Suppr超能文献

残基水平接触的模块化组织塑造了核糖体蛋白中单个氨基酸位点的选择压力。

Modular Organization of Residue-Level Contacts Shapes the Selection Pressure on Individual Amino Acid Sites of Ribosomal Proteins.

机构信息

Department of Biophysics, Molecular Biology and Bioinformatics, University of Calcutta, Kolkata, India.

Center of Excellence in Systems Biology and Biomedical Engineering (TEQIP Phase-II), University of Calcutta, Kolkata, India.

出版信息

Genome Biol Evol. 2017 Apr 1;9(4):916-931. doi: 10.1093/gbe/evx036.

Abstract

Understanding the molecular evolution of macromolecular complexes in the light of their structure, assembly, and stability is of central importance. Here, we address how the modular organization of native molecular contacts shapes the selection pressure on individual residue sites of ribosomal complexes. The bacterial ribosomal complex is represented as a residue contact network where nodes represent amino acid/nucleotide residues and edges represent their van der Waals interactions. We find statistically overrepresented native amino acid-nucleotide contacts (OaantC, one amino acid contacts one or multiple nucleotides, internucleotide contacts are disregarded). Contact number is defined as the number of nucleotides contacted. Involvement of individual amino acids in OaantCs with smaller contact numbers is more random, whereas only a few amino acids significantly contribute to OaantCs with higher contact numbers. An investigation of structure, stability, and assembly of bacterial ribosome depicts the involvement of these OaantCs in diverse biophysical interactions stabilizing the complex, including high-affinity protein-RNA contacts, interprotein cooperativity, intersubunit bridge, packing of multiple ribosomal RNA domains, etc. Amino acid-nucleotide constituents of OaantCs with higher contact numbers are generally associated with significantly slower substitution rates compared with that of OaantCs with smaller contact numbers. This evolutionary rate heterogeneity emerges from the strong purifying selection pressure that conserves the respective amino acid physicochemical properties relevant to the stabilizing interaction with OaantC nucleotides. An analysis of relative molecular orientations of OaantC residues and their interaction energetics provides the biophysical ground of purifying selection conserving OaantC amino acid physicochemical properties.

摘要

理解大分子复合物在结构、组装和稳定性方面的分子进化具有核心重要性。在这里,我们探讨了天然分子接触的模块化组织如何影响核糖体复合物中单个残基位点的选择压力。细菌核糖体复合物表示为残基接触网络,其中节点代表氨基酸/核苷酸残基,边缘代表它们的范德华相互作用。我们发现统计上过度表示的天然氨基酸-核苷酸接触(OaantC,一个氨基酸接触一个或多个核苷酸,不考虑核苷酸之间的接触)。接触数定义为接触的核苷酸数量。参与具有较小接触数的 OaantC 的单个氨基酸更随机,而只有少数氨基酸对具有较高接触数的 OaantC 有显著贡献。对细菌核糖体的结构、稳定性和组装的研究表明,这些 OaantC 参与了多种生物物理相互作用,稳定了复合物,包括高亲和力的蛋白质-RNA 接触、蛋白质间的协同作用、亚基间桥、多个核糖体 RNA 结构域的组装等。具有较高接触数的 OaantC 的氨基酸-核苷酸组成部分通常与具有较小接触数的 OaantC 相比,其取代率显著较慢。这种进化率异质性源于强烈的纯化选择压力,这种压力保守了与 OaantC 核苷酸具有稳定相互作用的相关氨基酸的物理化学性质。对 OaantC 残基的相对分子取向和相互作用能的分析为保守 OaantC 氨基酸物理化学性质的纯化选择提供了生物物理基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/21da/5388290/9f0fd078ce7d/evx036f1.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验