Blood Research Institute, BloodCenter of Wisconsin, P.O. Box 2178, Milwaukee, WI 53201, USA.
J Mol Biol. 2012 Apr 13;417(5):454-67. doi: 10.1016/j.jmb.2012.01.057. Epub 2012 Feb 7.
Ligand binding is a thermodynamically cooperative process in many biochemical systems characterized by the conformational flexibility of the reactants. However, the contribution of conformational entropy to cooperativity of ligation needs to be elucidated. Here, we perform kinetic and thermodynamic analyses on a panel of cycle-mutated peptides, derived from influenza H3 HA(306-319), interacting with wild type and a mutant HLA-DR. We observe that, within a certain range of peptide affinity, this system shows isothermal entropy-enthalpy compensation (iEEC). The incremental increases in conformational entropy measured as disruptive mutations are added in the ligand or receptor are more than sufficient in magnitude to account for the experimentally observed lack of free-energy decrease cooperativity. Beyond this affinity range, compensation is not observed, and therefore, the ability of the residual interactions to form a stable complex decreases in an exponential fashion. Taken together, our results indicate that cooperativity and iEEC constitute the thermodynamic epiphenomena of the structural fluctuation that accompanies ligand-receptor complex formation in flexible systems. Therefore, ligand binding affinity prediction needs to consider how each source of binding energy contributes synergistically to the folding and kinetic stability of the complex in a process based on the trade-off between structural tightening and restraint of conformational mobility.
配体结合是许多生化系统中的一个热力学协同过程,其特点是反应物的构象灵活性。然而,配体连接协同性中构象熵的贡献仍需阐明。在这里,我们对一组源自流感 H3 HA(306-319)的环突变肽进行了动力学和热力学分析,这些肽与野生型和突变型 HLA-DR 相互作用。我们观察到,在一定的肽亲和力范围内,该系统表现出等温热力学补偿(iEEC)。作为配体或受体中添加的破坏性突变所测量的构象熵的增量在幅度上足以解释实验观察到的自由能降低协同性的缺乏。超出这个亲和力范围,就不会观察到补偿,因此,剩余相互作用形成稳定复合物的能力呈指数下降。总之,我们的结果表明,协同性和 iEEC 构成了伴随灵活系统中配体-受体复合物形成的结构波动的热力学伴随现象。因此,配体结合亲和力预测需要考虑每个结合能源如何协同作用,以在基于结构收紧和构象流动性限制之间权衡的过程中促进复合物的折叠和动力学稳定性。