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Assembly constraints drive co-evolution among ribosomal constituents

机译:装配约束驱动核糖体成分之间的共同进化

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Ribosome biogenesis, a central and essential cellular process, occurs through sequential association and mutual co-folding of protein-RNA constituents in a well-defined assembly pathway. Here, we construct a network of co-evolving nucleotide/amino acid residues within the ribosome and demonstrate that assembly constraints are strong predictors of co-evolutionary patterns. Predictors of co-evolution include a wide spectrum of structural reconstitution events, such as cooperativity phenomenon, protein-induced rRNA reconstitutions, molecular packing of different rRNA domains, protein-rRNA recognition, etc. A correlation between folding rate of small globular proteins and their topological features is known. We have introduced an analogous topological characteristic for co-evolutionary network of ribosome, which allows us to differentiate between rRNA regions subjected to rapid reconstitutions from those hindered by kinetic traps. Furthermore, co-evolutionary patterns provide a biological basis for deleterious mutation sites and further allow prediction of potential antibiotic targeting sites. Understanding assembly pathways of multicomponent macromolecules remains a key challenge in biophysics. Our study provides a 'proof of concept' that directly relates co-evolution to biophysical interactions during multicomponent assembly and suggests predictive power to identify candidates for critical functional interactions as well as for assembly-blocking antibiotic target sites.
机译:核糖体生物发生是一个重要的核心细胞过程,通过蛋白质-RNA成分的顺序缔合和相互共折叠以明确的组装途径发生。在这里,我们构建了核糖体中共同进化的核苷酸/氨基酸残基的网络,并证明装配约束是共同进化模式的强力预测因子。协同进化的预测因素包括广泛的结构重组事件,例如协同现象,蛋白质诱导的rRNA重组,不同rRNA结构域的分子堆积,蛋白质-rRNA识别等。小球蛋白的折叠率与其相关性之间存在相关性拓扑特征是已知的。我们为核糖体的共同进化网络引入了类似的拓扑特征,这使我们能够区分经历快速重组的rRNA区域与受动态陷阱阻碍的rRNA区域。此外,共进化模式为有害突变位点提供了生物学基础,并进一步预测了潜在的抗生素靶向位点。了解多组分大分子的组装途径仍然是生物物理学中的关键挑战。我们的研究提供了一个“概念证明”,将“共进化”与多组分组装过程中的生物物理相互作用直接相关,并提出了预测能力,以识别关键功能相互作用的候选物以及阻止组装抗生素的靶位点。

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