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分子动力学推导的活性底物结合构象的寿命解释了漆酶突变体的情况。

Molecular dynamics derived life times of active substrate binding poses explain of laccase mutants.

作者信息

Mehra Rukmankesh, Meyer Anne S, Kepp Kasper P

机构信息

Technical University of Denmark, DTU Chemistry Building 206, 2800 Kgs. Lyngby Denmark

Technical University of Denmark, DTU Bioengineering Building 221, 2800 Kgs. Lyngby Denmark

出版信息

RSC Adv. 2018 Nov 1;8(64):36915-36926. doi: 10.1039/c8ra07138a. eCollection 2018 Oct 26.

Abstract

Fungal laccases (EC 1.10.3.2) are important multi-copper oxidases with broad substrate specificity. Laccases from (TvL) are among the best-characterized of these enzymes. Mutations in the substrate-binding site of TvL substantially affect , but a molecular understanding of this effect is missing. We explored the effect of TvL mutations on for the standard laccase substrate 2,6-dimethoxyphenol using 4500 ns of molecular dynamics, docking, and MMGBSA free energy computations. We show that changes in due to mutation consistently correlate with the dynamics of the substrates within the substrate-binding site. We find that depends on the lifetime ("dynamic stability") of the enzyme-substrate complex as commonly assumed. We then further show that MMGBSA-derived free energies of substrate binding in the active pose consistently reproduce large small experimental values. Our results indicate that hydrophobic packing of the substrate near the T1 binding site of the laccase is instrumental for high turnover . We also address the more general question of how enzymes such as laccases gain advantage of lower despite the Sabatier principle, which disfavors a stable enzyme-substrate complex. Our data suggest that the observed relates directly to the lifetime of the active substrate pose within a protein. In contrast, the thermochemical stability of the enzyme-substrate complex reflects an ensemble average of all enzyme-substrate binding poses. This distinction may explain how enzymes work by favoring longer residence time in the active pose without too favorable general enzyme-substrate interactions, a principle that may aid the rational design of enzymes.

摘要

真菌漆酶(EC 1.10.3.2)是重要的多铜氧化酶,具有广泛的底物特异性。来自嗜热栖热菌的漆酶(TvL)是这些酶中特征最明确的之一。TvL底物结合位点的突变会显著影响催化效率,但对此效应缺乏分子层面的理解。我们使用4500纳秒的分子动力学、对接和MMGBSA自由能计算,探索了TvL突变对标准漆酶底物2,6 - 二甲氧基苯酚催化效率的影响。我们表明,由于突变导致的催化效率变化与底物在底物结合位点内的动力学始终相关。我们发现,催化效率如通常所认为的那样取决于酶 - 底物复合物的寿命(“动态稳定性”)。然后我们进一步表明,MMGBSA推导的活性构象中底物结合的自由能始终能重现实验中较大的催化效率和较小的米氏常数。我们的结果表明,漆酶T1结合位点附近底物的疏水堆积对高周转率至关重要。我们还解决了一个更普遍的问题,即像漆酶这样的酶如何尽管有萨巴蒂尔原理(该原理不利于稳定的酶 - 底物复合物),仍能利用较低的米氏常数获得优势。我们的数据表明,观察到的米氏常数直接与蛋白质内活性底物构象的寿命相关。相比之下,酶 - 底物复合物的热化学稳定性反映了所有酶 - 底物结合构象的总体平均值。这种区别可能解释了酶如何通过在活性构象中偏好更长的停留时间而又不过于有利于一般的酶 - 底物相互作用来发挥作用,这一原理可能有助于酶的合理设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ba4/9089231/c6801e5bd84d/c8ra07138a-f1.jpg

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