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在生命早期,氨酰-tRNA 合成酶蛋白的分子进化。

Molecular evolution of aminoacyl tRNA synthetase proteins in the early history of life.

机构信息

Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Orig Life Evol Biosph. 2011 Dec;41(6):621-32. doi: 10.1007/s11084-011-9261-2. Epub 2011 Dec 27.

Abstract

Aminoacyl-tRNA synthetases (aaRS) consist of several families of functionally conserved proteins essential for translation and protein synthesis. Like nearly all components of the translation machinery, most aaRS families are universally distributed across cellular life, being inherited from the time of the Last Universal Common Ancestor (LUCA). However, unlike the rest of the translation machinery, aaRS have undergone numerous ancient horizontal gene transfers, with several independent events detected between domains, and some possibly involving lineages diverging before the time of LUCA. These transfers reveal the complexity of molecular evolution at this early time, and the chimeric nature of genomes within cells that gave rise to the major domains. Additionally, given the role of these protein families in defining the amino acids used for protein synthesis, sequence reconstruction of their pre-LUCA ancestors can reveal the evolutionary processes at work in the origin of the genetic code. In particular, sequence reconstructions of the paralog ancestors of isoleucyl- and valyl- RS provide strong empirical evidence that at least for this divergence, the genetic code did not co-evolve with the aaRSs; rather, both amino acids were already part of the genetic code before their cognate aaRSs diverged from their common ancestor. The implications of this observation for the early evolution of RNA-directed protein biosynthesis are discussed.

摘要

氨酰-tRNA 合成酶(aaRS)由几个功能保守的蛋白家族组成,对翻译和蛋白质合成至关重要。与翻译机器的几乎所有组件一样,大多数 aaRS 家族在细胞生命中普遍存在,是从最后一个共同祖先(LUCA)时期遗传下来的。然而,与翻译机器的其他部分不同,aaRS 经历了许多古老的水平基因转移,在域之间检测到了几个独立的事件,有些可能涉及 LUCA 之前分化的谱系。这些转移揭示了早期分子进化的复杂性,以及导致主要领域的细胞内基因组的嵌合性质。此外,鉴于这些蛋白家族在定义用于蛋白质合成的氨基酸方面的作用,对其 LUCA 前祖先的序列重建可以揭示遗传密码起源过程中的进化过程。特别是,异亮氨酰和缬氨酰 RS 的旁系同源物的序列重建为至少在这种分歧中提供了强有力的经验证据,即遗传密码并没有与 aaRS 共同进化;相反,在它们的同源 aaRS 从共同祖先分化之前,这两种氨基酸已经是遗传密码的一部分。讨论了这一观察结果对 RNA 指导的蛋白质生物合成早期进化的影响。

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