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氧化还原反应与红细胞膜上的电子转移。

Redox reactions and electron transfer across the red cell membrane.

作者信息

Kennett Eleanor C, Kuchel Philip W

机构信息

School of Molecular and Microbial Biosciences, University of Sydney, NSW, Australia.

出版信息

IUBMB Life. 2003 Jul;55(7):375-85. doi: 10.1080/15216540310001592843.

Abstract

Plasma membrane electron transport systems appear to be ubiquitous. These systems are implicated in hormone signal transduction, cell growth and differentiation events as well as protection from oxidative stress. The red blood cell is constantly exposed to oxidative stress; protection against the reactive species generated during this process may be the main role of its membrane electron transport systems. Membrane redox activity has been studied for over three-quarters of a century, and yet many questions remain regarding its identity and likely roles: are electron transfers by distinct and specific mechanisms; what are the physiological donors and acceptors; and how do these systems affect metabolism? Current evidence suggests that the human erythrocyte membrane contains a number of distinct electron transfer systems, some of which, at least, involve membrane proteins, and NADH or ascorbate as electron donors. The activity of these systems appears to be closely related to the metabolic state of the cell, suggesting that mediation of reducing equivalents across the plasma membrane allows redox buffering of each environment, intra- and extracellular, by the other. We have decided to study this from a new perspective, NMR spectroscopy the area of our own technical expertise, hence this review is slanted towards this more recent analysis.

摘要

质膜电子传递系统似乎无处不在。这些系统与激素信号转导、细胞生长和分化事件以及抵御氧化应激有关。红细胞不断暴露于氧化应激中;其膜电子传递系统的主要作用可能是保护细胞免受该过程中产生的活性物质的损伤。膜氧化还原活性的研究已经进行了超过四分之三个世纪,但关于其特性和可能的作用仍有许多问题:电子传递是通过独特而特定的机制进行的吗?生理供体和受体是什么?这些系统如何影响代谢?目前的证据表明,人类红细胞膜含有许多不同的电子传递系统,其中一些至少涉及膜蛋白,并且以NADH或抗坏血酸作为电子供体。这些系统的活性似乎与细胞的代谢状态密切相关,这表明跨质膜介导还原当量可以使细胞内和细胞外环境通过彼此进行氧化还原缓冲。我们决定从一个新的角度来研究这个问题,即利用我们自己技术专长领域的核磁共振光谱法,因此这篇综述更倾向于这种最新的分析。

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