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Comparison of Three Ionic Liquid-Tolerant Cellulases by Molecular Dynamics

机译:三种离子液体耐受纤维素酶的分子动力学比较

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摘要

We have employed molecular dynamics to investigate the differences in ionic liquid tolerance among three distinct family 5 cellulases from Trichoderma viride, Thermogata maritima, and Pyrococcus horikoshii. Simulations of the three cellulases were conducted at a range of temperatures in various binary mixtures of the ionic liquid 1-ethyl-3-methyl-imidazolium acetate with water. Our analysis demonstrates that the effects of ionic liquids on the enzymes vary in each individual case from local structural disturbances to loss of much of one of the enzyme’s secondary structure. Enzymes with more negatively charged surfaces tend to resist destabilization by ionic liquids. Specific and unique structural changes in the enzymes are induced by the presence of ionic liquids. Disruption of the secondary structure, changes in dynamical motion, and local changes in the binding pocket are observed in less tolerant enzymes. Ionic-liquid-induced denaturation of one of the enzymes is indicated over the 500 ns timescale. In contrast, the most tolerant cellulase behaves similarly in water and in ionic-liquid-containing mixtures. Unlike the heuristic approaches that attempt to predict enzyme stability using macroscopic properties, molecular dynamics allows us to predict specific atomic-level structural and dynamical changes in an enzyme’s behavior induced by ionic liquids and other mixed solvents. Using these insights, we propose specific experimentally testable hypotheses regarding the origin of activity loss for each of the systems investigated in this study.
机译:我们已经利用分子动力学研究了三种不同的5种纤维素酶中离子液体耐受性的差异,这些5种纤维素酶分别是木霉,热核糖和火球菌。在一定温度范围内,在醋酸离子液体1-乙基-3-甲基咪唑鎓盐与水的各种二元混合物中进行三种纤维素酶的模拟。我们的分析表明,在每种情况下,离子液体对酶的影响都从局部结构扰动到许多酶二级结构的损失而变化。具有更多带负电荷的表面的酶倾向于抵抗离子液体的不稳定作用。离子液体的存在会引起酶中特定而独特的结构变化。在耐受性较差的酶中观察到二级结构的破坏,动态运动的变化以及结合口袋的局部变化。在500 ns的时间范围内指示了其中一种酶的离子液体诱导的变性。相反,最耐受的纤维素酶在水和含离子液体的混合物中的表现相似。与尝试使用宏观特性来预测酶稳定性的启发式方法不同,分子动力学使我们能够预测离子液体和其他混合溶剂引起的酶行为中特定原子级的结构和动力学变化。利用这些见解,我们针对本研究中研究的每个系统的活动丧失的起源提出了具体的实验可检验的假设。

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