Ahmad Mazen, Helms Volkhard, Lengauer Thomas, Kalinina Olga V
Department for Computational Biology and Applied Algorithmics, Max Planck Institute for Informatics , Campus E1 4, 66123 Saarbrücken, Germany.
Center for Bioinformatics, Saarland University , 66123 Saarbrücken, Germany.
J Chem Theory Comput. 2015 Apr 14;11(4):1410-8. doi: 10.1021/ct501161t. Epub 2015 Mar 11.
The change in free energy is the dominant factor in all chemical processes; it usually encompasses enthalpy-entropy compensation (EEC). Here, we use the free energy perturbation formalism to show that EEC is influenced by the molecular conformational changes (CCs) of the entire system comprising the solute and by the already known solvent reorganization. The internal changes of enthalpy and the entropy due to CCs upon modifying the interactions (perturbation) cancel each other exactly. The CCs influence the dissipation of the modified interactions and their contributions to the free energy. Using molecular simulations, we show that, for solvation of six different HIV-1 protease inhibitors, CCs in the solute cause EEC as large as 10-30 kcal/mol. Moreover, the EEC due to CCs in HIV-1 protease is shown to vary significantly upon modifying its bound ligand. These findings have important implications for understanding of EEC phenomena and for interpretation of thermodynamic measurements.
自由能的变化是所有化学过程中的主导因素;它通常包含焓-熵补偿(EEC)。在此,我们使用自由能微扰形式来表明,EEC受包含溶质的整个系统的分子构象变化(CCs)以及已知的溶剂重组的影响。在改变相互作用(微扰)时,由于CCs导致的焓和熵的内部变化恰好相互抵消。CCs影响修饰后的相互作用的耗散及其对自由能的贡献。通过分子模拟,我们表明,对于六种不同的HIV-1蛋白酶抑制剂的溶剂化,溶质中的CCs导致的EEC高达10 - 30千卡/摩尔。此外,HIV-1蛋白酶中由于CCs导致的EEC在改变其结合配体时显示出显著变化。这些发现对于理解EEC现象和解释热力学测量具有重要意义。