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Bacterial Aspartyl-tRNA Synthetase Has Glutamyl-tRNA Synthetase Activity

机译:细菌天冬氨酰-tRNA合成酶具有谷氨酰-tRNA合成酶活性

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摘要

The aminoacyl-tRNA synthetases (aaRSs) are well established as the translators of the genetic code, because their products, the aminoacyl-tRNAs, read codons to translate messenger RNAs into proteins. Consequently, deleterious errors by the aaRSs can be transferred into the proteome via misacylated tRNAs. Nevertheless, many microorganisms use an indirect pathway to produce Asn-tRNAAsn via Asp-tRNAAsn. This intermediate is produced by a non-discriminating aspartyl-tRNA synthetase (ND-AspRS) that has retained its ability to also generate Asp-tRNAAsp. Here we report the discovery that ND-AspRS and its discriminating counterpart, AspRS, are also capable of specifically producing Glu-tRNAGlu, without producing misacylated tRNAs like Glu-tRNAAsn, Glu-tRNAAsp, or Asp-tRNAGlu, thus maintaining the fidelity of the genetic code. Consequently, bacterial AspRSs have glutamyl-tRNA synthetase-like activity that does not contaminate the proteome via amino acid misincorporation.
机译:氨酰基-tRNA合成酶(aaRSs)已被很好地确立为遗传密码的翻译器,因为它们的产物氨酰基-tRNA读密码子以将信使RNA转化为蛋白质。因此,aaRS的有害错误可以通过错误酰化的tRNA转移到蛋白质组中。然而,许多微生物通过Asp-tRNA Asn 使用间接途径产生Asn-tRNA Asn 。该中间体是由非区分型天冬氨酰-tRNA合成酶(ND-AspRS)产生的,该酶仍保留了产生Asp-tRNA Asp 的能力。在这里,我们报告发现ND-AspRS及其区别对应物AspRS也能够特异性产生Glu-tRNA Glu ,而不会产生像Glu-tRNA Asn 这样的酰化tRNA。 ,Glu-tRNA Asp 或Asp-tRNA Glu ,从而保持了遗传密码的保真度。因此,细菌AspRS具有谷氨酰-tRNA合成酶样活性,不会通过氨基酸错误掺入污染蛋白质组。

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