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Comparing Fast Pressure Jump and Temperature Jump Protein Folding Experiments and Simulations.快速压力跃变和温度跃变蛋白质折叠实验与模拟的比较
J Am Chem Soc. 2015 Jun 10;137(22):7152-7159. doi: 10.1021/jacs.5b02474. Epub 2015 Jun 2.
2
Folding kinetics of WW domains with the united residue force field for bridging microscopic motions and experimental measurements.具有联合残基力场的WW结构域折叠动力学,用于衔接微观运动与实验测量。
Proc Natl Acad Sci U S A. 2014 Dec 23;111(51):18243-8. doi: 10.1073/pnas.1420914111. Epub 2014 Dec 8.
3
Understanding the frustration arising from the competition between function, misfolding, and aggregation in a globular protein.理解球状蛋白质中功能、错误折叠和聚集之间竞争所产生的挫折感。
Proc Natl Acad Sci U S A. 2014 Sep 30;111(39):14141-6. doi: 10.1073/pnas.1405233111. Epub 2014 Sep 16.
4
Quantifying protein folding transition States with φ(t).用φ(t)量化蛋白质折叠过渡态。
J Biol Phys. 2002 Jun;28(2):115-28. doi: 10.1023/A:1019930203777.
5
Effects of mutation, truncation, and temperature on the folding kinetics of a WW domain.突变、截断和温度对 WW 结构域折叠动力学的影响。
J Mol Biol. 2012 Jul 20;420(4-5):350-65. doi: 10.1016/j.jmb.2012.04.027. Epub 2012 May 2.
6
Dominant folding pathways of a WW domain.WW 结构域的优势折叠途径。
Proc Natl Acad Sci U S A. 2012 Feb 14;109(7):2330-5. doi: 10.1073/pnas.1111796109. Epub 2012 Jan 26.
7
How fast-folding proteins fold.快速折叠蛋白如何折叠。
Science. 2011 Oct 28;334(6055):517-20. doi: 10.1126/science.1208351.
8
Markov state model reveals folding and functional dynamics in ultra-long MD trajectories.马科夫状态模型揭示了超长 MD 轨迹中的折叠和功能动力学。
J Am Chem Soc. 2011 Nov 16;133(45):18413-9. doi: 10.1021/ja207470h. Epub 2011 Oct 26.
9
The free energy landscape analysis of protein (FIP35) folding dynamics.蛋白质(FIP35)折叠动力学的自由能景观分析。
J Phys Chem B. 2011 Oct 27;115(42):12315-24. doi: 10.1021/jp208585r. Epub 2011 Oct 3.
10
Computational design and experimental testing of the fastest-folding β-sheet protein.计算设计和最快折叠β-折叠蛋白的实验测试。
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WW 结构域折叠过渡态的高分辨率图谱

High-Resolution Mapping of the Folding Transition State of a WW Domain.

作者信息

Dave Kapil, Jäger Marcus, Nguyen Houbi, Kelly Jeffery W, Gruebele Martin

机构信息

Center for Biophysics and Computational Biology, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.

Department of Chemistry, The Scripps Research Institute, 10550 North Torrey Pines Road BCC255, La Jolla, CA 92037, USA; The Skaggs Institute for Chemical Biology, The Scripps Research Institute, 10550 North Torrey Pines Road BCC255, La Jolla, CA 92037, USA.

出版信息

J Mol Biol. 2016 Apr 24;428(8):1617-36. doi: 10.1016/j.jmb.2016.02.008. Epub 2016 Feb 12.

DOI:10.1016/j.jmb.2016.02.008
PMID:26880334
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4835268/
Abstract

Fast-folding WW domains are among the best-characterized systems for comparing experiments and simulations of protein folding. Recent microsecond-resolution experiments and long duration (totaling milliseconds) single-trajectory modeling have shown that even mechanistic changes in folding kinetics due to mutation can now be analyzed. Thus, a comprehensive set of experimental data would be helpful to benchmark the predictions made by simulations. Here, we use T-jump relaxation in conjunction with protein engineering and report mutational Φ-values (Φ(M)) as indicators for folding transition-state structure of 65 side chain, 7 backbone hydrogen bond, and 6 deletion and /or insertion mutants within loop 1 of the 34-residue hPin1 WW domain. Forty-five cross-validated consensus mutants could be identified that provide structural constraints for transition-state structure within all substructures of the WW domain fold (hydrophobic core, loop 1, loop 2, β-sheet). We probe the robustness of the two hydrophobic clusters in the folding transition state, discuss how local backbone disorder in the native-state can lead to non-classical Φ(M)-values (Φ(M) > 1) in the rate-determining loop 1 substructure, and conclusively identify mutations and positions along the sequence that perturb the folding mechanism from loop 1-limited toward loop 2-limited folding.

摘要

快速折叠的WW结构域是用于比较蛋白质折叠实验和模拟的特征最明显的体系之一。最近的微秒级分辨率实验和长时间(总计毫秒级)单轨迹建模表明,现在甚至可以分析由于突变导致的折叠动力学中的机制变化。因此,一套全面的实验数据将有助于对模拟预测进行基准测试。在这里,我们将T跳跃弛豫与蛋白质工程相结合,并报告突变体的Φ值(Φ(M)),作为34个残基的hPin1 WW结构域环1内65个侧链、7个主链氢键以及6个缺失和/或插入突变体折叠过渡态结构的指标。可以鉴定出45个交叉验证的共有突变体,它们为WW结构域折叠的所有子结构(疏水核心、环1、环2、β折叠片)内的过渡态结构提供了结构限制。我们探究了折叠过渡态中两个疏水簇的稳健性,讨论了天然态中的局部主链无序如何导致速率决定环1子结构中出现非经典的Φ(M)值(Φ(M)>1),并最终确定了沿着序列中扰乱折叠机制(从环1限制型折叠向环2限制型折叠)的突变和位置。