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Characterization of the SECIS binding protein 2 complex required for the co-translational insertion of selenocysteine in mammals

机译:硒代半胱氨酸在哺乳动物中共翻译插入所需的SECIS结合蛋白2复合物的表征

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摘要

Selenocysteine is incorporated into at least 25 human proteins by a complex mechanism that is a unique modification of canonical translation elongation. Selenocysteine incorporation requires the concerted action of a kink-turn structural RNA (SECIS) element in the 3′ untranslated region of each selenoprotein mRNA, a selenocysteine-specific translation elongation factor (eEFSec) and a SECIS binding protein (SBP2). Here, we analyze the molecular context in which SBP2 functions. Contrary to previous findings, a combination of gel filtration chromatography and co-purification studies demonstrates that SBP2 does not self-associate. However, SBP2 is found to be quantitatively associated with ribosomes. Interestingly, a wild-type but not mutant SECIS element is able to effectively compete with the SBP2 ribosome interaction, indicating that SBP2 cannot simultaneously interact with the ribosome and the SECIS element. This data also supports the hypothesis that SBP2 interacts with one or more kink turns on 28S rRNA. Based on these results, we propose a revised model for selenocysteine incorporation where SBP2 remains ribosome bound except during selenocysteine delivery to the ribosomal A-site.
机译:硒代半胱氨酸通过一种复杂的机制被整合到至少25种人类蛋白质中,该机制是经典翻译延伸的独特修饰。硒代半胱氨酸的掺入需要每个硒蛋白mRNA的3'非翻译区的纽结结构RNA(SECIS)元件,硒代半胱氨酸特异性翻译延伸因子(eEFSec)和SECIS结合蛋白(SBP2)的协同作用。在这里,我们分析了SBP2在其中起作用的分子环境。与以前的发现相反,凝胶过滤色谱法和共纯化研究的结合表明SBP2不能自缔合。然而,发现SBP2与核糖体定量相关。有趣的是,野生型但不是突变型SECIS元件能够与SBP2核糖体相互作用有效竞争,这表明SBP2无法同时与核糖体和SECIS元件相互作用。该数据还支持以下假设:SBP2与28S rRNA的一个或多个扭折序列相互作用。根据这些结果,我们提出了一种硒半胱氨酸掺入的修订模型,其中,在将硒代半胱氨酸递送至核糖体A位点期间,SBP2仍与核糖体结合。

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