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本文引用的文献

1
Crystal structure and amide H/D exchange of binary complexes of alcohol dehydrogenase from Bacillus stearothermophilus: insight into thermostability and cofactor binding.嗜热脂肪芽孢杆菌醇脱氢酶二元复合物的晶体结构与酰胺氢/氘交换:对热稳定性和辅因子结合的深入了解
Biochemistry. 2004 May 11;43(18):5266-77. doi: 10.1021/bi049736p.
2
Evidence for environmentally coupled hydrogen tunneling during dihydrofolate reductase catalysis.二氢叶酸还原酶催化过程中环境耦合氢隧穿的证据。
J Am Chem Soc. 2003 Nov 5;125(44):13372-3. doi: 10.1021/ja035692g.
3
A perspective on enzyme catalysis.酶催化的观点。
Science. 2003 Aug 29;301(5637):1196-202. doi: 10.1126/science.1085515.
4
H-tunneling in the multiple H-transfers of the catalytic cycle of morphinone reductase and in the reductive half-reaction of the homologous pentaerythritol tetranitrate reductase.在吗啡酮还原酶催化循环的多次氢转移以及同源季戊四醇四硝酸酯还原酶的还原半反应中的氢隧穿。
J Biol Chem. 2003 Nov 7;278(45):43973-82. doi: 10.1074/jbc.M305983200. Epub 2003 Aug 26.
5
Protein dynamics in a family of laboratory evolved thermophilic enzymes.一组实验室进化的嗜热酶中的蛋白质动力学
J Mol Biol. 2003 Mar 28;327(3):745-57. doi: 10.1016/s0022-2836(03)00147-5.
6
Tetrameric NAD-dependent alcohol dehydrogenase.四聚体烟酰胺腺嘌呤二核苷酸依赖性乙醇脱氢酶
Chem Biol Interact. 2003 Feb 1;143-144:239-45. doi: 10.1016/s0009-2797(02)00222-3.
7
Protein analysis by hydrogen exchange mass spectrometry.通过氢交换质谱法进行蛋白质分析。
Annu Rev Biophys Biomol Struct. 2003;32:1-25. doi: 10.1146/annurev.biophys.32.110601.142417. Epub 2003 Feb 18.
8
Activity-stability relationships in extremophilic enzymes.极端嗜热酶的活性-稳定性关系
J Biol Chem. 2003 Mar 7;278(10):7891-6. doi: 10.1074/jbc.M212508200. Epub 2003 Jan 2.
9
Protein hydrogen exchange mechanism: local fluctuations.蛋白质氢交换机制:局部波动
Protein Sci. 2003 Jan;12(1):153-60. doi: 10.1110/ps.0225803.
10
Impact of enzyme motion on activity.酶运动对活性的影响。
Biochemistry. 2002 Nov 12;41(45):13335-43. doi: 10.1021/bi0267137.

嗜热醇脱氢酶中热激活的蛋白质流动性及其与催化作用的相关性。

Thermal-activated protein mobility and its correlation with catalysis in thermophilic alcohol dehydrogenase.

作者信息

Liang Zhao-Xun, Lee Thomas, Resing Katheryn A, Ahn Natalie G, Klinman Judith P

机构信息

Department of Chemistry, University of California, Berkeley, CA 94720, USA.

出版信息

Proc Natl Acad Sci U S A. 2004 Jun 29;101(26):9556-61. doi: 10.1073/pnas.0403337101. Epub 2004 Jun 21.

DOI:10.1073/pnas.0403337101
PMID:15210941
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC470713/
Abstract

Temperature-dependent hydrogen-deuterium (H/D) exchange of the thermophilic alcohol dehydrogenase (htADH) has been studied by using liquid chromatography-coupled mass spectrometry. Analysis of the changes in H/D exchange patterns for the protein-derived peptides suggests that some regions of htADH are in a rigid conformational substate at reduced temperatures with limited cooperative protein motion. The enzyme undergoes two discrete transitions at approximately 30 and 45 degrees C to attain a more dynamic conformational substate. Four of the five peptides exhibiting the transition above 40 degrees C are in direct contact with the cofactor, and the NAD(+)-binding affinity is also altered in this temperature range, implicating a change in the mobility of the cofactor-binding domain >45 degrees C. By contrast, the five peptides exhibiting the transition at 30 degrees C reside in the substrate-binding domain. This transition coincides with a change in the activation energy of k(cat) for hydride transfer, leading to a linear correlation between k(cat) and the weighted average exchange rate constant k(HX(WA)) for the five peptides. These observations indicate a direct coupling between hydride transfer and protein mobility in htADH, and that an increased mobility is at least partially responsible for the reduced E(act) at high temperature. The data provide support for the hypothesis that protein dynamics play a key role in controlling hydrogen tunneling at enzyme active sites.

摘要

通过液相色谱-质谱联用技术研究了嗜热醇脱氢酶(htADH)的温度依赖性氢-氘(H/D)交换。对蛋白质衍生肽段的H/D交换模式变化分析表明,在低温下htADH的某些区域处于刚性构象亚态,蛋白质协同运动受限。该酶在约30℃和45℃经历两个离散转变,以达到更具动态性的构象亚态。在40℃以上表现出转变的五个肽段中有四个与辅因子直接接触,并且在该温度范围内NAD(+)结合亲和力也发生改变,这意味着辅因子结合结构域在>45℃时迁移率发生变化。相比之下,在30℃表现出转变的五个肽段位于底物结合结构域。这种转变与氢化物转移的k(cat)活化能变化相吻合,导致k(cat)与这五个肽段的加权平均交换速率常数k(HX(WA))之间呈线性相关。这些观察结果表明htADH中氢化物转移与蛋白质迁移率之间存在直接耦合,并且迁移率增加至少部分是高温下E(act)降低的原因。这些数据为蛋白质动力学在控制酶活性位点氢隧穿中起关键作用这一假设提供了支持。