Department of Biochemistry and Molecular Biology, University of Medicine and Dentistry of New Jersey, Robert Wood Johnson Medical School, 675 Hoes Lane, Piscataway, NJ 08854, USA.
J Mol Biol. 2013 Jul 24;425(14):2415-22. doi: 10.1016/j.jmb.2013.04.016. Epub 2013 Apr 23.
Selenoproteins are present in all three domains of life and are responsible for a major part of a cell's antioxidant defense against reactive oxygen species. Synthesis of selenoproteins requires the decoding of a UGA codon as selenocysteine (Sec) instead of translation termination. Sec is incorporated into the growing polypeptide chain during translation elongation and is known to require a set of highly specific factors: the Sec insertion sequence (SECIS) element in the 3' untranslated region, Sec-tRNA(Sec), the Sec-specific elongation factor eEFSec, and SECIS binding protein 2. Since reconstitution has not been reported, whether these factors are sufficient is unknown. Here, we report a novel in vitro translation system in which Sec incorporation has been reconstituted from purified components introduced into a Sec naive system. In addition, we developed a novel method to purify Sec-tRNA(Sec) and active eEFSec/GTP/tRNA ternary complex. We found that the known basal factors are sufficient for Sec incorporation in vitro. Using this highly manipulable system, we have also found that ribosomes from non-Sec-utilizing organisms cannot support Sec incorporation and that some SECIS elements are intrinsically less efficient than others. Having identified the essential set of factors, this work removes a significant barrier to our understanding of the mechanism of Sec incorporation.
硒蛋白存在于生命的三个领域,负责细胞抗氧化防御活性氧的主要部分。硒蛋白的合成需要解码 UGA 密码子为硒代半胱氨酸(Sec),而不是翻译终止。Sec 在翻译延伸过程中被掺入到生长的多肽链中,已知需要一组高度特异的因子:3'非翻译区中的 Sec 插入序列(SECIS)元件、Sec-tRNA(Sec)、Sec 特异性延伸因子 eEFSec 和 SECIS 结合蛋白 2。由于尚未报道重新构成,因此这些因子是否足够尚不清楚。在这里,我们报告了一种新型的体外翻译系统,其中 Sec 的掺入已从引入 Sec 幼稚系统的纯化成分中重新构成。此外,我们开发了一种纯化 Sec-tRNA(Sec)和活性 eEFSec/GTP/tRNA 三元复合物的新方法。我们发现已知的基本因子足以在体外掺入 Sec。使用这种高度可操作的系统,我们还发现非 Sec 利用生物的核糖体不能支持 Sec 的掺入,并且一些 SECIS 元件的效率天然低于其他元件。鉴定出必需的因子集,这项工作消除了我们理解 Sec 掺入机制的一个重要障碍。