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脑缺血耐受的相关机制:同型半胱氨酸的作用

Mechanisms involved in the ischemic tolerance in brain: effect of the homocysteine.

作者信息

Lehotsky Jan, Petras Martin, Kovalska Maria, Tothova Barbara, Drgova Anna, Kaplan Peter

机构信息

Jessenius Faculty of Medicine, Institute of Medical Biochemistry, Comenius University, Mala Hora 4, 036 01, Martin, Slovakia,

出版信息

Cell Mol Neurobiol. 2015 Jan;35(1):7-15. doi: 10.1007/s10571-014-0112-3. Epub 2014 Sep 7.

Abstract

Hyperhomocysteinemia (hHCy) is recognized as a co-morbid risk factor of human stroke. It also aggravates the ischemia-induced injury by increased production of reactive oxygen species, and by the homocysteinylation and thiolation of functional proteins. Ischemic preconditioning represents adaptation of the CNS to sub-lethal ischemia, resulting in increased brain tolerance to subsequent ischemia. We present here an overview of recent data on the homocysteine (Hcy) metabolism and on the genetic and metabolic causes of hHCy-related neuropathologies in humans. In this context, the review documents for an increased oxidative stress and for the functional modifications of enzymes involved in the redox balance in experimentally induced hHCy. Hcy metabolism leads also to the redox imbalance and increased oxidative stress resulting in elevated lipoperoxidation and protein oxidation, the products known to be included in the neuronal degeneration. Additionally, we examine the effect of the experimental hHCy in combination with ischemic insult, and/or with the preischemic challenge on the extent of neuronal degeneration as well as the intracellular signaling and the regulation of DNA methylation. The review also highlights that identification of the effects of co-morbid factors in the mechanisms of ischemic tolerance mechanisms would lead to improved therapeutics, especially the brain tissue.

摘要

高同型半胱氨酸血症(hHCy)被认为是人类中风的一种共病风险因素。它还通过增加活性氧的产生以及功能性蛋白质的同型半胱氨酸化和硫醇化来加重缺血诱导的损伤。缺血预处理代表中枢神经系统对亚致死性缺血的适应性反应,从而增强大脑对后续缺血的耐受性。我们在此概述了近期关于同型半胱氨酸(Hcy)代谢以及人类hHCy相关神经病理学的遗传和代谢原因的数据。在此背景下,该综述记录了实验性诱导的hHCy中氧化应激增加以及参与氧化还原平衡的酶的功能改变。Hcy代谢还会导致氧化还原失衡和氧化应激增加,从而导致脂质过氧化和蛋白质氧化升高,这些产物已知与神经元变性有关。此外,我们研究了实验性hHCy与缺血性损伤和/或缺血前刺激相结合对神经元变性程度以及细胞内信号传导和DNA甲基化调节的影响。该综述还强调,确定共病因素在缺血耐受机制中的作用将有助于改进治疗方法,尤其是对脑组织的治疗。

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