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肌红蛋白的结构动力学:肌红蛋白突变体L29W中配体对接位点的光谱学和结构表征

Structural dynamics of myoglobin: spectroscopic and structural characterization of ligand docking sites in myoglobin mutant L29W.

作者信息

Nienhaus Karin, Deng Pengchi, Kriegl Jan M, Nienhaus G Ulrich

机构信息

Department of Biophysics, University of Ulm, 89069 Ulm, Germany.

出版信息

Biochemistry. 2003 Aug 19;42(32):9633-46. doi: 10.1021/bi034787s.

Abstract

We have studied CO binding to the heme and CO migration among protein internal cavities after photodissociation in sperm whale carbonmonoxy myoglobin (MbCO) mutant L29W using Fourier transform infrared (FTIR) spectroscopy combined with temperature derivative spectroscopy (TDS) and kinetic experiments at cryogenic temperatures. Photoproduct intermediates, characterized by CO at particular locations in the protein, were selectively enhanced by applying special laser illumination protocols. These studies were performed on the L29W mutant protein and a series of double mutants constructed so that bulky amino acid side chains block passageways between cavities or fill these sites. Binding of xenon was also employed as an alternative means of occluding cavities. All mutants exhibit two conformations, A(I) and A(II), with distinctly different photoproduct states and ligand binding properties. These differences arise mainly from different positions of the W29 and H64 side chains in the distal heme pocket [Ostermann, A., et al. (2000) Nature 404, 205-208]. The detailed knowledge of the interplay between protein structure, protein dynamics, and ligand migration at cryogenic temperatures allowed us to develop a dynamic model that explains the slow CO and O(2) bimolecular association observed after flash photolysis at ambient temperature.

摘要

我们利用傅里叶变换红外光谱(FTIR)结合温度导数光谱(TDS)以及低温下的动力学实验,研究了抹香鲸一氧化碳肌红蛋白(MbCO)突变体L29W光解离后一氧化碳与血红素的结合以及一氧化碳在蛋白质内部腔室间的迁移。通过应用特殊的激光照射方案,以蛋白质中特定位置的一氧化碳为特征的光产物中间体被选择性增强。这些研究是在L29W突变蛋白以及一系列构建的双突变体上进行的,构建这些双突变体是为了让庞大的氨基酸侧链阻塞腔室间的通道或填充这些位点。氙的结合也被用作封闭腔室的另一种方法。所有突变体均呈现两种构象,A(I)和A(II),具有明显不同的光产物状态和配体结合特性。这些差异主要源于远端血红素口袋中W29和H64侧链的不同位置[奥斯特曼,A.等人(2000年)《自然》404,205 - 208]。对低温下蛋白质结构、蛋白质动力学和配体迁移之间相互作用的详细了解,使我们能够建立一个动力学模型,该模型解释了在室温下闪光光解后观察到的一氧化碳和氧气双分子缔合缓慢的现象。

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