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生命领域中蛋白质同源寡聚体的图谱。

An atlas of protein homo-oligomerization across domains of life.

机构信息

Department of Chemical and Structural Biology, Weizmann Institute of Science, Rehovot, Israel.

Laboratory of Protein Design and Immunoengineering, École Polytechnique Fédérale de Lausanne and Swiss Institute of Bioinformatics, Lausanne, Switzerland.

出版信息

Cell. 2024 Feb 15;187(4):999-1010.e15. doi: 10.1016/j.cell.2024.01.022. Epub 2024 Feb 6.

Abstract

Protein structures are essential to understanding cellular processes in molecular detail. While advances in artificial intelligence revealed the tertiary structure of proteins at scale, their quaternary structure remains mostly unknown. We devise a scalable strategy based on AlphaFold2 to predict homo-oligomeric assemblies across four proteomes spanning the tree of life. Our results suggest that approximately 45% of an archaeal proteome and a bacterial proteome and 20% of two eukaryotic proteomes form homomers. Our predictions accurately capture protein homo-oligomerization, recapitulate megadalton complexes, and unveil hundreds of homo-oligomer types, including three confirmed experimentally by structure determination. Integrating these datasets with omics information suggests that a majority of known protein complexes are symmetric. Finally, these datasets provide a structural context for interpreting disease mutations and reveal coiled-coil regions as major enablers of quaternary structure evolution in human. Our strategy is applicable to any organism and provides a comprehensive view of homo-oligomerization in proteomes.

摘要

蛋白质结构对于从分子水平深入了解细胞过程至关重要。虽然人工智能的进步可以大规模揭示蛋白质的三级结构,但它们的四级结构仍然大部分未知。我们设计了一种基于 AlphaFold2 的可扩展策略,用于预测跨越生命之树的四个蛋白质组中的同源寡聚体组装。我们的结果表明,大约 45%的古菌蛋白质组和细菌蛋白质组以及两个真核蛋白质组的 20%形成同源寡聚物。我们的预测准确地捕获了蛋白质同源寡聚化,再现了兆道尔顿复合物,并揭示了数百种同源寡聚体类型,其中包括三种通过结构测定实验证实的类型。将这些数据集与组学信息整合在一起表明,大多数已知的蛋白质复合物是对称的。最后,这些数据集为解释疾病突变提供了结构背景,并揭示了卷曲螺旋区域是人类四级结构进化的主要促进因素。我们的策略适用于任何生物体,并提供了蛋白质组中同源寡聚化的全面视图。

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