CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Targeting glutamine metabolism as a potential target for cancer treatment.
Targeting glutamine metabolism as a potential target for cancer treatment.
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代谢重编程是癌细胞的标志之一,而众多肿瘤中“谷氨酰胺成瘾”现象的出现标志着精准靶向治疗的重要进展。本综述表明,谷氨酰胺代谢通过调控多层面的调节网络(Hippo/YAP、mTORC1信号通路及非编码RNA)成为肿瘤恶性表型发展的关键因素。这些网络在谷氨酰胺代谢重编程中发挥关键作用,进而影响癌症的多种标志性特征,包括癌细胞增殖、ROS介导的凋亡抑制以及EMT相关的侵袭性转移。在靶向治疗策略方面,聚焦于关键转运体和代谢酶(ASCT2/GLS1)为开发基于抑制谷氨酰胺代谢的多靶点联合治疗方案提供了理论基础。大量研究表明,谷氨酰胺的代谢过程调控多种免疫系统功能,包括T细胞耗竭/活化、TAMs极化以及NK细胞功能。这种调控关系被称为代谢-免疫轴,是肿瘤发展免疫逃逸机制的关键因素。研究进一步表明,涉及调节谷氨酰胺代谢的靶向干预策略联合应用,具有重塑免疫微环境和增强CAR-T 细胞治疗疗效的潜力。
值得注意的是,谷氨酰胺代谢还通过重塑癌症相关成纤维细胞(CAFs)影响肿瘤基质形成。针对治疗耐药机制,肿瘤细胞通过ASNS和GAD代谢分支激活、葡萄糖/脂质代谢补偿以及ATF4转录应激网络形成适应性逃逸。本综述系统整合了谷氨酰胺代谢在肿瘤发生发展和治疗耐药中的关键作用,为基于代谢可塑性调控的精准治疗策略选择提供了新视角和转化路径。
Metabolic reprogramming is a hallmark of cancer cells, and the advent of "glutamine addiction" in numerous tumors signifies a pivotal advancement for precision-targeted therapy. This review demonstrates that glutamine metabolism is a pivotal factor in the development of malignant phenotypes in tumors by modulating multifaceted regulatory networks (Hippo/YAP, mTORC1 signaling pathway, and non-coding RNAs). These networks play a crucial role in the reprogramming of glutamine metabolism, which in turn affects various hallmarks of cancer, including cancer cell proliferation, ROS-mediated inhibition of apoptosis, and EMT-associated invasive metastasis. With respect to targeted therapeutic strategies, the focus on key transporters and metabolizing enzymes (ASCT2/GLS1) provides a theoretical foundation for the development of multi-targeted combination therapeutic regimens based on the inhibition of glutamine metabolism. A body of research has demonstrated that the metabolic processes of glutamine regulate a variety of immune system functions, including T cell depletion/activation, the polarization of TAMs, and the function of NK cells.
This regulatory relationship, termed the metabolic-immune axis, is a crucial factor in the development of immune escape mechanisms by tumors. The study further suggests that a combination of targeted intervention strategies, involving the modulation of glutamine metabolism, has the potential to reshape the immune microenvironment and enhance the efficacy of CAR-T cell therapy. It is important to note that glutamine metabolism also affects tumor stroma formation by remodeling cancer-associated fibroblasts (CAFs).
In response to therapeutic resistance mechanisms, tumor cells form adaptive escapes through ASNS and GAD metabolic branch activation, glucose/lipid metabolic compensation, and ATF4 transcriptional stress networks. This review systematically integrates the critical role of glutamine metabolism in tumor development and therapeutic resistance, providing new perspectives and translational pathways for the development of precision therapeutic strategy selection based on metabolic plasticity modulation.
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