Department of Chemistry, Korea Advanced Institute of Science and Technology, Daejeon 34141, Korea.
Department of Chemistry, Pusan National University, Busan 46241, Korea.
Int J Mol Sci. 2022 Aug 29;23(17):9811. doi: 10.3390/ijms23179811.
The π-π interaction is a major driving force that stabilizes protein assemblies during protein folding. Recent studies have additionally demonstrated its involvement in the liquid-liquid phase separation (LLPS) of intrinsically disordered proteins (IDPs). As the participating residues in IDPs are exposed to water, π-π interactions for LLPS must be modeled in water, as opposed to the interactions that are often established at the hydrophobic domains of folded proteins. Thus, we investigated the association of free energies of benzene and phenol dimers in water by integrating van der Waals (vdW)-corrected density functional theory (DFT) and DFT in classical explicit solvents (DFT-CES). By comparing the vdW-corrected DFT and DFT-CES results with high-level wavefunction calculations and experimental solvation free energies, respectively, we established the quantitative credibility of these approaches, enabling a reliable prediction of the benzene and phenol dimer association free energies in water. We discovered that solvation influences dimer association free energies, but not significantly when no direct hydrogen-bond-type interaction exists between two monomeric units, which can be explained by the enthalpy-entropy compensation. Our comprehensive computational study of the solvation effect on π-π interactions in water could help us understand the molecular-level driving mechanism underlying the IDP phase behaviors.
π-π 相互作用是稳定蛋白质折叠过程中蛋白质组装的主要驱动力。最近的研究还表明,它参与了无序蛋白质(IDP)的液-液相分离(LLPS)。由于 IDP 中参与的残基暴露在水中,因此必须在水中对 LLPS 的 π-π 相互作用进行建模,而不是在折叠蛋白质的疏水区域中经常建立的相互作用。因此,我们通过整合范德华(vdW)校正的密度泛函理论(DFT)和经典显溶剂中的 DFT(DFT-CES)来研究苯和苯酚二聚体在水中的自由能关联。通过分别将 vdW 校正的 DFT 和 DFT-CES 结果与高水平波函数计算和实验溶剂化自由能进行比较,我们确定了这些方法的定量可信度,从而能够可靠地预测苯和苯酚二聚体在水中的结合自由能。我们发现,溶剂化会影响二聚体结合自由能,但当两个单体单元之间不存在直接的氢键型相互作用时,影响不大,这可以用焓熵补偿来解释。我们对水合作用对 π-π 相互作用影响的综合计算研究,可以帮助我们理解 IDP 相行为的分子水平驱动机制。