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利用分子模拟研究离子液体中的生物催化作用。

Using Molecular Simulation to Study Biocatalysis in Ionic Liquids.

作者信息

Sprenger K G, Pfaendtner J

机构信息

University of Washington, Seattle, WA, United States.

University of Washington, Seattle, WA, United States.

出版信息

Methods Enzymol. 2016;577:419-41. doi: 10.1016/bs.mie.2016.05.020. Epub 2016 Jun 28.

Abstract

The practice of computational biocatalysis in ionic liquids (ILs) is still in its infancy, and thus best simulation practices are still developing. Herein, we examine the computational and experimental literature to date featuring systems of enzymes in aqueous and neat ILs. The many different approaches taken to parameterize ILs and set up simulations of enzymes in ILs are discussed, and common analysis techniques are reviewed. We also shed light on potential drawbacks and limitations to simulating enzymes in ILs, which include a lack of experimental data with which to validate computational models and inadequate sampling arising from the slow dynamics of many ILs that can lead to inaccurate descriptions of transport and equilibrium thermodynamic properties. A small case study illustrates the effects of scaling IL partial charges, which is a common practice in the field, on the conformational transitions of alanine dipeptide. The degree of charge scaling has a significant effect on the transition times between states of the biomolecule and highlights the importance of carefully setting up systems of enzymes in ILs. Finally, we discuss means to overcome these challenges and briefly consider possible new directions for the field.

摘要

离子液体(ILs)中计算生物催化的实践仍处于起步阶段,因此最佳模拟方法仍在不断发展。在此,我们研究了迄今为止关于酶在水相和纯离子液体体系中的计算和实验文献。讨论了用于参数化离子液体以及建立离子液体中酶模拟的许多不同方法,并对常见分析技术进行了综述。我们还揭示了在离子液体中模拟酶的潜在缺点和局限性,其中包括缺乏用于验证计算模型的实验数据,以及由于许多离子液体的动力学缓慢导致采样不足,这可能会导致对传输和平衡热力学性质的描述不准确。一个小案例研究说明了在该领域中常见的对离子液体部分电荷进行缩放对丙氨酸二肽构象转变的影响。电荷缩放程度对生物分子状态之间的转变时间有显著影响,并突出了在离子液体中仔细构建酶体系的重要性。最后,我们讨论了克服这些挑战的方法,并简要考虑了该领域可能的新方向。

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