首页> 外文期刊>Proteins: Structure, Function, and Genetics >Shelling the Voronoi interface of protein-protein complexes reveals patterns of residue conservation, dynamics, and composition.
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Shelling the Voronoi interface of protein-protein complexes reveals patterns of residue conservation, dynamics, and composition.

机译:剥夺蛋白质-蛋白质复合物的Voronoi界面揭示了残基保守性,动力学和组成的模式。

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The accurate description and analysis of protein-protein interfaces remains a challenging task. Traditional definitions, based on atomic contacts or changes in solvent accessibility, tend to over- or underpredict the interface itself and cannot discriminate active from less relevant parts. We here extend a fast, parameter-free and purely geometric definition of protein interfaces and introduce the shelling order of Voronoi facets as a novel measure for an atom's depth inside the interface. Our analysis of 54 protein-protein complexes reveals a strong correlation between Voronoi Shelling Order (VSO) and water dynamics. High Voronoi Shelling Orders coincide with residues that were found shielded from bulk water fluctuations in a recent molecular dynamics study. Yet, VSO predicts such "dry" residues without consideration of forcefields or dynamics at a dramatically reduced cost. The interface center is enriched in hydrophobic residues. Yet, this hydrophobic centering is not universal and does not mirror the far stronger geometric bias of water fluxes. The seemingly complex water dynamics at protein interfaces appears thus largely controlled by geometry. Sequence analysis supports the functional relevance of dry residues and residues with high VSO, both of which tend to be more conserved. On closer inspection, the spatial distribution of conservation argues against the arbitrary dissection into core or rim and thus refines previous results. Voronoi Shelling Order reveals clear geometric patterns in protein interface composition, function and dynamics and facilitates the comparative analysis of protein-protein interactions.
机译:蛋白质-蛋白质界面的准确描述和分析仍然是一项艰巨的任务。基于原子接触或溶剂可及性变化的传统定义往往会过高或过低地预测界面本身,并且无法将活性成分与不太相关的部分区分开。我们在这里扩展了蛋白质界面的快速,无参数且纯粹的几何定义,并介绍了Voronoi晶面的脱壳顺序,以此作为测量界面内原子深度的一种新颖方法。我们对54种蛋白质-蛋白质复合物的分析揭示了Voronoi Shelling Order(VSO)与水动力学之间的强烈相关性。高Voronoi脱壳顺序与最近进行的分子动力学研究中发现的不受大量水波动影响的残留物重合。但是,VSO可以在不考虑力场或动力学的情况下预测此类“干燥”残留物,从而大大降低了成本。界面中心富含疏水残基。然而,这种疏水定心不是普遍的,并且不能反映出水通量的更强的几何偏斜。因此,蛋白质界面上看似复杂的水动力学似乎主要受几何形状控制。序列分析支持干残基和高VSO残基的功能相关性,这两种残基往往更保守。通过仔细检查,养护的空间分布会反对对核心或边缘的任意解剖,从而完善以前的结果。 Voronoi脱壳顺序揭示了蛋白质界面组成,功能和动力学的清晰几何图案,并促进了蛋白质-蛋白质相互作用的比较分析。

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