主要主题构建本综述:(1)CRISPR工程化共生菌调节宿主免疫并直接拮抗恶性克隆的机制性策略;(2)使活体治疗成为可行的使能技术和递送/遏制平台、CRISPR变体、噬菌体/LNP递送、基因回路和生物遏制;(3)临床部署必须解决的转化进展、突出的技术和安全性障碍以及伦理/监管挑战。为阐明这些主题,我们讨论了三种具体的治疗模式:工程化微生物分泌免疫调节剂、肿瘤裂解性有效载荷的靶向递送,以及工程化生产抗癌代谢物,以及这些如何由当代CRISPR和合成生物学工具包实现。选定的临床前模型报告了显著的抗肿瘤效果,在啮齿动物研究中通常>60%的肿瘤缩小,并在受控环境中恢复了CAR-T细胞功能;然而,效应量在不同模型间存在差异,人体转化仍未得到证实。我们还分析了关键的技术障碍、菌株稳定性、生物遏制、脱靶效应,并提出解决方案,包括营养缺陷型杀伤开关和AI引导的菌株优化。最后,我们概述了未来方向,从原位噬菌体递送到多组学驱动的患者分层。CRISPR微生物组编辑代表了血液肿瘤学的范式转变,提供局部、持续的治疗并降低全身毒性。
Blood cancers such as leukemia, lymphoma, and myeloma remain refractory in many patients due to immune escape, antigen heterogeneity, and therapy related toxicities. To address these challenges, we review recent strategies that harness CRISPR engineered gut commensals as precision "living therapeutics" to modulate host immunity and directly target malignant clones. We frame this review around three principal themes: (1) mechanistic strategies whereby CRISPR-engineered commensals modulate host immunity and directly antagonize malignant clones; (2) the enabling technologies and delivery/containment platforms, CRISPR variants, phage/LNP delivery, genetic circuits and biocontainment, that make living therapeutics feasible; and (3) translational progress, outstanding technical and safety barriers, and ethical/regulatory challenges that must be addressed for clinical deployment. To illustrate these themes, we discuss three concrete therapeutic modalities: engineered microbial secretion of immunomodulators, targeted delivery of tumor-lytic payloads, and engineered production of anticancer metabolites, and how these are enabled by contemporary CRISPR and synthetic-biology toolkits. Selected preclinical models report substantial antitumor effects, often >60% tumor reduction in rodent studies, and restoration of CAR-T cell function in controlled settings; however, effect sizes vary across models, and human translation remains unproven. We also analyze key technical barriers, strain stability, biocontainment, off target effects, and propose solutions, including auxotrophic kill-switches and AI guided strain optimization. Finally, we outline future directions, from in situ phage delivery to multi omics-driven patient stratification. CRISPR microbiome editing represents a paradigm shift in hematologic oncology, offering localized, sustained therapy with reduced systemic toxicity.
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