电压门控钠通道在神经系统疾病发展中的异常。一篇评论文章。

Bakhtawar Khan, Muhammad Khalid Iqbal, Hamid Khan, Mustafa Kiyani, Shahid Bashir, Li Shao
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摘要

钠离子通道是神经系统各个模块的电活动所必需的。当这些通道不能正常工作时,可能会引起不同的神经系统疾病。本文将讨论这些通道中的特定突变如何导致不同的疾病。积极的改变可能导致癫痫等疾病,或由于神经元过度激活而导致的任何肌肉紊乱。相反,功能丧失突变可能导致心脏病和运动和精神活动方面的问题,因为神经元由于失去机械而不能正常运作。这篇综述将讨论常见的通道病,如遗传性癫痫、家族性偏瘫偏头痛、先天性肌张力Para,以及与阿尔茨海默氏症、帕金森氏症和多发性硬化症等复杂疾病相对较新的相互关系。因此,了解这些机制对于设计特定的治疗方法非常重要。通过药物或基因方法来改变钠离子通道的活性是有道理的。因此,本文旨在提供明确的区别,并讨论与钠通道突变有关的问题,以促进个体化医疗的潜在发展。本文还介绍了电压门控钠通道(VGSCs)的功能和一般分布,其活性是如何被控制的,以及它们的结构。因此,目的是了解VGSCs在神经系统中与几种疾病相关的明显多面功能。这方面的知识在尝试治疗这些致残障碍的过程中是必不可少的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Abnormality of Voltage-Gated Sodium Channels in Disease Development of the Nervous System. A Review Article.

Sodium channels are necessary for electrical activity in modules of the nervous system. When such channels fail to work properly, it may cause different neurological diseases. This review will discuss how particular mutation in these channels leads to different diseases. Positive alterations can lead to such diseases as epilepsy, or any muscle disorder due to over activation of neurons. Conversely, loss-of-function mutations may cause heart diseases and problems regarding motor and mental activity since neurons are not functioning well because of lost machinery. The review would discuss over familiar channelopathies such as genetic epilepsies, the familial hemiplegic migraine, and Para myotonia congenital and relatively new interrelations with the complex ailments including Alzheimer's, Parkinson's and multiple sclerosis. Thus, knowledge of these mechanisms is important in designing specific therapeutic approaches. There is a rationale for altering the sodium channel activity in the treatment of these neurological disorders by drugs or indeed genetic methods. Thus, the review is undertaken to provide clear distinctions and discuss the issues related to sodium channel mutations for the potential development of individualized medicine. The review also gives information on the function and general distribution of voltage-gated sodium channels (VGSCs), how their activity is controlled, and what their structure is like. The purpose therefore is to draw understanding over the apparently multifaceted functions exerted by VGSCs in the nervous system relative to several diseases. This knowledge is imperative in the attempt to produce treatments for these disabling disorders.

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