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蛋白质相互作用亲和力和特异性的遗传结构。

The genetic architecture of protein interaction affinity and specificity.

机构信息

Friedrich Miescher Institute for Biomedical Research (FMI), Basel, Switzerland.

University of Basel, Basel, Switzerland.

出版信息

Nat Commun. 2024 Oct 14;15(1):8868. doi: 10.1038/s41467-024-53195-4.

Abstract

The encoding and evolution of specificity and affinity in protein-protein interactions is poorly understood. Here, we address this question by quantifying how all mutations in one protein, JUN, alter binding to all other members of a protein family, the 54 human basic leucine zipper transcription factors. We fit a global thermodynamic model to the data to reveal that most affinity changing mutations equally affect JUN's affinity to all its interaction partners. Mutations that alter binding specificity are relatively rare but distributed throughout the interaction interface. Specificity is determined both by features that promote on-target interactions and by those that prevent off-target interactions. Approximately half of the specificity-defining residues in JUN contribute both to promoting on-target binding and preventing off-target binding. Nearly all specificity-altering mutations in the interaction interface are pleiotropic, also altering affinity to all partners. In contrast, mutations outside the interface can tune global affinity without affecting specificity. Our results reveal the distributed encoding of specificity and affinity in an interaction interface and how coiled-coils provide an elegant solution to the challenge of optimizing both specificity and affinity in a large protein family.

摘要

蛋白质-蛋白质相互作用中特异性和亲和力的编码和进化理解得还很差。在这里,我们通过定量研究一个蛋白质 JUN 中的所有突变如何改变与蛋白质家族的所有其他成员(54 个人类碱性亮氨酸拉链转录因子)的结合来解决这个问题。我们拟合了一个全局热力学模型来解释数据,结果表明大多数改变亲和力的突变同等地影响 JUN 与所有相互作用伙伴的亲和力。改变结合特异性的突变相对较少,但分布在整个相互作用界面上。特异性由促进靶相互作用的特征和防止非靶相互作用的特征决定。JUN 中大约一半的特异性定义残基既促进靶结合,又防止非靶结合。相互作用界面上几乎所有改变特异性的突变都是多效的,也改变了与所有伙伴的亲和力。相比之下,界面外的突变可以在不影响特异性的情况下调整整体亲和力。我们的结果揭示了相互作用界面中特异性和亲和力的分布式编码,以及卷曲螺旋如何为在一个大蛋白质家族中优化特异性和亲和力提供了一个优雅的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a6f7/11479274/6be29d735cd1/41467_2024_53195_Fig1_HTML.jpg

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