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非热微波对蛋白质动力学的影响?关于四方晶系溶菌酶晶体的X射线衍射研究。

Non-thermal microwave effects on protein dynamics? An X-ray diffraction study on tetragonal lysozyme crystals.

作者信息

Weissenborn R, Diederichs K, Welte W, Maret G, Gisler T

机构信息

Universität Konstanz, Fachbereich Physik, D-78457 Konstanz, Germany.

出版信息

Acta Crystallogr D Biol Crystallogr. 2005 Feb;61(Pt 2):163-72. doi: 10.1107/S0907444904030902. Epub 2005 Jan 19.

Abstract

X-ray diffraction (XRD) was used to investigate the structural and dynamical effects of microwave fields on tetragonal single crystals of hen egg-white lysozyme at a resolution of 2.0 A. Using a modified slab-line waveguide allows on-line XRD to be carried out while the protein crystal is exposed to well defined microwave fields. High microwave power levels mainly lead to increased, but largely recoverable, lattice defects owing to the evaporation of crystal water. At lower microwave power levels, the presence of the microwave field results in localized reproducible changes in the mean-square displacements (B factors). At particular sites, it is found that the B factors even decrease with increasing microwave power. Most of these effects can be explained by a comparison of the data obtained under microwave irradiation with data obtained at elevated temperature which simulate heating owing to microwave absorption by unbound crystal water. The data show no indication of large microwave-driven displacements of structural subunits in the protein that would be expected if microwaves were to be absorbed resonantly by protein vibrations. Rather, the observed changes in the atomic mean-square displacements suggest that if microwaves couple non-thermally to globular proteins at hydration levels at which they still function, their effect on protein dynamics and structure is very small.

摘要

利用X射线衍射(XRD)在2.0 Å的分辨率下研究微波场对蛋清溶菌酶四方单晶的结构和动力学影响。使用改良的平板线波导可在蛋白质晶体暴露于明确的微波场时进行在线XRD。高微波功率水平主要由于晶体水的蒸发导致晶格缺陷增加,但大部分是可恢复的。在较低微波功率水平下,微波场的存在会导致均方位移(B因子)出现局部可重现的变化。在特定位置,发现B因子甚至会随着微波功率的增加而降低。通过将微波辐照下获得的数据与在高温下获得的数据进行比较,这些数据中的大多数效应都可以得到解释,高温数据模拟了由于未结合的晶体水吸收微波而产生的加热情况。数据没有显示出蛋白质中结构亚基有由微波驱动的大幅位移迹象,而如果微波通过蛋白质振动被共振吸收,预计会出现这种情况。相反,观察到的原子均方位移变化表明,如果微波在仍能发挥功能的水合水平下与球状蛋白质进行非热耦合,那么它们对蛋白质动力学和结构的影响非常小。

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