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胶质瘤干细胞中氧化应激的解毒作用:机制、临床相关性及治疗进展

Detoxification of oxidative stress in glioma stem cells: mechanism, clinical relevance, and therapeutic development.

作者信息

Kim Sung-Hak, Kwon Chang-Hyuk, Nakano Ichiro

机构信息

Dardinger Neuro-oncology Center, Department of Neurological Surgery, The Ohio State University Wexner Medical Center, Columbus, Ohio.

出版信息

J Neurosci Res. 2014 Nov;92(11):1419-24. doi: 10.1002/jnr.23431. Epub 2014 Jul 9.

Abstract

Neural oncogenesis is currently incurable and invariably lethal. The development of innovative treatments for this devastating cancer will require a deeper molecular understanding of how cancer cells survive, proliferate, and escape from current therapies. In high-grade gliomas (HGGs), glioma stem cells (GSCs) may causally contribute to tumor initiation and propagation, therapeutic resistance, and subsequent recurrence of tumors. Within a tumor mass, GSCs are enriched in a hypoxic niche in which the oxidative stress levels are substantially elevated. Paradoxically, however, recent studies suggest that GSCs appear to generate less reactive oxygen species (ROS), a chemical component responsible for elevation of oxidative stress levels. To date, molecular mechanisms for how GSCs reduce oxidative stress to allow preferential survival in hypoxic areas in tumors remains elusive. This review article summarizes recent studies on the role of ROS-reducing enzymes, including peroxiredoxin 4, in detoxifying oxidative stress preferentially for GSCs in HGGs. In addition, the therapeutic potential of some of the recently identified antioxidant chemotherapeutic agents and avenues for future research in this area are discussed.

摘要

神经肿瘤发生目前无法治愈且必然致命。要开发针对这种毁灭性癌症的创新疗法,需要对癌细胞如何存活、增殖以及如何逃避现有疗法有更深入的分子层面理解。在高级别胶质瘤(HGGs)中,胶质瘤干细胞(GSCs)可能在肿瘤起始、扩散、治疗抵抗以及随后的肿瘤复发中起因果作用。在肿瘤块内,GSCs富集于缺氧微环境中,其中氧化应激水平显著升高。然而,矛盾的是,最近的研究表明GSCs似乎产生较少的活性氧(ROS),而ROS是导致氧化应激水平升高的化学成分。迄今为止,GSCs如何降低氧化应激以使其在肿瘤缺氧区域优先存活的分子机制仍不清楚。这篇综述文章总结了关于包括过氧化物酶4在内的ROS还原酶在优先为HGGs中的GSCs解毒氧化应激方面作用的近期研究。此外,还讨论了一些最近鉴定出的抗氧化化疗药物的治疗潜力以及该领域未来的研究方向。

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