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Water-mediated ribonucleotide–amino acid pairs and higher-order structures at the RNA–protein interface: analysis of the crystal structure database and a topological classification

机译:水介导的核糖核苷酸-氨基酸对和 RNA-蛋白质界面的高阶结构:晶体结构数据库分析和拓扑分类

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摘要

Water is essential for the formation, stability and function of RNA–protein complexes. To delineate the structural role of water molecules in shaping the interactions between RNA and proteins, we comprehensively analyzed a dataset of 329 crystal structures of these complexes to identify water-mediated hydrogen-bonded contacts at RNA–protein interface. Our survey identified a total of 4963 water bridges. We then employed a graph theory-based approach to present a robust classification scheme, encompassing triplets, quartets and quintet bridging topologies, each further delineated into sub-topologies. The frequency of water bridges within each topology decreases with the increasing degree of water node, with simple triplet water bridges outnumbering the higher-order topologies. Overall, this analysis demonstrates the variety of water-mediated interactions and highlights the importance of water as not only the medium but also the organizing principle underlying biomolecular interactions. Further, our study emphasizes the functional significance of water-mediated interactions in RNA–protein complexes, and paving the way for exploring how these interactions operate in complex biological environments. Altogether, this understanding not only enhances insights into biomolecular dynamics but also informs the rational design of RNA–protein complexes, providing a framework for potential applications in biotechnology and therapeutics. All the scripts, and data are available at https://github.com/PSCPU/waterbridges.
机译:水对于 RNA-蛋白质复合物的形成、稳定性和功能至关重要。为了描述水分子在塑造 RNA 和蛋白质之间相互作用中的结构作用,我们全面分析了这些复合物的 329 个晶体结构的数据集,以识别 RNA-蛋白质界面处水介导的氢键接触。我们的调查共确定了 4963 座水桥。然后,我们采用基于图论的方法来提出一个强大的分类方案,包括三元组、四元组和五元组桥接拓扑,每个拓扑都进一步细分为子拓扑。每个拓扑中水桥的频率随着水节点程度的增加而降低,简单的三元水桥的数量超过了高阶拓扑。总体而言,该分析展示了水介导的相互作用的多样性,并强调了水不仅作为介质的重要性,而且作为生物分子相互作用的组织原理。此外,我们的研究强调了水介导的相互作用在 RNA-蛋白质复合物中的功能意义,并为探索这些相互作用如何在复杂的生物环境中运作铺平了道路。总而言之,这种理解不仅增强了对生物分子动力学的见解,还为 RNA-蛋白质复合物的合理设计提供了信息,为生物技术和治疗学的潜在应用提供了框架。所有脚本和数据都可以在 https://github.com/PSCPU/waterbridges 上获得。

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