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本文引用的文献

1
Modulation of allosteric coupling by mutations: from protein dynamics and packing to altered native ensembles and function.变构偶联的突变调节:从蛋白质动力学和堆积到改变天然集合体和功能。
Curr Opin Struct Biol. 2019 Feb;54:1-9. doi: 10.1016/j.sbi.2018.09.004. Epub 2018 Sep 28.
2
Tunable order-disorder continuum in protein-DNA interactions.蛋白质-DNA 相互作用中的可调谐有序-无序连续体。
Nucleic Acids Res. 2018 Sep 28;46(17):8700-8709. doi: 10.1093/nar/gky732.
3
Entropic Control of an Excited Folded-Like Conformation in a Disordered Protein Ensemble.无序蛋白质聚集体中激发折叠构象的熵控制。
J Mol Biol. 2018 Aug 17;430(17):2688-2694. doi: 10.1016/j.jmb.2018.06.008. Epub 2018 Jun 7.
4
Promiscuous and Selective: How Intrinsically Disordered BH3 Proteins Interact with Their Pro-survival Partner MCL-1.混杂且有选择性:无规则 BH3 蛋白如何与其生存伙伴 MCL-1 相互作用。
J Mol Biol. 2018 Aug 3;430(16):2468-2477. doi: 10.1016/j.jmb.2018.04.004. Epub 2018 Apr 11.
5
Protein plasticity driven by disorder and collapse governs the heterogeneous binding of CytR to DNA.无序和崩溃驱动的蛋白质可塑性控制 CytR 与 DNA 的异质结合。
Nucleic Acids Res. 2018 May 4;46(8):4044-4053. doi: 10.1093/nar/gky176.
6
Collapse Transitions of Proteins and the Interplay Among Backbone, Sidechain, and Solvent Interactions.蛋白质的折叠转变以及主链、侧链和溶剂相互作用之间的相互影响。
Annu Rev Biophys. 2018 May 20;47:19-39. doi: 10.1146/annurev-biophys-070317-032838. Epub 2018 Jan 18.
7
Control of transcriptional activity by design of charge patterning in the intrinsically disordered RAM region of the Notch receptor.通过设计 Notch 受体无规则卷曲区域的电荷模式来控制转录活性。
Proc Natl Acad Sci U S A. 2017 Oct 31;114(44):E9243-E9252. doi: 10.1073/pnas.1706083114. Epub 2017 Oct 12.
8
A self-consistent structural perturbation approach for determining the magnitude and extent of allosteric coupling in proteins.一种用于确定蛋白质中变构偶联的大小和范围的自洽结构微扰方法。
Biochem J. 2017 Jul 6;474(14):2379-2388. doi: 10.1042/BCJ20170304.
9
A General Mechanism for the Propagation of Mutational Effects in Proteins.蛋白质中突变效应传播的一般机制。
Biochemistry. 2017 Jan 10;56(1):294-305. doi: 10.1021/acs.biochem.6b00798. Epub 2016 Dec 27.
10
A driving force for polypeptide and protein collapse.多肽和蛋白质折叠的驱动力。
Phys Chem Chem Phys. 2016 Dec 21;19(1):751-756. doi: 10.1039/c6cp07397b.

在无序蛋白质中实现工程化的有序性和协同性。

Engineering Order and Cooperativity in a Disordered Protein.

机构信息

Department of Biotechnology, Bhupat & Jyoti Mehta School of Biosciences , Indian Institute of Technology Madras , Chennai 600036 , India.

Department of Biotechnology , National Institute of Technology Warangal , Warangal 506004 , India.

出版信息

Biochemistry. 2019 May 14;58(19):2389-2397. doi: 10.1021/acs.biochem.9b00182. Epub 2019 Apr 30.

DOI:10.1021/acs.biochem.9b00182
PMID:31002232
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6542653/
Abstract

Structural disorder in proteins arises from a complex interplay between weak hydrophobicity and unfavorable electrostatic interactions. The extent to which the hydrophobic effect contributes to the unique and compact native state of proteins is, however, confounded by large compensation between multiple entropic and energetic terms. Here we show that protein structural order and cooperativity arise as emergent properties upon hydrophobic substitutions in a disordered system with non-intuitive effects on folding and function. Aided by sequence-structure analysis, equilibrium, and kinetic spectroscopic studies, we engineer two hydrophobic mutations in the disordered DNA-binding domain of CytR that act synergistically, but not in isolation, to promote structure, compactness, and stability. The double mutant, with properties of a fully ordered domain, exhibits weak cooperativity with a complex and rugged conformational landscape. The mutant, however, binds cognate DNA with an affinity only marginally higher than that of the wild type, though nontrivial differences are observed in the binding to noncognate DNA. Our work provides direct experimental evidence of the dominant role of non-additive hydrophobic effects in shaping the molecular evolution of order in disordered proteins and vice versa, which could be generalized to even folded proteins with implications for protein design and functional manipulation.

摘要

蛋白质结构的无序性源于弱疏水性和不利静电相互作用之间的复杂相互作用。然而,疏水力在多大程度上促进了蛋白质独特而紧凑的天然状态,这受到多个熵和能量项之间的大量补偿的影响。在这里,我们表明,在无序系统中进行疏水性取代时,蛋白质的结构有序性和协同性会作为涌现性质出现,对折叠和功能产生非直观的影响。通过序列-结构分析、平衡和动力学光谱研究,我们在 CytR 的无序 DNA 结合结构域中设计了两个疏水性突变,它们协同作用,但不是孤立作用,从而促进结构、紧凑性和稳定性。具有完全有序结构域特性的双突变体,其折叠具有弱协同性,构象景观复杂且崎岖不平。然而,与野生型相比,突变体与同源 DNA 的结合亲和力仅略有提高,尽管在与非同源 DNA 的结合中观察到了实质性差异。我们的工作提供了直接的实验证据,证明非加性疏水力在塑造无序蛋白质中有序的分子进化以及反之亦然方面起着主导作用,这可能会推广到甚至具有折叠结构的蛋白质,对蛋白质设计和功能操作具有重要意义。

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