疏水蛋白在溶液中的扩散及其与石墨表面的相互作用。

Q1 Biochemistry, Genetics and Molecular Biology BMC Biophysics Pub Date : 2011-04-21 DOI:10.1186/2046-1682-4-9
Paolo Mereghetti, Rebecca C Wade
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引用次数: 26

摘要

背景:疏水蛋白是由丝状真菌产生的小蛋白,具有多种生物学功能,包括包被孢子和表面粘附。为了完成这些功能,它们依赖于唯一的接口绑定属性。采用原子细节隐式溶剂刚体布朗动力学模拟,研究了里氏木霉ⅱ类疏水蛋白HFBI在存在和不存在石墨表面的水溶液中的扩散。结果:在模拟中,HFBI以单体和不同类型的低聚物的平衡混合物的形式存在于溶液中。低聚状态取决于HFBI的构象。当模拟体系中存在高度有序热解石墨(HOPG)层时,HFBI倾向于通过蛋白质上的疏水性斑块与HOPG层相互作用。结论:通过对HFBI溶液的模拟,我们确定了一种由HFBI疏水性斑块中脂肪残基之间的非极性相互作用稳定的四聚体相遇配合物。遇络合物形成后,需要在蛋白质界面处进行局部结构重排,以获得HFBI晶体中所见的四聚体排列。石墨表面的模拟表明,由于几何阻碍和脂肪侧链与石墨层的相互作用,HFBI蛋白倾向于在疏水表面附近积聚。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Diffusion of hydrophobin proteins in solution and interactions with a graphite surface.

Background: Hydrophobins are small proteins produced by filamentous fungi that have a variety of biological functions including coating of spores and surface adhesion. To accomplish these functions, they rely on unique interface-binding properties. Using atomic-detail implicit solvent rigid-body Brownian dynamics simulations, we studied the diffusion of HFBI, a class II hydrophobin from Trichoderma reesei, in aqueous solution in the presence and absence of a graphite surface.

Results: In the simulations, HFBI exists in solution as a mixture of monomers in equilibrium with different types of oligomers. The oligomerization state depends on the conformation of HFBI. When a Highly Ordered Pyrolytic Graphite (HOPG) layer is present in the simulated system, HFBI tends to interact with the HOPG layer through a hydrophobic patch on the protein.

Conclusions: From the simulations of HFBI solutions, we identify a tetrameric encounter complex stabilized by non-polar interactions between the aliphatic residues in the hydrophobic patch on HFBI. After the formation of the encounter complex, a local structural rearrangement at the protein interfaces is required to obtain the tetrameric arrangement seen in HFBI crystals. Simulations performed with the graphite surface show that, due to a combination of a geometric hindrance and the interaction of the aliphatic sidechains with the graphite layer, HFBI proteins tend to accumulate close to the hydrophobic surface.

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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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