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单点突变 d-精氨酸脱氢酶解锁瞬态构象状态导致辅因子反应性改变。

A Single-Point Mutation in d-Arginine Dehydrogenase Unlocks a Transient Conformational State Resulting in Altered Cofactor Reactivity.

机构信息

Department of Chemistry, Georgia State University, Atlanta, Georgia 30302, United States.

Department of Biology, Georgia State University, Atlanta, Georgia 30302, United States.

出版信息

Biochemistry. 2021 Mar 9;60(9):711-724. doi: 10.1021/acs.biochem.1c00054. Epub 2021 Feb 25.

DOI:10.1021/acs.biochem.1c00054
PMID:33630571
Abstract

Proteins are inherently dynamic, and proper enzyme function relies on conformational flexibility. In this study, we demonstrated how an active site residue changes an enzyme's reactivity by modulating fluctuations between conformational states. Replacement of tyrosine 249 (Y249) with phenylalanine in the active site of the flavin-dependent d-arginine dehydrogenase yielded an enzyme with both an active yellow FAD (Y249F-y) and an inactive chemically modified green FAD, identified as 6-OH-FAD (Y249F-g) through various spectroscopic techniques. Structural investigation of Y249F-g and Y249F-y variants by comparison to the wild-type enzyme showed no differences in the overall protein structure and fold. A closer observation of the active site of the Y249F-y enzyme revealed an alternative conformation for some active site residues and the flavin cofactor. Molecular dynamics simulations probed the alternate conformations observed in the Y249F-y enzyme structure and showed that the enzyme variant with FAD samples a metastable conformational state, not available to the wild-type enzyme. Hybrid quantum/molecular mechanical calculations identified differences in flavin electronics between the wild type and the alternate conformation of the Y249F-y enzyme. The computational studies further indicated that the alternate conformation in the Y249F-y enzyme is responsible for the higher spin density at the C6 atom of flavin, which is consistent with the formation of 6-OH-FAD in the variant enzyme. The observations in this study are consistent with an alternate conformational space that results in fine-tuning the microenvironment around a versatile cofactor playing a critical role in enzyme function.

摘要

蛋白质本质上是动态的,而适当的酶功能依赖于构象灵活性。在这项研究中,我们展示了活性位点残基如何通过调节构象状态之间的波动来改变酶的反应性。在黄素依赖的 d-精氨酸脱氢酶的活性位点中,将酪氨酸 249(Y249)替换为苯丙氨酸,得到了一种既具有活性黄色 FAD(Y249F-y)又具有失活的化学修饰绿色 FAD 的酶,通过各种光谱技术鉴定为 6-OH-FAD(Y249F-g)。通过与野生型酶比较,对 Y249F-g 和 Y249F-y 变体的结构研究表明,整体蛋白质结构和折叠没有差异。对 Y249F-y 酶的活性位点进行更仔细的观察表明,一些活性位点残基和黄素辅因子呈现替代构象。分子动力学模拟探测了 Y249F-y 酶结构中观察到的替代构象,表明该酶变体的 FAD 样品处于亚稳态构象,而野生型酶则没有。混合量子/分子力学计算确定了野生型和 Y249F-y 酶的替代构象之间黄素电子的差异。计算研究进一步表明,Y249F-y 酶中的替代构象导致黄素 C6 原子上的自旋密度增加,这与变体酶中 6-OH-FAD 的形成一致。本研究中的观察结果与一个替代构象空间一致,该空间可微调多功能辅因子周围的微环境,对酶功能起着关键作用。

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