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细菌物种间翻译起始机制的多样性受环境条件和生长需求驱动。

Diversity of Translation Initiation Mechanisms across Bacterial Species Is Driven by Environmental Conditions and Growth Demands.

作者信息

Hockenberry Adam J, Stern Aaron J, Amaral Luís A N, Jewett Michael C

机构信息

Department of Chemical and Biological Engineering, Northwestern University, Evanston, IL, USA.

Interdisciplinary Program in Biological Sciences, Northwestern University, Evanston, IL, USA.

出版信息

Mol Biol Evol. 2018 Mar 1;35(3):582-592. doi: 10.1093/molbev/msx310.

Abstract

The Shine-Dalgarno (SD) sequence motif is frequently found upstream of protein coding genes and is thought to be the dominant mechanism of translation initiation used by bacteria. Experimental studies have shown that the SD sequence facilitates start codon recognition and enhances translation initiation by directly interacting with the highly conserved anti-SD sequence on the 30S ribosomal subunit. However, the proportion of SD-led genes within a genome varies across species and the factors governing this variation in translation initiation mechanisms remain largely unknown. Here, we conduct a phylogenetically informed analysis and find that species capable of rapid growth contain a higher proportion of SD-led genes throughout their genomes. We show that SD sequence utilization covaries with a suite of genomic features that are important for efficient translation initiation and elongation. In addition to these endogenous genomic factors, we further show that exogenous environmental factors may influence the evolution of translation initiation mechanisms by finding that thermophilic species contain significantly more SD-led genes than mesophiles. Our results demonstrate that variation in translation initiation mechanisms across bacterial species is predictable and is a consequence of differential life-history strategies related to maximum growth rate and environmental-specific constraints.

摘要

夏因-达尔加诺(SD)序列基序经常出现在蛋白质编码基因的上游,被认为是细菌用于翻译起始的主要机制。实验研究表明,SD序列通过与30S核糖体亚基上高度保守的反SD序列直接相互作用,促进起始密码子的识别并增强翻译起始。然而,基因组中由SD引导的基因比例在不同物种间存在差异,而控制这种翻译起始机制变化的因素在很大程度上仍不为人知。在此,我们进行了一项系统发育分析,发现能够快速生长的物种在其整个基因组中含有更高比例的由SD引导的基因。我们表明,SD序列的利用与一系列对高效翻译起始和延伸很重要的基因组特征共同变化。除了这些内源性基因组因素外,我们还进一步表明,通过发现嗜热物种比嗜温物种含有显著更多由SD引导的基因,外源性环境因素可能影响翻译起始机制的进化。我们的结果表明,细菌物种间翻译起始机制的变化是可预测的,并且是与最大生长速率和环境特定限制相关的不同生活史策略的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d19e/5850609/a978f58bde68/msx310f1.jpg

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