Department of Chemistry, University at Buffalo, The State University of New York, Buffalo, NY 14260, USA.
J Med Chem. 2012 Oct 11;55(19):8283-302. doi: 10.1021/jm300472k. Epub 2012 Sep 19.
Ligand functional groups can modulate the contributions of one another to the ligand-protein binding thermodynamics, producing either positive or negative cooperativity. Data presented for four thermolysin phosphonamidate inhibitors demonstrate that the differential binding free energy and enthalpy caused by replacement of a H with a Me group, which binds in the well-hydrated S2' pocket, are more favorable in presence of a ligand carboxylate. The differential entropy is however less favorable. Dissection of these differential thermodynamic parameters, X-ray crystallography, and density-functional theory calculations suggest that these cooperativities are caused by variations in the thermodynamics of the complex hydration shell changes accompanying the H→Me replacement. Specifically, the COO(-) reduces both the enthalpic penalty and the entropic advantage of displacing water molecules from the S2' pocket and causes a subsequent acquisition of a more enthalpically, less entropically, favorable water network. This study contributes to understanding the important role water plays in ligand-protein binding.
配体官能团可以调节彼此对配体-蛋白质结合热力学的贡献,产生正或负协同作用。为四个糜蛋白酶膦酰胺抑制剂提供的数据表明,在配体羧酸根存在的情况下,用在 S2' 口袋中充分水合的部位结合的 Me 基团取代 H 基团,会导致结合自由能和焓的差异更有利。然而,差异熵却不太有利。对这些差异热力学参数、X 射线晶体学和密度泛函理论计算的剖析表明,这些协同作用是由伴随 H→Me 取代的复杂水合壳变化的热力学变化引起的。具体来说,COO(-)减少了从 S2' 口袋中置换水分子的焓罚和熵优势,并导致随后获得更有利于焓、不利于熵的有利水网络。本研究有助于理解水在配体-蛋白质结合中所起的重要作用。