Fan Hao, Wang Xiaoqin, Zhu Jiang, Robillard George T, Mark Alan E
Groningen Biomolecular Sciences and Biotechnology Institute (GBB), Department of Biophysical Chemistry, University of Groningen, Groningen, the Netherlands.
Proteins. 2006 Sep 1;64(4):863-73. doi: 10.1002/prot.20936.
Hydrophobins are small ( approximately 100 aa) proteins that have an important role in the growth and development of mycelial fungi. They are surface active and, after secretion by the fungi, self-assemble into amphipathic membranes at hydrophobic/hydrophilic interfaces, reversing the hydrophobicity of the surface. In this study, molecular dynamics simulation techniques have been used to model the process by which a specific class I hydrophobin, SC3, binds to a range of hydrophobic/hydrophilic interfaces. The structure of SC3 used in this investigation was modeled based on the crystal structure of the class II hydrophobin HFBII using the assumption that the disulfide pairings of the eight conserved cysteine residues are maintained. The proposed model for SC3 in aqueous solution is compact and globular containing primarily beta-strand and coil structures. The behavior of this model of SC3 was investigated at an air/water, an oil/water, and a hydrophobic solid/water interface. It was found that SC3 preferentially binds to the interfaces via the loop region between the third and fourth cysteine residues and that binding is associated with an increase in alpha-helix formation in qualitative agreement with experiment. Based on a combination of the available experiment data and the current simulation studies, we propose a possible model for SC3 self-assembly on a hydrophobic solid/water interface.
疏水蛋白是一种小分子(约100个氨基酸)蛋白质,在丝状真菌的生长和发育中起着重要作用。它们具有表面活性,在真菌分泌后,会在疏水/亲水界面处自组装成两亲性膜,从而改变表面的疏水性。在本研究中,分子动力学模拟技术已被用于模拟特定的I类疏水蛋白SC3与一系列疏水/亲水界面结合的过程。本研究中使用的SC3结构是基于II类疏水蛋白HFBII的晶体结构构建的,假设八个保守半胱氨酸残基的二硫键配对得以维持。所提出的SC3在水溶液中的模型是紧凑的球状,主要包含β-链和卷曲结构。在空气/水、油/水和疏水固体/水界面研究了该SC3模型的行为。研究发现,SC3优先通过第三个和第四个半胱氨酸残基之间的环区域与界面结合,并且这种结合与α-螺旋形成的增加相关,这与实验结果在定性上是一致的。基于现有实验数据和当前模拟研究的结合,我们提出了一个SC3在疏水固体/水界面上自组装的可能模型。