Kitajima Toshihiko, Chiba Yasunori
Biomol Concepts. 2013 Dec;4(6):611-6. doi: 10.1515/bmc-2013-0033.
The importance of selenium for organisms can be explained by its existence as selenocysteine in the catalytic centers of glutathione peroxidase and thioredoxin reductase. Another selenoamino acid, selenomethionine, is the major form of selenium in foods, and organisms that require selenium as a nutrient directly metabolize selenomethionine to a reactive form of selenium or store it in general proteins. Selenium is recognized as an essential nutrient for human and animal health; however, its excessive uptake harms mammals and the cytotoxic mechanism of selenium remains unclear. Recent progress in the development of selenium-enriched yeast and selenomethionine-resistant mutant to produce selenomethionine-containing proteins for X-ray crystallography has provided new insights into the molecular mechanism of selenomethionine toxicity. In this review, we describe the metabolism of seleno-compounds in yeast and discuss the cytotoxicity caused by selenomethionine against yeast from a metabolic viewpoint.
硒对生物体的重要性可通过其在谷胱甘肽过氧化物酶和硫氧还蛋白还原酶催化中心以硒代半胱氨酸的形式存在来解释。另一种硒代氨基酸,即硒代蛋氨酸,是食物中硒的主要形式,需要硒作为营养物质的生物体将硒代蛋氨酸直接代谢为活性硒形式或储存于普通蛋白质中。硒被认为是对人类和动物健康必不可少的营养素;然而,过量摄入硒会对哺乳动物造成危害,且硒的细胞毒性机制仍不清楚。在开发富含硒的酵母和抗硒代蛋氨酸突变体以生产用于X射线晶体学的含硒代蛋氨酸蛋白质方面的最新进展,为硒代蛋氨酸毒性的分子机制提供了新的见解。在本综述中,我们描述了酵母中硒化合物的代谢,并从代谢角度讨论了硒代蛋氨酸对酵母造成的细胞毒性。