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本文引用的文献

1
Protein conformational plasticity and complex ligand-binding kinetics explored by atomistic simulations and Markov models.通过原子模拟和马尔可夫模型探索蛋白质构象的可塑性和复杂配体结合的动力学。
Nat Commun. 2015 Jul 2;6:7653. doi: 10.1038/ncomms8653.
2
Why Ser and not Thr brokers catalysis in the trypsin fold.为什么在胰蛋白酶折叠中起催化作用的是丝氨酸(Ser)而不是苏氨酸(Thr)。
Biochemistry. 2015 Feb 24;54(7):1457-64. doi: 10.1021/acs.biochem.5b00014. Epub 2015 Feb 11.
3
Sulfated low molecular weight lignins, allosteric inhibitors of coagulation proteinases via the heparin binding site, significantly alter the active site of thrombin and factor xa compared to heparin.硫酸化低分子量木质素是通过肝素结合位点发挥作用的凝血蛋白酶变构抑制剂,与肝素相比,它能显著改变凝血酶和因子Xa的活性位点。
Thromb Res. 2014 Nov;134(5):1123-9. doi: 10.1016/j.thromres.2014.08.024. Epub 2014 Sep 6.
4
Distinguishing induced fit from conformational selection.区分诱导契合和构象选择。
Biophys Chem. 2014 May;189:33-9. doi: 10.1016/j.bpc.2014.03.003. Epub 2014 Apr 1.
5
Exploring the role of receptor flexibility in structure-based drug discovery.探讨受体柔性在基于结构的药物发现中的作用。
Biophys Chem. 2014 Feb;186:31-45. doi: 10.1016/j.bpc.2013.10.007. Epub 2013 Nov 9.
6
Histone H4 promotes prothrombin autoactivation.组蛋白 H4 促进凝血酶原的自动激活。
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7
Essential role of conformational selection in ligand binding.构象选择在配体结合中的基本作用。
Biophys Chem. 2014 Feb;186:13-21. doi: 10.1016/j.bpc.2013.09.003. Epub 2013 Sep 25.
8
Conformational selection is a dominant mechanism of ligand binding.构象选择是配体结合的主要机制。
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9
Correlated motions and residual frustration in thrombin.凝血酶中的关联运动和剩余挫折。
J Phys Chem B. 2013 Oct 24;117(42):12857-63. doi: 10.1021/jp402107u. Epub 2013 May 28.
10
Autoactivation of thrombin precursors.凝血酶原的自动激活。
J Biol Chem. 2013 Apr 19;288(16):11601-10. doi: 10.1074/jbc.M113.451542. Epub 2013 Mar 6.

胰蛋白酶折叠中预先存在的构象平衡的动力学剖析。

Kinetic dissection of the pre-existing conformational equilibrium in the trypsin fold.

作者信息

Vogt Austin D, Chakraborty Pradipta, Di Cera Enrico

机构信息

From the Edward A. Doisy Department of Biochemistry and Molecular Biology, Saint Louis University School of Medicine, St. Louis, Missouri 63104.

From the Edward A. Doisy Department of Biochemistry and Molecular Biology, Saint Louis University School of Medicine, St. Louis, Missouri 63104

出版信息

J Biol Chem. 2015 Sep 11;290(37):22435-45. doi: 10.1074/jbc.M115.675538. Epub 2015 Jul 27.

DOI:10.1074/jbc.M115.675538
PMID:26216877
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4566218/
Abstract

Structural biology has recently documented the conformational plasticity of the trypsin fold for both the protease and zymogen in terms of a pre-existing equilibrium between closed (E*) and open (E) forms of the active site region. How such plasticity is manifested in solution and affects ligand recognition by the protease and zymogen is poorly understood in quantitative terms. Here we dissect the E*-E equilibrium with stopped-flow kinetics in the presence of excess ligand or macromolecule. Using the clotting protease thrombin and its zymogen precursor prethrombin-2 as relevant models we resolve the relative distribution of the E* and E forms and the underlying kinetic rates for their interconversion. In the case of thrombin, the E* and E forms are distributed in a 1:4 ratio and interconvert on a time scale of 45 ms. In the case of prethrombin-2, the equilibrium is shifted strongly (10:1 ratio) in favor of the closed E* form and unfolds over a faster time scale of 4.5 ms. The distribution of E* and E forms observed for thrombin and prethrombin-2 indicates that zymogen activation is linked to a significant shift in the pre-existing equilibrium between closed and open conformations that facilitates ligand binding to the active site. These findings broaden our mechanistic understanding of how conformational transitions control ligand recognition by thrombin and its zymogen precursor prethrombin-2 and have direct relevance to other members of the trypsin fold.

摘要

结构生物学最近记录了胰蛋白酶折叠对于蛋白酶和酶原的构象可塑性,这是根据活性位点区域的封闭(E*)和开放(E)形式之间预先存在的平衡来描述的。然而,这种可塑性在溶液中如何表现以及如何影响蛋白酶和酶原对配体的识别,从定量角度来看还知之甚少。在这里,我们在存在过量配体或大分子的情况下,用停流动力学分析E* - E平衡。以凝血蛋白酶凝血酶及其酶原前体凝血酶原-2作为相关模型,我们解析了E和E形式的相对分布以及它们相互转化的潜在动力学速率。对于凝血酶,E和E形式以1:4的比例分布,并且在45毫秒的时间尺度上相互转化。对于凝血酶原-2,平衡强烈地向有利于封闭的E形式的方向移动(比例为10:1),并且在4.5毫秒的更快时间尺度上展开。在凝血酶和凝血酶原-2中观察到的E和E形式的分布表明,酶原激活与封闭和开放构象之间预先存在的平衡的显著移动相关联,这有利于配体与活性位点的结合。这些发现拓宽了我们对构象转变如何控制凝血酶及其酶原前体凝血酶原-2对配体识别的机制理解,并且与胰蛋白酶折叠的其他成员直接相关。