Unravelling the plasticity of substrate recognition by Staphylococcus aureus lysyl-tRNA synthetase and its implications for misacylation.

Jaykumar Jani, Jigneshkumar Mochi, Smit Shah, Apurba Das, Dhaval Patel, Gayathri Pananghat, Anju Pappachan
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Abstract

Transfer RNA (tRNA) misacylation is a widespread phenomenon that affects translational fidelity due to the incorporation of non-cognate amino acids into proteins. We investigated the structural basis for the misacylation of tRNALys by Staphylococcus aureus lysyl-tRNA synthetase (SaLysRS). Activity studies showed that SaLysRS misacylated tRNALys with methionine and arginine. In vivo studies and MALDI-TOF analysis revealed the utilisation of these mischarged tRNAs in protein translation, as deciphered from the incorporation of non-cognate methionine and arginine into proteins. The misincorporation was also detrimental to cell growth. The three-dimensional structure of SaLysRS with its cognate substrate lysine was resolved at 2.3 Å resolution, which revealed key residues and conserved motifs needed for substrate recognition. Structural and mutational analysis and molecular dynamics simulations identified Glu233, Tyr273 and Glu420 as crucial residues for both cognate and non-cognate ligand binding. These insights, well-supported by structural, biochemical and computational data, enhance our knowledge of the mechanisms underlying misacylation in tRNA synthetases and its implications for cell growth.

揭示金黄色葡萄球菌赖氨酸- trna合成酶识别底物的可塑性及其对mis酰化的影响。
转移RNA (tRNA)错酰化是一种普遍存在的现象,由于非同源氨基酸掺入蛋白质而影响翻译保真度。我们研究了金黄色葡萄球菌赖氨酸- trna合成酶(SaLysRS) mis酰化tRNALys的结构基础。活性研究表明,SaLysRS与蛋氨酸和精氨酸mis酰化tRNALys。体内研究和MALDI-TOF分析揭示了这些错误携带的trna在蛋白质翻译中的利用,这是通过将非同源的甲硫氨酸和精氨酸结合到蛋白质中来解读的。错误的掺入也对细胞生长有害。SaLysRS及其同源底物赖氨酸的三维结构以2.3 Å分辨率进行解析,揭示了底物识别所需的关键残基和保守基序。结构和突变分析以及分子动力学模拟表明,Glu233、Tyr273和Glu420是同源和非同源配体结合的关键残基。这些见解得到了结构、生化和计算数据的充分支持,增强了我们对tRNA合成酶mis酰化的机制及其对细胞生长的影响的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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