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Biological Redox Switches

机译:生物氧化还原开关

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摘要

Research over the last decade has substantially advanced our understanding of cellular redox chemistry and introduced new terms to redox signaling and biological redox switches. It emerges that redox switching affects a plethora of biological processes and seems to be necessary to counterbalance oxidative stress and guarantee cellular survival in oxidative conditions. Despite intensive studies, the mechanisms of redox switching and its consequences are poorly understood, which points towards an extremely complex nature of these phenomena. Indeed, in contrast to classical signalling cascades, cellular redox signaling seems to affect the whole cellular redox environment and a large number of different redox switches. A majority of biological redox switches rely on the oxidation of thiol group(s) of cysteine residue(s); however, thiolates also bind transition metal ions like Zn(II), Cu(I), and iron, and these metal-thiolate motifs also function as redox switches. It follows that a deeper understanding of redox signalling and redox switches could be achieved by a multidisciplinary approach combining advances in the redox chemistry of sulphur, the chemistry of reactive oxygen and nitrogen species, as well as the bioinorganic chemistry of metal complexes. Many of these aspects are reviewed in the current forum issue on biological redox switches with the aim to promote the understanding of cellular redox phenomena at system biology level.
机译:过去十年的研究极大地增进了我们对细胞氧化还原化学的理解,并为氧化还原信号传导和生物氧化还原开关引入了新术语。结果表明,氧化还原转换会影响大量的生物过程,似乎对于平衡氧化应激和保证细胞在氧化条件下的存活是必要的。尽管进行了深入研究,但对氧化还原转换的机理及其后果知之甚少,这表明这些现象的性质极为复杂。实际上,与经典的信号级联相反,细胞氧化还原信号似乎影响整个细胞氧化还原环境和大量不同的氧化还原开关。大多数生物氧化还原开关依赖于半胱氨酸残基的巯基的氧化。然而,硫醇盐还结合过渡金属离子,如Zn(II),Cu(I)和铁,并且这些金属硫醇盐基序也充当氧化还原开关。因此,可以通过多学科方法,结合硫的氧化还原化学,活性氧和氮物种的化学以及金属配合物的生物无机化学的多学科方法,对氧化还原信号和氧化还原开关有更深入的了解。在当前关于生物氧化还原开关的论坛上,对这些方面的许多内容进行了审查,目的是在系统生物学水平上增进对细胞氧化还原现象的理解。

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