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首页> 外文期刊>Nucleic Acids Research >Identification of residues required for stalled-ribosome rescue in the codon-independent release factor YaeJ
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Identification of residues required for stalled-ribosome rescue in the codon-independent release factor YaeJ

机译:鉴定不依赖密码子的释放因子YaeJ中停滞的核糖体拯救所需的残基

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摘要

The YaeJ protein is a codon-independent release factor with peptidyl-tRNA hydrolysis (PTH) activity, and functions as a stalled-ribosome rescue factor in Escherichia coli. To identify residues required for YaeJ function, we performed mutational analysis for in vitro PTH activity towards rescue of ribosomes stalled on a non-stop mRNA, and for ribosome-binding efficiency. We focused on residues conserved among bacterial YaeJ proteins. Additionally, we determined the solution structure of the GGQ domain of YaeJ from E. coli using nuclear magnetic resonance spectroscopy. YaeJ and a human homolog, ICT1, had similar levels of PTH activity, despite various differences in sequence and structure. While no YaeJ-specific residues important for PTH activity occur in the structured GGQ domain, Arg118, Leu119, Lys122, Lys129 and Arg132 in the following C-terminal extension were required for PTH activity. All of these residues are completely conserved among bacteria. The equivalent residues were also found in the C-terminal extension of ICT1, allowing an appropriate sequence alignment between YaeJ and ICT1 proteins from various species. Single amino acid substitutions for each of these residues significantly decreased ribosome-binding efficiency. These biochemical findings provide clues to understanding how YaeJ enters the A-site of stalled ribosomes.
机译:YaeJ蛋白是具有肽基-tRNA水解(PTH)活性的不依赖密码子的释放因子,并在大肠杆菌中充当失速的核糖体拯救因子。为了鉴定YaeJ功能所需的残基,我们对体外PTH活性进行了突变分析,以帮助停滞在不停mRNA上的核糖体以及核糖体结合效率。我们专注于细菌YaeJ蛋白中保守的残基。此外,我们使用核磁共振波谱法确定了YaeJ大肠杆菌GGQ域的溶液结构。 YaeJ和人类同系物ICT1具有相似的PTH活性水平,尽管其序列和结构存在多种差异。尽管在结构化的GGQ域中没有重要的YaeJ特异性残基发生在PTH活性中,但PTH活性需要以下C端延伸的Arg118,Leu119,Lys122,Lys129和Arg132。所有这些残留物在细菌中是完全保守的。在ICT1的C末端延伸中也发现了相同的残基,从而使YaeJ和来自各种物种的ICT1蛋白之间具有适当的序列比对。这些残基中的每一个的单个氨基酸取代显着降低了核糖体结合效率。这些生化发现为了解YaeJ如何进入停滞的核糖体A位点提供了线索。

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