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Structural modeling and mutational analysis of yeast eukaryotic translation initiation factor 5A reveal new critical residues and reinforce its involvement in protein synthesis

机译:酵母真核翻译起始因子5A的结构建模和突变分析揭示了新的关键残基并加强了其参与蛋白质合成的过程

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摘要

Eukaryotic translation initiation factor 5A (eIF5A) is a protein that is highly conserved and essential for cell viability. This factor is the only protein known to contain the unique and essential amino acid residue hypusine. This work focused on the structural and functional characterization of Saccharomyces cerevisiae eIF5A. The tertiary structure of yeast eIF5A was modeled based on the structure of its Leishmania mexicana homologue and this model was used to predict the structural localization of new site-directed and randomly generated mutations. Most of the 40 new mutants exhibited phenotypes that resulted from eIF-5A protein-folding defects. Our data provided evidence that the C-terminal α-helix present in yeast eIF5A is an essential structural element, whereas the eIF5A N-terminal 10 amino acid extension not present in archaeal eIF5A homologs, is not. Moreover, the mutants containing substitutions at or in the vicinity of the hypusine modification site displayed nonviable or temperature-sensitive phenotypes and were defective in hypusine modification. Interestingly, two of the temperature-sensitive strains produced stable mutant eIF5A proteins – eIF5AK56A and eIF5AQ22H,L93F – and showed defects in protein synthesis at the restrictive temperature. Our data revealed important structural features of eIF5A that are required for its vital role in cell viability and underscored an essential function of eIF5A in the translation step of gene expression.
机译:真核翻译起始因子5A(eIF5A)是高度保守的蛋白,对于细胞生存力至关重要。该因子是已知唯一包含独特且必不可少的氨基酸残基hy素的蛋白质。这项工作的重点是酿酒酵母eIF5A的结构和功能表征。酵母eIF5A的三级结构是基于其墨西哥利什曼原虫同源基因的结构建模的,并且该模型用于预测新定点突变和随机产生的突变的结构定位。 40个新突变体中的大多数表现出由eIF-5A蛋白折叠缺陷引起的表型。我们的数据提供了证据,即酵母eIF5A中存在的C末端α-螺旋是必不可少的结构元件,而古细菌eIF5A同源物中不存在的eIF5A N末端10个氨基酸延伸不是。此外,在酪氨酸修饰位点处或附近含有取代基的突变体表现出不可行的或对温度敏感的表型,并且在酪氨酸修饰中存在缺陷。有趣的是,其中两个对温度敏感的菌株产生稳定的突变eIF5A蛋白– eIF5A K56A 和eIF5A Q22H,L93F –并在限制性温度下显示出蛋白质合成方面的缺陷。我们的数据揭示了eIF5A在细胞生存中的重要作用所必需的重要结构特征,并强调了eIF5A在基因表达的翻译步骤中的基本功能。

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