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金属偶联折叠作为 Rad50 锌钩二聚体组装极端稳定性的驱动力。

Metal-coupled folding as the driving force for the extreme stability of Rad50 zinc hook dimer assembly.

机构信息

Department of Chemical Biology, Faculty of Biotechnology, University of Wrocław, Joliot-Curie 14a, 50-383 Wrocław, Poland.

Biological and Chemical Research Center, Faculty of Chemistry, University of Warsaw, Żwirki i Wigury 101, 02-089 Warsaw, Poland.

出版信息

Sci Rep. 2016 Nov 3;6:36346. doi: 10.1038/srep36346.

Abstract

The binding of metal ions at the interface of protein complexes presents a unique and poorly understood mechanism of molecular assembly. A remarkable example is the Rad50 zinc hook domain, which is highly conserved and facilitates the Zn-mediated homodimerization of Rad50 proteins. Here, we present a detailed analysis of the structural and thermodynamic effects governing the formation and stability (logK = 20.74) of this evolutionarily conserved protein assembly. We have dissected the determinants of the stability contributed by the small β-hairpin of the domain surrounding the zinc binding motif and the coiled-coiled regions using peptides of various lengths from 4 to 45 amino acid residues, alanine substitutions and peptide bond-to-ester perturbations. In the studied series of peptides, an >650 000-fold increase of the formation constant of the dimeric complex arises from favorable enthalpy because of the increased acidity of the cysteine thiols in metal-free form and the structural properties of the dimer. The dependence of the enthalpy on the domain fragment length is partially compensated by the entropic penalty of domain folding, indicating enthalpy-entropy compensation. This study facilitates understanding of the metal-mediated protein-protein interactions in which the metal ion is critical for the tight association of protein subunits.

摘要

金属离子在蛋白质复合物界面的结合呈现出一种独特且尚未被充分理解的分子组装机制。一个显著的例子是 Rad50 锌钩结构域,它高度保守,促进 Rad50 蛋白的 Zn 介导同源二聚化。在这里,我们对控制这种进化上保守的蛋白质组装形成和稳定性(logK=20.74)的结构和热力学效应进行了详细分析。我们使用长度为 4 到 45 个氨基酸残基的肽、丙氨酸取代和肽键到酯键的扰动,从该结构域围绕锌结合基序和卷曲螺旋区域的小 β-发夹结构来剖析稳定的决定因素。在所研究的肽系列中,由于金属自由形式中半胱氨酸巯基的增加酸度和二聚体的结构特性,二聚体复合物形成常数的增加幅度超过 650,000 倍,这归因于有利的焓。焓对结构域片段长度的依赖性部分被结构域折叠的熵罚所补偿,表明焓-熵补偿。这项研究有助于理解金属介导的蛋白质-蛋白质相互作用,其中金属离子对于蛋白质亚基的紧密结合至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e3d4/5093744/ebd81e786790/srep36346-f1.jpg

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