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顺磁核磁共振弛豫和分子力学研究氯过氧化物酶-吲哚复合物:氯过氧化物酶催化吲哚区域选择性氧化反应机制的深入了解。

Paramagnetic nuclear magnetic resonance relaxation and molecular mechanics studies of the chloroperoxidase-indole complex: insights into the mechanism of chloroperoxidase-catalyzed regioselective oxidation of indole.

机构信息

Department of Chemistry and Biochemistry, Florida International University , Miami, Florida 33199, United States.

出版信息

Biochemistry. 2013 May 28;52(21):3688-701. doi: 10.1021/bi4002437. Epub 2013 May 14.

DOI:10.1021/bi4002437
PMID:23634952
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3812394/
Abstract

To unravel the mechanism of chloroperoxidase (CPO)-catalyzed regioselective oxidation of indole, we studied the structure of the CPO-indole complex using nuclear magnetic resonance (NMR) relaxation measurements and computational techniques. The dissociation constant (KD) of the CPO-indole complex was calculated to be approximately 21 mM. The distances (r) between protons of indole and the heme iron calculated via NMR relaxation measurements and molecular docking revealed that the pyrrole ring of indole is oriented toward the heme with its 2-H pointing directly at the heme iron. Both KD and r values are independent of pH in the range of 3.0-6.5. The stability and structure of the CPO-indole complex are also independent of the concentration of chloride or iodide ion. Molecular docking suggests the formation of a hydrogen bond between the NH group of indole and the carboxyl O of Glu 183 in the binding of indole to CPO. Simulated annealing of the CPO-indole complex using r values from NMR experiments as distance restraints reveals that the van der Waals interactions were much stronger than the Coulomb interactions in the binding of indole to CPO, indicating that the association of indole with CPO is primarily governed by hydrophobic rather than electrostatic interactions. This work provides the first experimental and theoretical evidence of the long-sought mechanism that leads to the "unexpected" regioselectivity of the CPO-catalyzed oxidation of indole. The structure of the CPO-indole complex will serve as a lighthouse in guiding the design of CPO mutants with tailor-made activities for biotechnological applications.

摘要

为了解析氯过氧化物酶(CPO)催化吲哚区域选择性氧化的机制,我们使用核磁共振(NMR)弛豫测量和计算技术研究了 CPO-吲哚复合物的结构。计算得出 CPO-吲哚复合物的离解常数(KD)约为 21mM。通过 NMR 弛豫测量和分子对接计算得出的吲哚质子与血红素铁之间的距离(r)表明,吲哚的吡咯环朝向血红素,其 2-H 直接指向血红素铁。KD 和 r 值在 3.0-6.5 的 pH 范围内均与 pH 无关。CPO-吲哚复合物的稳定性和结构也与氯离子或碘离子的浓度无关。分子对接表明,在吲哚与 CPO 结合时,吲哚的 NH 基团和 Glu 183 的羧基 O 之间形成氢键。使用 NMR 实验的 r 值作为距离约束对 CPO-吲哚复合物进行模拟退火,结果表明,在吲哚与 CPO 的结合中,范德华相互作用比库仑相互作用强得多,这表明吲哚与 CPO 的结合主要受疏水相互作用而不是静电相互作用控制。这项工作提供了第一个实验和理论证据,证明了导致 CPO 催化吲哚氧化的“出乎意料”区域选择性的长期寻求的机制。CPO-吲哚复合物的结构将作为指导设计具有定制活性的 CPO 突变体的灯塔,用于生物技术应用。

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