Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, MA, 02138, USA.
Schrödinger, Sanali Infopark, 8-2-120/113 Banjara Hills, Hyderabad, 11937, Andhra Pradesh, India.
Angew Chem Int Ed Engl. 2017 Mar 27;56(14):3833-3837. doi: 10.1002/anie.201609409. Epub 2017 Mar 2.
This study uses mutants of human carbonic anhydrase (HCAII) to examine how changes in the organization of water within a binding pocket can alter the thermodynamics of protein-ligand association. Results from calorimetric, crystallographic, and theoretical analyses suggest that most mutations strengthen networks of water-mediated hydrogen bonds and reduce binding affinity by increasing the enthalpic cost and, to a lesser extent, the entropic benefit of rearranging those networks during binding. The organization of water within a binding pocket can thus determine whether the hydrophobic interactions in which it engages are enthalpy-driven or entropy-driven. Our findings highlight a possible asymmetry in protein-ligand association by suggesting that, within the confines of the binding pocket of HCAII, binding events associated with enthalpically favorable rearrangements of water are stronger than those associated with entropically favorable ones.
本研究使用人碳酸酐酶(HCAII)的突变体来研究结合口袋内水分子的组织变化如何改变蛋白质-配体结合的热力学。量热学、晶体学和理论分析的结果表明,大多数突变通过增加结合过程中重新排列这些网络的焓值成本,以及在较小程度上增加熵值收益,增强了水介导氢键的网络,并降低了结合亲和力。因此,结合口袋内水分子的组织可以决定其参与的疏水相互作用是由焓驱动还是熵驱动。我们的研究结果强调了蛋白质-配体结合的一种可能的不对称性,表明在 HCAII 的结合口袋的限制范围内,与水的焓有利重排相关的结合事件比与熵有利重排相关的结合事件更强。