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Selenium versus sulfur: reversibility of chemical reactions and resistance to permanent oxidation in proteins and nucleic acids

机译:硒与硫:化学反应的可逆性以及对蛋白质和核酸永久氧化的抵抗力

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摘要

This review highlights the contributions of Jean Chaudière to the field of selenium biochemistry. Chaudière was the first to recognize that one of the main reasons that selenium in the form of selenocysteine is used in proteins is due to the fact that it strongly resists permanent oxidation. The foundations for this important concept was laid down by Al Tappel in the 1960’s and even before by others. The concept of oxygen tolerance first recognized in the study of glutathione peroxidase was further advanced and refined by those studying [NiFeSe]-hydrogenases, selenosubtilisin, and thioredoxin reductase. After 200 years of selenium research, work by Marcus Conrad and coworkers studying glutathione peroxidase-4 has provided definitive evidence for Chaudière’s original hypothesis [Ingold, I., Berndt, C., Schmitt, S., Doll, S., Poschmann, G., Buday, K., Roveri, A., Peng, X., Porto Freitas, F., Seibt, T., Mehr, L., Aichler, M., Walch, A., Lamp, D., Jastroch, M., Miyamoto, S., Wurst, W., Ursini, F., Arnér, E. S. J., Fradejas-Villar, N., Schweizer, U., Zischka, H., Angeli J. P. F, and Conrad, M. (2018) Selenium utilization by GPX4 is required to prevent hydroperoxide-induced ferroptosis, Cell 172, 1–14.]. While the reaction of selenium with oxygen is readily reversible, there are many other examples of this phenomenon of reversibility. Many reactions of selenium can be described as “easy in – easy out”. This is due to the strong nucleophilic character of selenium to attack electrophiles, but then this reaction can be reversed due to the strong electrophilic character of selenium and the weakness of the selenium-carbon bond. Several examples of this are described.
机译:这篇综述着重介绍了让·卡迪耶(JeanChaudière)对硒生物化学领域的贡献。 Chaudière是第一个认识到硒半胱氨酸形式的硒用于蛋白质的主要原因之一,是因为它强烈抵抗永久氧化。这个重要概念的基础是Al Tappel在1960年代甚至在其他人之前奠定的。谷胱甘肽过氧化物酶研究中最先发现的耐氧性概念被[NiFeSe]-氢化酶,硒代枯草杆菌蛋白酶和硫氧还蛋白还原酶的研究者进一步发展和完善。经过200年的硒研究,Marcus Conrad及其同事研究谷胱甘肽过氧化物酶4的工作为Chaudière的原始假设提供了确定的证据[Ingold,I.,Berndt,C.,Schmitt,S.,Doll,S.,Poschmann,G 。,Buday,K.,Roveri,A.,Peng,X.,Porto Freitas,F.,Seibt,T.,Mehr,L.,Aichler,M.,Walch,A.,Lamp,D.,Jastroch, M.,Miyamoto,S.,Wurst,W.,Ursini,F.,Arnér,ESJ,Fradejas-Villar,N.,Schweizer,U.,Zischka,H.,Angeli JP F,and Conrad,M.(2018年) )GPX4需要利用硒来预防氢过氧化物引起的肥大病,细胞172,1-14。硒与氧的反应很容易逆转,但这种逆转现象还有许多其他例子。硒的许多反应都可以描述为“易进-易出”。这是由于硒具有很强的亲核特性来攻击亲电试剂,但是由于硒的强亲电特性和硒-碳键的弱点,该反应可以逆转。描述了几个例子。

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