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Computational Protocol to Understand P450 Mechanisms and Design of Efficient and Selective Biocatalysts

机译:计算协议,了解P450机制和高效和选择性生物催眠催化剂的设计

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摘要

Cytochrome P450 enzymes have gained significant interest as selective oxidants in late-stage chemical synthesis. Their broad substrate scope enables them to be good candidates for their use in non-natural reactivity. Directed evolution evolves new enzyme biocatalysts that promote alternative reactivity for chemical synthesis. While directed evolution has proven useful in developing biocatalysts for specific purposes, this process is very time and labor intensive, and therefore not easily repurposed. Computational analysis of these P450 enzymes provides great insights into the broad substrate scope, the variety of reactions catalyzed, the binding specificity and the study of novel biosynthetic reaction mechanisms. By discovering new P450s and studying their reactivities, we uncover new insights into how this reactivity can be harnessed. We discuss a standard protocol using both DFT calculations and MD simulations to study a variety of cytochrome P450 enzymes. The approach entails theozyme models to study the mechanism and transition states via DFT calculations and subsequent MD simulations to understand the conformational poses and binding mechanisms within the enzyme. We discuss a few examples done in collaboration with the Tang and Sherman/Montgomery groups toward elucidating enzyme mechanisms and rationally designing new enzyme mutants as tools for selective C–H functionalization methods.
机译:细胞色素P450酶在晚期化学合成中的选择性氧化剂获得了显着的兴趣。它们的宽基板范围使他们能够成为非自然反应性的良好候选者。定向演进演化了新的酶生物催化剂,促进了化学合成的替代反应性。虽然定向演变已经证明在为特定目的开发生物催化剂时,这种过程是非常时间和劳动密集的,因此不易重新批准。这些P450酶的计算分析为广泛的基材范围提供了很大的见解,催化的各种反应,结合特异性和新的生物合成反应机制的研究。通过发现新的P450和学习重新激活,我们发现可以利用这种反应性的新见解。我们使用DFT计算和MD模拟讨论标准协议,以研究各种细胞色素P450酶。该方法需要通过DFT计算和随后的MD模拟来研究机制和过渡状态,以了解酶内的构象姿势和结合机制。我们讨论了与唐和谢尔曼/蒙哥马利群体合作完成的一些例子,旨在阐明酶机制,并合理地设计新的酶突变体作为选择性C-H官能化方法的工具。

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