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Nuclease sensitive element binding protein 1 associates with the selenocysteine insertion sequence and functions in mammalian selenoprotein translation

机译:核酸酶敏感元件结合蛋白1与硒代半胱氨酸插入序列结合并在哺乳动物硒蛋白翻译中起作用

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摘要

Biosynthesis of selenium-containing proteins requires insertion of the unusual amino acid selenocysteine by alternative translation of a UGA codon, which ordinarily serves as a stop codon. In eukaryotes, selenoprotein translation depends upon one or more selenocysteine insertion sequence (SECIS) elements located in the 3\u27-untranslated region of the mRNA, as well as several SECIS-binding proteins. Our laboratory has previously identified nuclease sensitive element binding protein 1 (NSEP1) as another SECIS-binding protein, but evidence has been presented both for and against its role in SECIS binding in vivo and in selenoprotein translation. Our current studies sought to resolve this controversy, first by investigating whether NSEP1 interacts closely with SECIS elements within intact cells. After reversible in vivo cross-linking and ribonucleoprotein immunoprecipitation, mRNAs encoding two glutathione peroxidase family members co-precipitated with NSEP1 in both human and rat cell lines. Co-immunoprecipitation of an epitope-tagged GPX1 construct depended upon an intact SECIS element in its 3\u27-untranslated region. To test the functional importance of this interaction on selenoprotein translation, we used small inhibitory RNAs to reduce the NSEP1 content of tissue culture cells and then examined the effect of that reduction on the activity of a SECIS-dependent luciferase reporter gene for which expression depends upon readthrough of a UGA codon. Co-transfection of small inhibitory RNAs directed against NSEP1 decreased its expression by approximately 50% and significantly reduced luciferase activity. These studies demonstrate that NSEP1 is an authentic SECIS binding protein that is structurally associated with the selenoprotein translation complex and functionally involved in the translation of selenoproteins in mammalian cells.
机译:含硒蛋白的生物合成需要通过交替翻译通常用作终止密码子的UGA密码子来插入不寻常的氨基酸硒代半胱氨酸。在真核生物中,硒蛋白的翻译取决于位于mRNA 3'u27非翻译区的一个或多个硒代半胱氨酸插入序列(SECIS)元件,以及几种SECIS结合蛋白。我们的实验室先前已将核酸酶敏感元件结合蛋白1(NSEP1)鉴定为另一种SECIS结合蛋白,但已证明其在体内SECIS结合和硒蛋白翻译中的作用及其作用的证据均存在。我们当前的研究试图通过首先研究NSEP1是否与完整细胞内的SECIS元件紧密相互作用来解决这一争议。在可逆的体内交联和核糖核蛋白免疫沉淀后,编码两个谷胱甘肽过氧化物酶家族成员的mRNA与人和大鼠细胞系中的NSEP1共沉淀。带表位标签的GPX1构建体的共免疫沉淀取决于其3 \ u27-非翻译区中完整的SECIS元件。为了测试这种相互作用对硒蛋白翻译的功能重要性,我们使用了小的抑制性RNA来减少组织培养细胞中NSEP1的含量,然后研究了这种减少对依赖于SECIS的荧光素酶报道基因表达的活性的影响。 UGA密码子的通读。针对NSEP1的小抑制性RNA的共转染将其表达降低了约50%,并显着降低了萤光素酶的活性。这些研究表明,NSEP1是一种真实的SECIS结合蛋白,在结构上与硒蛋白翻译复合物相关,并在功能上参与了哺乳动物细胞中硒蛋白的翻译。

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