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2
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Inhibition of the Escherichia coli pyruvate dehydrogenase complex E1 subunit and its tyrosine 177 variants by thiamin 2-thiazolone and thiamin 2-thiothiazolone diphosphates. Evidence for reversible tight-binding inhibition.硫胺素2-噻唑酮和硫胺素2-硫代噻唑酮二磷酸对大肠杆菌丙酮酸脱氢酶复合体E1亚基及其酪氨酸177变体的抑制作用。可逆紧密结合抑制的证据。
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Pyruvate dehydrogenase complex deficiency is linked to regulatory loop disorder in the αV138M variant of human pyruvate dehydrogenase.丙酮酸脱氢酶复合物缺陷与人类丙酮酸脱氢酶αV138M 变体中的调节环紊乱有关。
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Conformational dynamics of 1-deoxy-d-xylulose 5-phosphate synthase on ligand binding revealed by H/D exchange MS.通过氘/氢交换质谱揭示了 1-脱氧-d-木酮糖 5-磷酸合酶在配体结合时的构象动态。
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Identification of charge transfer transitions related to thiamin-bound intermediates on enzymes provides a plethora of signatures useful in mechanistic studies.鉴定与酶上硫胺素结合中间体相关的电荷转移跃迁,可为机理研究提供大量有用的特征信息。
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Nuclear magnetic resonance approaches in the study of 2-oxo acid dehydrogenase multienzyme complexes--a literature review.核磁共振方法在 2-氧代酸脱氢酶多酶复合物研究中的应用——文献综述。
Molecules. 2013 Sep 26;18(10):11873-903. doi: 10.3390/molecules181011873.

本文引用的文献

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Elucidation of the chemistry of enzyme-bound thiamin diphosphate prior to substrate binding: defining internal equilibria among tautomeric and ionization states.底物结合前酶结合硫胺素二磷酸的化学性质阐释:确定互变异构体和电离状态之间的内部平衡。
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A dynamic loop at the active center of the Escherichia coli pyruvate dehydrogenase complex E1 component modulates substrate utilization and chemical communication with the E2 component.大肠杆菌丙酮酸脱氢酶复合体E1组分活性中心的动态环调节底物利用以及与E2组分的化学通讯。
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The 1',4'-iminopyrimidine tautomer of thiamin diphosphate is poised for catalysis in asymmetric active centers on enzymes.硫胺素二磷酸的1',4'-亚氨基嘧啶互变异构体在酶的不对称活性中心中处于催化就绪状态。
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Dynamically driven protein allostery.动态驱动的蛋白质别构效应
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Electrostatic basis for enzyme catalysis.酶催化的静电基础。
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Disorder-order folding transitions underlie catalysis in the helicase motor of SecA.无序-有序折叠转变是SecA解旋酶马达催化作用的基础。
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New tools provide new insights in NMR studies of protein dynamics.新工具为蛋白质动力学的核磁共振研究提供了新见解。
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A thiamin-bound, pre-decarboxylation reaction intermediate analogue in the pyruvate dehydrogenase E1 subunit induces large scale disorder-to-order transformations in the enzyme and reveals novel structural features in the covalently bound adduct.一种与硫胺素结合的、丙酮酸脱氢酶E1亚基中的脱羧前反应中间体类似物,可诱导该酶发生大规模的无序到有序转变,并揭示了共价结合加合物中的新结构特征。
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大肠杆菌丙酮酸脱氢酶多酶复合体E1组分中催化与动力学的高效偶联

Efficient coupling of catalysis and dynamics in the E1 component of Escherichia coli pyruvate dehydrogenase multienzyme complex.

作者信息

Kale Sachin, Ulas Gözde, Song Jaeyoung, Brudvig Gary W, Furey William, Jordan Frank

机构信息

Department of Chemistry, Rutgers, The State University of New Jersey, Newark, NJ 07102, USA.

出版信息

Proc Natl Acad Sci U S A. 2008 Jan 29;105(4):1158-63. doi: 10.1073/pnas.0709328105. Epub 2008 Jan 23.

DOI:10.1073/pnas.0709328105
PMID:18216265
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2234108/
Abstract

Protein motions are ubiquitous and are intrinsically coupled to catalysis. Their specific roles, however, remain largely elusive. Dynamic loops at the active center of the E1 component of Escherichia coli pyruvate dehydrogenase multienzyme complex are essential for several catalytic functions starting from a predecarboxylation event and culminating in transfer of the acetyl moiety to the E2 component. Monitoring the kinetics of E1 and its loop variants at various solution viscosities, we show that the rate of a chemical step is modulated by loop dynamics. A cysteine-free E1 construct was site-specifically labeled on the inner loop (residues 401-413), and the EPR nitroxide label revealed ligand-induced conformational dynamics of the loop and a slow "open <--> close" conformational equilibrium in the unliganded state. An (19)F NMR label placed at the same residue revealed motion on the millisecond-second time scale and suggested a quantitative correlation of E1 catalysis and loop dynamics for the 200,000-Da protein. Thermodynamic studies revealed that these motions may promote covalent addition of substrate to the enzyme-bound thiamin diphosphate by reducing the free energy of activation. Furthermore, the global dynamics of E1 presumably regulate and streamline the catalytic steps of the overall complex by inducing an entirely entropic (nonmechanical) negative cooperativity with respect to substrate binding at higher temperatures. Our results are consistent with, and reinforce the hypothesis of, coupling of catalysis and regulation with enzyme dynamics and suggest the mechanism by which it is achieved in a key branchpoint enzyme in sugar metabolism.

摘要

蛋白质运动无处不在,并且与催化作用内在相关。然而,它们的具体作用在很大程度上仍不明确。大肠杆菌丙酮酸脱氢酶多酶复合体E1组分活性中心的动态环对于从预脱羧事件开始并最终将乙酰基部分转移至E2组分的多种催化功能至关重要。通过监测E1及其环变体在不同溶液粘度下的动力学,我们发现一个化学步骤的速率受环动力学的调节。一个无半胱氨酸的E1构建体在内环(残基401 - 413)上进行了位点特异性标记,电子顺磁共振(EPR)氮氧自由基标记揭示了配体诱导的环构象动力学以及在未结合配体状态下缓慢的“开放<-->关闭”构象平衡。置于相同残基处的一个(19)F核磁共振标记揭示了毫秒至秒时间尺度上的运动,并表明对于这个200,000道尔顿的蛋白质,E1催化作用与环动力学之间存在定量相关性。热力学研究表明,这些运动可能通过降低活化自由能来促进底物与酶结合的硫胺二磷酸的共价加成。此外,E1的整体动力学大概通过在较高温度下诱导相对于底物结合的完全熵(非机械)负协同性来调节和简化整个复合体的催化步骤。我们的结果与催化作用和调节与酶动力学相耦合的假设一致,并强化了这一假设,同时提出了在糖代谢关键分支点酶中实现这种耦合的机制。