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蛋白质-蛋白质界面的特异性:局部动力学指导效应半胱天冬酶的底物识别

Specificity of a protein-protein interface: local dynamics direct substrate recognition of effector caspases.

作者信息

Fuchs Julian E, von Grafenstein Susanne, Huber Roland G, Wallnoefer Hannes G, Liedl Klaus R

机构信息

Institute of General, Inorganic and Theoretical Chemistry, Center for Molecular Biosciences Innsbruck (CMBI), University of Innsbruck, Innrain 80/82, A-6020, Innsbruck, Austria.

出版信息

Proteins. 2014 Apr;82(4):546-55. doi: 10.1002/prot.24417. Epub 2013 Oct 19.

DOI:10.1002/prot.24417
PMID:24085488
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4282588/
Abstract

Proteases are prototypes of multispecific protein-protein interfaces. Proteases recognize and cleave protein and peptide substrates at a well-defined position in a substrate binding groove and a plethora of experimental techniques provide insights into their substrate recognition. We investigate the caspase family of cysteine proteases playing a key role in programmed cell death and inflammation, turning caspases into interesting drug targets. Specific ligand binding to one particular caspase is difficult to achieve, as substrate specificities of caspase isoforms are highly similar. In an effort to rationalize substrate specificity of two closely related caspases, we investigate the substrate promiscuity of the effector Caspases 3 and 7 by data mining (cleavage entropy) and by molecular dynamics simulations. We find a strong correlation between binding site rigidity and substrate readout for individual caspase subpockets explaining more stringent substrate readout of Caspase 7 via its narrower conformational space. Caspase 3 subpockets S3 and S4 show elevated local flexibility explaining the more unspecific substrate readout of that isoform in comparison to Caspase 7. We show by in silico exchange mutations in the S3 pocket of the proteases that a proline residue in Caspase 7 contributes to the narrowed conformational space of the binding site. These findings explain the substrate specificities of caspases via a mechanism of conformational selection and highlight the crucial importance of binding site local dynamics in substrate recognition of proteases. Proteins 2014; 82:546-555. © 2013 Wiley Periodicals, Inc.

摘要

蛋白酶是多特异性蛋白质 - 蛋白质界面的典型代表。蛋白酶在底物结合凹槽中的特定位置识别并切割蛋白质和肽底物,大量实验技术为其底物识别提供了深入见解。我们研究在程序性细胞死亡和炎症中起关键作用的半胱氨酸蛋白酶半胱天冬酶家族,这使得半胱天冬酶成为有趣的药物靶点。由于半胱天冬酶同工型的底物特异性高度相似,因此很难实现特定配体与某一特定半胱天冬酶的结合。为了阐明两种密切相关的半胱天冬酶的底物特异性,我们通过数据挖掘(切割熵)和分子动力学模拟研究了效应半胱天冬酶3和7的底物混杂性。我们发现单个半胱天冬酶亚口袋的结合位点刚性与底物读出之间存在强烈相关性,这解释了半胱天冬酶7通过其更窄的构象空间实现更严格的底物读出。半胱天冬酶3的亚口袋S3和S4表现出更高的局部灵活性,这解释了与半胱天冬酶7相比,该同工型的底物读出更不具特异性。我们通过蛋白酶S3口袋中的计算机交换突变表明,半胱天冬酶7中的一个脯氨酸残基有助于结合位点构象空间变窄。这些发现通过构象选择机制解释了半胱天冬酶的底物特异性,并突出了结合位点局部动力学在蛋白酶底物识别中的至关重要性。《蛋白质》2014年;82:546 - 555。©2013威利期刊公司

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2
Towards a better understanding of the specificity of protein-protein interaction.旨在深入理解蛋白质-蛋白质相互作用的特异性。
J Mol Recognit. 2012 Nov;25(11):604-15. doi: 10.1002/jmr.2219.
3
Global identification of peptidase specificity by multiplex substrate profiling.通过多重底物谱分析进行肽酶特异性的全局鉴定。
Proteins. 2020 Oct;88(10):1303-1318. doi: 10.1002/prot.25950. Epub 2020 Jun 11.
4
Electrostatic recognition in substrate binding to serine proteases.静电识别在丝氨酸蛋白酶与底物结合中的作用。
J Mol Recognit. 2018 Oct;31(10):e2727. doi: 10.1002/jmr.2727. Epub 2018 May 22.
5
Determinants of Macromolecular Specificity from Proteomics-Derived Peptide Substrate Data.源自蛋白质组学的肽底物数据的大分子特异性决定因素
Curr Protein Pept Sci. 2017;18(9):905-913. doi: 10.2174/1389203717666160724211231.
6
Localization of Millisecond Dynamics: Dihedral Entropy from Accelerated MD.毫秒级动力学的定位:加速分子动力学中的二面角熵
J Chem Theory Comput. 2016 Aug 9;12(8):3449-55. doi: 10.1021/acs.jctc.6b00231. Epub 2016 Jul 11.
7
Quantitative Correlation of Conformational Binding Enthalpy with Substrate Specificity of Serine Proteases.丝氨酸蛋白酶构象结合焓与底物特异性的定量相关性
J Phys Chem B. 2016 Jan 21;120(2):299-308. doi: 10.1021/acs.jpcb.5b10637. Epub 2016 Jan 11.
8
Characterizing Protease Specificity: How Many Substrates Do We Need?表征蛋白酶特异性:我们需要多少种底物?
PLoS One. 2015 Nov 11;10(11):e0142658. doi: 10.1371/journal.pone.0142658. eCollection 2015.
9
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10
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4
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