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A single amino acid change of translation termination factor eRF1 switches between bipotent and omnipotent stop-codon specificity

机译:翻译终止因子eRF1的单个氨基酸变化在双能和全能终止密码子特异性之间切换

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摘要

In eukaryotes a single class-1 translation termination factor eRF1 decodes the three stop codons: UAA, UAG and UGA. Some ciliates, like Euplotes, have a variant code, and here eRF1s exhibit UAR-only specificity, whereas UGA is reassigned as a sense codon. Since eukaryote eRF1 stop-codon recognition is associated with its N-terminal domain, structural features should exist in the N domain of ciliate eRF1s that restrict their stop-codon specificity. Using an in vitro reconstituted eukaryotic translation system we demonstrate here that a chimeric eRF1 composed of the N domain of Euplotes aediculatus eRF1 fused to the MC domains of human eRF1 exhibits UAR-only specificity. Functional analysis of eRF1 chimeras constructed by swapping Euplotes N domain sequences with the cognate regions from human eRF1 as well as site-directed mutagenesis of human eRF1 highlighted the crucial role of the alanine residue in position 70 of E. aediculatus eRF1 in restricting UGA decoding. Switching the UAR-only specificity of E. aediculatus eRF1 to omnipotent mode is due to a single point mutation. Furthermore, we examined the influence of eRF3 on the ability of chimeric and mutant eRF1s to induce peptide release in response to different stop codons.
机译:在真核生物中,单个1类翻译终止因子eRF1解码三个终止密码子:UAA,UAG和UGA。一些纤毛虫,例如Euplotes,具有变体代码,在这里eRF1表现出仅UAR的特异性,而UGA被重新分配为有义密码子。由于真核生物eRF1终止密码子识别与其N末端域相关联,因此纤毛虫eRF1的N域中应存在结构特征,这限制了它们的终止密码子特异性。使用体外重组的真核翻译系统,我们在这里证明了由融合了人eRF1的MC结构域的大叶古猿eRF1的N结构域组成的嵌合eRF1仅表现出UAR特异性。通过将Euplotes N结构域序列与人eRF1的同源区域交换而构建的eRF1嵌合体的功能分析,以及对人eRF1的定点诱变,突显了ed。aediculatus eRF1 70位丙氨酸残基在限制UGA解码中的关键作用。将单株大肠杆菌eRF1的仅UAR特异性切换为全能模式是由于单点突变。此外,我们检查了eRF3对嵌合和突变eRF1s响应不同终止密码子诱导肽释放的能力的影响。

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