Molecular Biophysics Unit, Indian Institute of Science, Bangalore, India.
PLoS One. 2012;7(2):e31445. doi: 10.1371/journal.pone.0031445. Epub 2012 Feb 22.
In eukaryotic organisms clathrin-coated vesicles are instrumental in the processes of endocytosis as well as intracellular protein trafficking. Hence, it is important to understand how these vesicles have evolved across eukaryotes, to carry cargo molecules of varied shapes and sizes. The intricate nature and functional diversity of the vesicles are maintained by numerous interacting protein partners of the vesicle system. However, to delineate functionally important residues participating in protein-protein interactions of the assembly is a daunting task as there are no high-resolution structures of the intact assembly available. The two cryoEM structures closely representing intact assembly were determined at very low resolution and provide positions of Cα atoms alone. In the present study, using the method developed by us earlier, we predict the protein-protein interface residues in clathrin assembly, taking guidance from the available low-resolution structures. The conservation status of these interfaces when investigated across eukaryotes, revealed a radial distribution of evolutionary constraints, i.e., if the members of the clathrin vesicular assembly can be imagined to be arranged in spherical manner, the cargo being at the center and clathrins being at the periphery, the detailed phylogenetic analysis of these members of the assembly indicated high-residue variation in the members of the assembly closer to the cargo while high conservation was noted in clathrins and in other proteins at the periphery of the vesicle. This points to the strategy adopted by the nature to package diverse proteins but transport them through a highly conserved mechanism.
在真核生物中,网格蛋白包被小泡在胞吞作用以及细胞内蛋白质运输过程中发挥重要作用。因此,了解这些小泡在真核生物中是如何进化的,对于运输具有不同形状和大小的货物分子非常重要。这些小泡的复杂性质和功能多样性是由许多小泡系统的相互作用蛋白伴侣维持的。然而,由于完整组装体的高分辨率结构不可用,因此,要确定参与组装体中蛋白质-蛋白质相互作用的功能重要残基是一项艰巨的任务。两个非常低分辨率的冷冻电镜结构代表了完整的组装体,仅提供了 Cα 原子的位置。在本研究中,我们使用我们之前开发的方法,从可用的低分辨率结构中获取指导,预测网格蛋白组装中的蛋白质-蛋白质界面残基。当在真核生物中研究这些界面的保守状态时,揭示了进化约束的径向分布,即,如果可以想象网格蛋白囊泡组装的成员以球形方式排列,那么货物位于中心,网格蛋白位于外围,那么对这些组装成员的详细系统发育分析表明,靠近货物的组装成员的残基变异较大,而在囊泡外围的网格蛋白和其他蛋白质中则有较高的保守性。这表明自然界采取了一种策略,即用高度保守的机制来包装不同的蛋白质,但运输它们。