Tjong Harianto, Zhou Huan-Xiang
Department of Physics and Institute of Molecular Biophysics and School of Computational Science, Florida State University, Tallahassee, Florida 32306, USA.
Biophys J. 2008 Sep 15;95(6):2601-9. doi: 10.1529/biophysj.107.127746. Epub 2008 May 30.
Solubility plays a major role in protein purification, and has serious implications in many diseases. We studied the effects of pH and mutations on protein solubility by calculating the transfer free energy from the condensed phase to the solution phase. The condensed phase was modeled as an implicit solvent, with a dielectric constant lower than that of water. To account for the effects of pH, the protonation states of titratable side chains were sampled by running constant-pH molecular dynamics simulations. Conformations were then selected for calculations of the electrostatic solvation energy: once for the condensed phase, and once for the solution phase. The average transfer free energy from the condensed phase to the solution phase was found to predict reasonably well the variations in solubility of ribonuclease Sa and insulin with pH. This treatment of electrostatic contributions combined with a similar approach for nonelectrostatic contributions led to a quantitative rationalization of the effects of point mutations on the solubility of ribonuclease Sa. This study provides valuable insights into the physical basis of protein solubility.
溶解度在蛋白质纯化中起着重要作用,并且在许多疾病中具有严重影响。我们通过计算从凝聚相到溶液相的转移自由能,研究了pH值和突变对蛋白质溶解度的影响。凝聚相被建模为一种介电常数低于水的隐式溶剂。为了考虑pH值的影响,通过进行恒pH分子动力学模拟对可滴定侧链的质子化状态进行采样。然后选择构象来计算静电溶剂化能:一次用于凝聚相,一次用于溶液相。发现从凝聚相到溶液相的平均转移自由能能够合理地预测核糖核酸酶Sa和胰岛素的溶解度随pH值的变化。这种对静电贡献的处理方法与对非静电贡献的类似方法相结合,导致了对单点突变对核糖核酸酶Sa溶解度影响的定量合理化。这项研究为蛋白质溶解度的物理基础提供了有价值的见解。