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一氧化氮介导的途径及其在退行性疾病中的作用。

Nitric oxide-mediated pathways and its role in the degenerative diseases.

机构信息

Department of Neurobiology and Beijing Institute for Brain Disorders, School of Basic Medical Sciences, Capital Medical University, Beijing 100069, PR China,and Department of Human Anatomy, School of Basic Medical Sciences, Capital Medical University, Bei.

Department of Neurobiology and Beijing Institute for Brain Disorders, School of Basic Medical Sciences, Capital Medical University, Beijing 100069, PR China.

出版信息

Front Biosci (Landmark Ed). 2017 Jan 1;22(5):824-834. doi: 10.2741/4519.

Abstract

Nitric oxide (NO) is a relatively short-lived inorganic free radical, which can be produced by different types of cells in multi-cellular organisms. This diffusible messenger functions as either an effector or a second messenger in many intercellular communications or intracellular signaling pathways. NO becomes noxious if it is produced in excess. These effects are mainly mediated by the reactivity of NO with various reactive oxygen species, which can be countered by antioxidant enzymes. In addition, NO can directly modify biological molecules via S-nitrosylation and lead to altered signaling responses. Accumulating evidence suggests that NO has a double-edged role in a dose-dependent, cell-type specific, and biological milieu-dependent way. In the present review, we summarized the synthesis and signaling pathway of NO, and especially focused on its involvement in biological processes, such as endoplasmic reticulum stress, apoptosis and autophagy. Besides, we discussed the functions of NO in the nervous system and its potential role in neurodegenerative diseases. We proposed the target on NO may shed light on the treatment of the related diseases.

摘要

一氧化氮(NO)是一种相对短寿命的无机自由基,可以由多细胞生物中的不同类型的细胞产生。这种扩散性信使在许多细胞间通讯或细胞内信号通路中充当效应物或第二信使。如果过量产生,NO 就会变得有害。这些作用主要是通过 NO 与各种活性氧物质的反应性来介导的,抗氧化酶可以对抗这种反应性。此外,NO 可以通过 S-亚硝基化直接修饰生物分子,导致信号转导反应改变。越来越多的证据表明,NO 以剂量依赖性、细胞类型特异性和生物环境依赖性的方式发挥双刃剑作用。在本综述中,我们总结了 NO 的合成和信号通路,特别关注了它在生物学过程中的作用,如内质网应激、细胞凋亡和自噬。此外,我们还讨论了 NO 在神经系统中的功能及其在神经退行性疾病中的潜在作用。我们提出针对 NO 的靶点可能为相关疾病的治疗提供思路。

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