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具有多种结构特性的内在无序蛋白质变体的设计。

Design of intrinsically disordered protein variants with diverse structural properties.

作者信息

Pesce Francesco, Bremer Anne, Tesei Giulio, Hopkins Jesse B, Grace Christy R, Mittag Tanja, Lindorff-Larsen Kresten

机构信息

Structural Biology and NMR Laboratory, The Linderstrøm-Lang Centre for Protein Science, Department of Biology, University of Copenhagen, Copenhagen, Denmark.

Department of Structural Biology, St. Jude Children's Research Hospital, Memphis, TN 38105, USA.

出版信息

bioRxiv. 2023 Oct 24:2023.10.22.563461. doi: 10.1101/2023.10.22.563461.

Abstract

Intrinsically disordered proteins (IDPs) perform a wide range of functions in biology, suggesting that the ability to design IDPs could help expand the repertoire of proteins with novel functions. Designing IDPs with specific structural or functional properties has, however, been difficult, in part because determining accurate conformational ensembles of IDPs generally requires a combination of computational modelling and experiments. Motivated by recent advancements in efficient physics-based models for simulations of IDPs, we have developed a general algorithm for designing IDPs with specific structural properties. We demonstrate the power of the algorithm by generating variants of naturally occurring IDPs with different levels of compaction and that vary more than 100 fold in their propensity to undergo phase separation, even while keeping a fixed amino acid composition. We experimentally tested designs of variants of the low-complexity domain of hnRNPA1 and find high accuracy in our computational predictions, both in terms of single-chain compaction and propensity to undergo phase separation. We analyze the sequence features that determine changes in compaction and propensity to phase separate and find an overall good agreement with previous findings for naturally occurring sequences. Our general, physics-based method enables the design of disordered sequences with specified conformational properties. Our algorithm thus expands the toolbox for protein design to include also the most flexible proteins and will enable the design of proteins whose functions exploit the many properties afforded by protein disorder.

摘要

内在无序蛋白质(IDP)在生物学中发挥着广泛的功能,这表明设计IDP的能力有助于扩展具有新功能的蛋白质库。然而,设计具有特定结构或功能特性的IDP一直很困难,部分原因是确定IDP准确的构象集合通常需要计算建模和实验相结合。受近期用于IDP模拟的高效基于物理模型进展的启发,我们开发了一种用于设计具有特定结构特性的IDP的通用算法。我们通过生成具有不同紧密程度的天然存在的IDP变体来展示该算法的能力,这些变体在发生相分离的倾向方面变化超过100倍,同时保持固定的氨基酸组成。我们对hnRNPA1低复杂性结构域变体的设计进行了实验测试,发现在单链紧密程度和相分离倾向方面,我们的计算预测具有很高的准确性。我们分析了决定紧密程度变化和相分离倾向的序列特征,发现与之前关于天然存在序列的研究结果总体上吻合良好。我们基于物理的通用方法能够设计具有特定构象特性的无序序列。因此,我们的算法扩展了蛋白质设计的工具箱,使其也包括最灵活的蛋白质,并将能够设计出利用蛋白质无序所赋予的多种特性的蛋白质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20c6/10634714/134cb5b2f1a1/nihpp-2023.10.22.563461v1-f0001.jpg

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