Tobi Dror, Elber Ron, Thirumalai Devarajan
Department of Biological Chemistry, The Hebrew University, Jerusalem 91904, Israel.
Biopolymers. 2003 Mar;68(3):359-69. doi: 10.1002/bip.10290.
The conformational equilibrium of a blocked valine peptide in water and aqueous urea solution is studied using molecular dynamics simulations. Pair correlation functions indicate enhanced concentration of urea near the peptide. Stronger hydrogen bonding of urea-peptide compared to water-peptide is observed with preference for helical conformation. The potential of mean force, computed using umbrella sampling, shows only small differences between urea and water solvation that are difficult to quantify. The changes in solvent structure around the peptide are explained by favorable electrostatic interactions (hydrogen bonds) of urea with the peptide backbone. There is no evidence for significant changes in hydrophobic interactions in the two conformations of the peptide in urea solution. Our simulations suggest that urea denatures proteins by preferentially forming hydrogen bonds to the peptide backbone, reducing the barrier for exposing protein residues to the solvent, and reaching the unfolded state.
使用分子动力学模拟研究了封闭缬氨酸肽在水和尿素水溶液中的构象平衡。对关联函数表明肽附近尿素浓度增加。观察到尿素 - 肽之间的氢键比水 - 肽更强,且更倾向于螺旋构象。使用伞形采样计算的平均力势表明,尿素和水溶剂化之间只有微小差异,难以量化。肽周围溶剂结构的变化是由尿素与肽主链的有利静电相互作用(氢键)解释的。没有证据表明尿素溶液中肽的两种构象的疏水相互作用有显著变化。我们的模拟表明,尿素通过优先与肽主链形成氢键、降低蛋白质残基暴露于溶剂的障碍并达到未折叠状态来使蛋白质变性。