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Trans-kingdom rescue of Gln-tRNA(Gln) synthesis in yeast cytoplasm and mitochondria

机译:跨王国拯救酵母细胞质和线粒体中Gln-tRNA(Gln)的合成

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摘要

Aminoacylation of transfer RNAGln (tRNAGln) is performed by distinct mechanisms in different kingdoms and represents the most diverged route of aminoacyl-tRNA synthesis found in nature. In Saccharomyces cerevisiae, cytosolic Gln-tRNAGln is generated by direct glutaminylation of tRNAGln by glutaminyl-tRNA synthetase (GlnRS), whereas mitochondrial Gln-tRNAGln is formed by an indirect pathway involving charging by a non-discriminating glutamyl-tRNA synthetase and the subsequent transamidation by a specific Glu-tRNAGln amidotransferase. Previous studies showed that fusion of a yeast non-specific tRNA-binding cofactor, Arc1p, to Escherichia coli GlnRS enables the bacterial enzyme to substitute for its yeast homologue in vivo. We report herein that the same fusion enzyme, upon being imported into mitochondria, substituted the indirect pathway for Gln-tRNAGln synthesis as well, despite significant differences in the identity determinants of E. coli and yeast cytosolic and mitochondrial tRNAGln isoacceptors. Fusion of Arc1p to the bacterial enzyme significantly enhanced its aminoacylation activity towards yeast tRNAGln isoacceptors in vitro. Our study provides a mechanism by which trans-kingdom rescue of distinct pathways of Gln-tRNAGln synthesis can be conferred by a single enzyme.
机译:转移RNAGln(tRNAGln)的氨基酰化作用是通过不同的机制在不同的王国进行的,代表了自然界中发现的最大的氨酰基-tRNA合成途径。在酿酒酵母中,通过谷氨酰胺基-tRNA合成酶(GlnRS)对tRNAGln进行直接谷氨酰化作用来生成胞质Gln-tRNAGln,而线粒体Gln-tRNAGln是通过间接途径形成的,该途径包括通过随后的非区别性谷氨酰胺基-tRNA合成酶进行充电通过特定的Glu-tRNAGln酰胺转移酶。先前的研究表明,酵母非特异性tRNA结合辅因子Arc1p与大肠杆菌GlnRS的融合使该细菌酶能够在体内替代其酵母同源物。我们在这里报告说,尽管大肠杆菌和酵母胞质和线粒体tRNAGln异构体的身份决定因素存在显着差异,但同一融合酶被导入线粒体后,也替代了Gln-tRNAGln合成的间接途径。 Arc1p与细菌酶的融合在体外显着增强了其对酵母tRNAGln同工酶的氨酰化活性。我们的研究提供了一种机制,通过这种机制,单一酶可以赋予Gln-tRNAGln合成不同途径跨王国拯救。

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