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:Advanced strategies to enhance the safety, persistence, and efficacy of CAR-T cells in solid tumors.
嵌合抗原受体(CAR)T细胞疗法已彻底改变了血液系统癌症的治疗,但仍面临挑战,包括严重的治疗相关毒性、高度抑制性的肿瘤微环境(TME)、长期持久性有限以及向实体瘤的迁移/浸润能力差。
嵌合抗原受体(CAR)T细胞疗法彻底改变了血液系统癌症治疗,但仍面临严重治疗相关毒性、免疫抑制性强的肿瘤微环境(TME)、长期持久性有限以及实体瘤迁移/浸润能力差等挑战。本综述概述近期基因工程策略,以改善CAR-T细胞疗法的安全性、持久性和疗效。为减少细胞因子释放综合征和神经毒性,已开发亲和力调节和人源化单链可变片段(scFv)、铰链/跨膜区优化和ITAM校准等方法,以及可编程“关闭”和“开启”系统,包括自杀基因、抗体桥接开关和光遗传或缺氧门控回路。TME重塑策略利用纳米材料靶向递送细胞因子、细胞表面“背包”系统,以及可释放细胞因子或检查点阻断剂的工程化溶瘤病毒。为提高持久性并抵抗耗竭,研究采用精准基因组工程技术,包括基于CRISPR的编辑和多重shRNA平台,以靶向抑制性受体和驱动耗竭的转录程序。此外,综述讨论了趋化因子受体工程和局部生物材料递送系统如何增强CAR-T细胞迁移和肿瘤内持久性。总体而言,这些创新指向整合型、患者特异性的CAR-T平台,结合安全控制、代谢和转录灵活性,以及增强其穿越TME的迁移能力,从而扩大临床应用。
Chimeric antigen receptor (CAR) T-cell therapy has revolutionized the treatment of hematologic cancers but encounters challenges, including severe treatment-related toxicities, a highly suppressive tumor microenvironment (TME), limited long-term persistence, and poor trafficking/infiltration into solid tumors. This review outlines recent genetic engineering strategies to address these issues and enhance the safety, durability, and efficacy of CAR-T cell therapy. To reduce cytokine release syndrome and neurotoxicity, methods such as affinity-tuned and humanized scFvs, hinge/TM optimization, and ITAM calibration have been developed, along with programmable "switch-off" and "switch-on" systems that include suicide genes, antibody-bridging switches, and optogenetic or hypoxia-gated circuits. TME remodeling strategies utilize nanomaterials for targeted cytokine delivery, cell-surface "backpack" systems, and engineered oncolytic viruses that release cytokines or checkpoint-blocking agents. For durability and resistance to exhaustion, precise genome engineering techniques, including CRISPR-based editing and multiplexed shRNA platforms, were employed to target inhibitory receptors and exhaustion-driving transcriptional programs. Additionally, chemokine-receptor engineering and local biomaterial-based delivery systems are discussed as ways to enhance CAR-T trafficking and intratumoral persistence. These innovations collectively point toward integrated, patient-specific CAR-T platforms that incorporate safety controls, metabolic and transcriptional flexibility, and enhanced trafficking through the TME to broaden clinical use.
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