缺氧微环境诱导的外泌体通过转移丙酮酸激酶M2赋予胶质瘤替莫唑胺抗药性

Guofu Li, Ziyu Xiong, Ying Li, Cong Yan, Yingying Cheng, Yuwen Wang, Jingwei Li, Zifeng Dai, Dongdong Zhang, Wenzhong Du, Chunyang Men, Changbin Shi
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摘要

目的胶质瘤是一种恶性原发性脑肿瘤,因其发病率高而臭名昭著。然而,替莫唑胺(TMZ)作为治疗胶质瘤的一种选择,其临床应用往往因耐药性而受到限制,而耐药性与缺氧性胶质瘤细胞释放的外泌体有关。有鉴于此,本研究旨在探讨外泌体丙酮酸激酶M2(PKM2)在对TMZ耐药的胶质瘤细胞中的作用。从这些细胞中分离出了外泌体 PKM2,并对其随后对 TMZ 抗性的影响进行了研究和表征,重点是了解相关机制。此外,还评估了缺氧耐药细胞与肿瘤相关巨噬细胞(TAMs)之间通过外泌体PKM2进行的细胞间通讯。在所研究的三种糖酵解酶中,发现PKM2是缺氧触发TMZ耐药性的关键介质。研究发现,PKM2的上调会加剧缺氧介导的TMZ耐药性。从缺氧性TMZ耐药性胶质瘤细胞中鉴定并分离出了外泌体PKM2,发现它是将TMZ耐药性传递给敏感性胶质瘤细胞的罪魁祸首。外泌体PKM2还有助于减轻TMZ诱导的敏感胶质瘤细胞凋亡,同时也会导致细胞内ROS积累。此外,缺氧耐药细胞也释放了外泌体PKM2,这促进了肿瘤相关巨噬细胞对TMZ的耐药性。外泌体PKM2的靶向调节可能是克服胶质瘤TMZ耐药性的一种有前途的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Hypoxic microenvironment-induced exosomes confer temozolomide resistance in glioma through transfer of pyruvate kinase M2

Objective

Glioma, a malignant primary brain tumor, is notorious for its high incidence rate. However, the clinical application of temozolomide (TMZ) as a treatment option for glioma is often limited due to resistance, which has been linked to hypoxic glioma cell-released exosomes. In light of this, the present study aimed to investigate the role of exosomal pyruvate kinase M2 (PKM2) in glioma cells that exhibit resistance to TMZ.

Methods

Sensitive and TMZ-resistant glioma cells were subjected to either a normoxic or hypoxic environment, and the growth patterns and enzymatic activity of glycolysis enzymes were subsequently measured. From these cells, exosomal PKM2 was isolated and the subsequent effect on TMZ resistance was examined and characterized, with a particular focus on understanding the relevant mechanisms. Furthermore, the intercellular communication between hypoxic resistant cells and tumor-associated macrophages (TAMs) via exosomal PKM2 was also assessed.

Results

The adverse impact of hypoxic microenvironments on TMZ resistance in glioma cells was identified and characterized. Among the three glycolysis enzymes that were examined, PKM2 was found to be a critical mediator in hypoxia-triggered TMZ resistance. Upregulation of PKM2 was found to exacerbate the hypoxia-mediated TMZ resistance. Exosomal PKM2 were identified and isolated from hypoxic TMZ-resistant glioma cells, and were found to be responsible for transmitting TMZ resistance to sensitive glioma cells. The exosomal PKM2 also contributed towards mitigating TMZ-induced apoptosis in sensitive glioma cells, while also causing intracellular ROS accumulation. Additionally, hypoxic resistant cells also released exosomal PKM2, which facilitated TMZ resistance in tumor-associated macrophages.

Conclusion

In the hypoxic microenvironment, glioma cells become resistant to TMZ due to the delivery of PKM2 by exosomes. Targeted modulation of exosomal PKM2 may be a promising strategy for overcoming TMZ resistance in glioma.

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