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通过催化和结构特性以及分子动力学揭示深海和北极海冰细菌中嗜热菌蛋白酶家族锌金属蛋白酶的冷适应性:构象灵活性与氢键关系的新见解

Cold adaptation of zinc metalloproteases in the thermolysin family from deep sea and arctic sea ice bacteria revealed by catalytic and structural properties and molecular dynamics: new insights into relationship between conformational flexibility and hydrogen bonding.

作者信息

Xie Bin-Bin, Bian Fei, Chen Xiu-Lan, He Hai-Lun, Guo Jun, Gao Xiang, Zeng Yin-Xin, Chen Bo, Zhou Bai-Cheng, Zhang Yu-Zhong

机构信息

State Key Laboratory of Microbial Technology, Marine Biotechnology Research Center, Shandong University, Jinan 250100, China.

出版信息

J Biol Chem. 2009 Apr 3;284(14):9257-69. doi: 10.1074/jbc.M808421200. Epub 2009 Jan 30.

Abstract

Increased conformational flexibility is the prevailing explanation for the high catalytic efficiency of cold-adapted enzymes at low temperatures. However, less is known about the structural determinants of flexibility. We reported two novel cold-adapted zinc metalloproteases in the thermolysin family, vibriolysin MCP-02 from a deep sea bacterium and vibriolysin E495 from an Arctic sea ice bacterium, and compared them with their mesophilic homolog, pseudolysin from a terrestrial bacterium. Their catalytic efficiencies, k(cat)/K(m) (10-40 degrees C), followed the order pseudolysin < MCP-02 < E495 with a ratio of approximately 1:2:4. MCP-02 and E495 have the same optimal temperature (T(opt), 57 degrees C, 5 degrees C lower than pseudolysin) and apparent melting temperature (T(m) = 64 degrees C, approximately 10 degrees C lower than pseudolysin). Structural analysis showed that the slightly lower stabilities resulted from a decrease in the number of salt bridges. Fluorescence quenching experiments and molecular dynamics simulations showed that the flexibilities of the proteins were pseudolysin < MCP-02 < E495, suggesting that optimization of flexibility is a strategy for cold adaptation. Molecular dynamics results showed that the ordinal increase in flexibility from pseudolysin to MCP-02 and E495, especially the increase from MCP-02 to E495, mainly resulted from the decrease of hydrogen-bond stability in the dynamic structure, which was due to the increase in asparagine, serine, and threonine residues. Finally, a model for the cold adaptation of MCP-02 and E495 was proposed. This is the first report of the optimization of hydrogen-bonding dynamics as a strategy for cold adaptation and provides new insights into the structural basis underlying conformational flexibility.

摘要

构象灵活性增加是低温适应酶在低温下具有高催化效率的主要解释。然而,关于灵活性的结构决定因素却知之甚少。我们报道了嗜热菌蛋白酶家族中的两种新型低温适应锌金属蛋白酶,一种来自深海细菌的弧菌溶素MCP - 02和一种来自北极海冰细菌的弧菌溶素E495,并将它们与其嗜温同源物——一种陆生细菌的假溶素进行了比较。它们的催化效率k(cat)/K(m)(10 - 40摄氏度)遵循假溶素 < MCP - 02 < E495的顺序,比例约为1:2:4。MCP - 02和E495具有相同的最适温度(T(opt),57摄氏度,比假溶素低5摄氏度)和表观解链温度(T(m) = 64摄氏度,比假溶素低约10摄氏度)。结构分析表明,稳定性略低是由于盐桥数量减少所致。荧光猝灭实验和分子动力学模拟表明,蛋白质的灵活性为假溶素 < MCP - 02 < E495,这表明灵活性优化是一种冷适应策略。分子动力学结果表明,从假溶素到MCP - 02和E495灵活性依次增加,尤其是从MCP - 02到E495的增加,主要是由于动态结构中氢键稳定性的降低,这是由于天冬酰胺、丝氨酸和苏氨酸残基的增加所致。最后,提出了MCP - 02和E495的冷适应模型。这是关于氢键动力学优化作为冷适应策略的首次报道,并为构象灵活性的结构基础提供了新的见解。

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