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底物结合通过改变酶的皮秒级振动动力学使天冬氨酸转氨酶变硬。

Substrate Binding Stiffens Aspartate Aminotransferase by Altering the Enzyme Picosecond Vibrational Dynamics.

作者信息

Dajnowicz Steven, Cheng Yongqiang, Daemen Luke L, Weiss Kevin L, Gerlits Oksana, Mueser Timothy C, Kovalevsky Andrey

机构信息

Neutron Scattering Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, United States.

Department of Chemistry and Biochemistry, University of Toledo, Toledo, Ohio 43606, United States.

出版信息

ACS Omega. 2020 Jul 23;5(30):18787-18797. doi: 10.1021/acsomega.0c01900. eCollection 2020 Aug 4.

Abstract

Protein dynamics on various time scales from femtoseconds to milliseconds impacts biological function by driving proteins to conformations conducive to ligand binding and creating functional states in enzyme catalysis. Neutron vibrational spectroscopy carried out by measuring inelastic neutron scattering from protein molecules in combination with molecular simulations has the unique ability of detecting and visualizing changes in the picosecond protein vibrational dynamics due to ligand binding. Here we present neutron vibrational spectra of a homodimeric pyridoxal 5'-phosphate-dependent enzyme, aspartate aminotransferase, obtained from the open internal aldimine and closed external aldimine conformational states. We observe that in the external aldimine state the protein structure stiffens relative to the internal aldimine state, indicating rigidified vibrational dynamics on the picosecond time scale in the low-frequency regime of 5-50 cm. Our molecular dynamics simulations indicate substantial changes in the picosecond dynamics of the enzyme secondary structure elements upon substrate binding, with the largest contributions from just two helices and the β-sheet.

摘要

从飞秒到毫秒的各种时间尺度上的蛋白质动力学,通过驱动蛋白质形成有利于配体结合的构象并在酶催化中创造功能状态,从而影响生物学功能。通过测量蛋白质分子的非弹性中子散射并结合分子模拟进行的中子振动光谱,具有检测和可视化由于配体结合导致的皮秒级蛋白质振动动力学变化的独特能力。在此,我们展示了从开放的内部醛亚胺和封闭的外部醛亚胺构象状态获得的同二聚体磷酸吡哆醛依赖性酶天冬氨酸转氨酶的中子振动光谱。我们观察到,在外部醛亚胺状态下,蛋白质结构相对于内部醛亚胺状态变硬,表明在5-50厘米的低频范围内,皮秒时间尺度上的振动动力学变得僵化。我们的分子动力学模拟表明,底物结合后,酶二级结构元件的皮秒动力学发生了显著变化,其中仅两个螺旋和β折叠的贡献最大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ae5/7408236/a8fe9c2bb9f6/ao0c01900_0001.jpg

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