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RosettaSurf—A surface-centric computational design approach

蛋白质设计 功能(生物学) 计算机科学 序列(生物学) 合理设计 蛋白质工程 静电学 模板 蛋白质结构预测 蛋白质结构 生物系统 计算生物学 生物 化学 物理化学 生物化学 遗传学 程序设计语言
作者
Andreas Scheck,Stéphane Rosset,Michaël Defferrard,Andreas Loukas,Jaume Bonet,Pierre Vandergheynst,Bruno E. Correia
出处
期刊:PLOS Computational Biology [Public Library of Science]
卷期号:18 (3): e1009178-e1009178 被引量:5
标识
DOI:10.1371/journal.pcbi.1009178
摘要

Proteins are typically represented by discrete atomic coordinates providing an accessible framework to describe different conformations. However, in some fields proteins are more accurately represented as near-continuous surfaces, as these are imprinted with geometric (shape) and chemical (electrostatics) features of the underlying protein structure. Protein surfaces are dependent on their chemical composition and, ultimately determine protein function, acting as the interface that engages in interactions with other molecules. In the past, such representations were utilized to compare protein structures on global and local scales and have shed light on functional properties of proteins. Here we describe RosettaSurf, a surface-centric computational design protocol, that focuses on the molecular surface shape and electrostatic properties as means for protein engineering, offering a unique approach for the design of proteins and their functions. The RosettaSurf protocol combines the explicit optimization of molecular surface features with a global scoring function during the sequence design process, diverging from the typical design approaches that rely solely on an energy scoring function. With this computational approach, we attempt to address a fundamental problem in protein design related to the design of functional sites in proteins, even when structurally similar templates are absent in the characterized structural repertoire. Surface-centric design exploits the premise that molecular surfaces are, to a certain extent, independent of the underlying sequence and backbone configuration, meaning that different sequences in different proteins may present similar surfaces. We benchmarked RosettaSurf on various sequence recovery datasets and showcased its design capabilities by generating epitope mimics that were biochemically validated. Overall, our results indicate that the explicit optimization of surface features may lead to new routes for the design of functional proteins.
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