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利用氧化应激进行抗神经胶质瘤治疗。

Harnessing oxidative stress for anti-glioma therapy.

机构信息

Department of Experimental and Clinical Neuropathology,Mossakowski Medical Research Institute, Polish Academy of Sciences, Warsaw, Poland.

Department of Experimental and Clinical Neuropathology,Mossakowski Medical Research Institute, Polish Academy of Sciences, Warsaw, Poland.

出版信息

Neurochem Int. 2022 Mar;154:105281. doi: 10.1016/j.neuint.2022.105281. Epub 2022 Jan 14.

Abstract

Glioma cells use intermediate levels of reactive oxygen species (ROS) and reactive nitrogen species (RNS) for growth and invasion, and suppressing these reactive molecules thus may compromise processes that are vital for glioma survival. Increased oxidative stress has been identified in glioma cells, in particular in glioma stem-like cells. Studies have shown that these cells harbor potent antioxidant defenses, although endogenous protection against nitrosative stress remains understudied. The enhancement of oxidative or nitrosative stress offers a potential target for triggering glioma cell death, but whether oxidative and nitrosative stresses can be combined for therapeutic effects requires further research. The optimal approach of harnessing oxidative stress for anti-glioma therapy should include the induction of free radical-induced oxidative damage and the suppression of antioxidant defense mechanisms selectively in glioma cells. However, selective induction of oxidative/nitrosative stress in glioma cells remains a therapeutic challenge, and research into selective drug delivery systems is ongoing. Because of multifactorial mechanisms of glioma growth, progression, and invasion, prospective oncological therapies may include not only therapeutic oxidative/nitrosative stress but also inhibition of oncogenic kinases, antioxidant molecules, and programmed cell death mediators.

摘要

神经胶质瘤细胞利用中等水平的活性氧(ROS)和活性氮(RNS)来生长和侵袭,而抑制这些活性分子可能会损害对神经胶质瘤生存至关重要的过程。在神经胶质瘤细胞中,特别是在神经胶质瘤干细胞中,已经确定存在氧化应激增加。研究表明,这些细胞具有强大的抗氧化防御能力,尽管针对硝化应激的内源性保护仍研究不足。增强氧化应激或硝化应激为触发神经胶质瘤细胞死亡提供了一个潜在的靶点,但氧化应激和硝化应激是否可以联合用于治疗效果还需要进一步研究。利用氧化应激进行抗神经胶质瘤治疗的最佳方法应包括诱导自由基诱导的氧化损伤,并选择性地抑制神经胶质瘤细胞中的抗氧化防御机制。然而,在神经胶质瘤细胞中选择性诱导氧化/硝化应激仍然是一个治疗挑战,对选择性药物输送系统的研究正在进行中。由于神经胶质瘤生长、进展和侵袭的多因素机制,前瞻性的肿瘤治疗方法可能不仅包括治疗性氧化/硝化应激,还包括抑制致癌激酶、抗氧化分子和程序性细胞死亡介质。

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