Department of Computational and Systems Biology, University of Pittsburgh School of Medicine, 3059 BST3, Pittsburgh, Pennsylvania 15260, USA.
J Phys Chem B. 2012 Jun 14;116(23):6628-36. doi: 10.1021/jp212276m. Epub 2012 Feb 27.
The binding of biotin to avidin is one of the strongest in nature with absolute free energy of binding, ΔA(0) = -20.4 kcal/mol. Therefore, this complex became a target for a large number of computational studies, which all, however, are based on approximate techniques or simplified models and have led to a wide range of results Therefore, ΔA(0) is calculated here by rigorous statistical mechanical methods and models that consider long-range electrostatics. (1) We apply our method, "hypothetical scanning molecular dynamics with thermodynamic integration" (HSMD-TI) to avidin-biotin modeled by periodic boundary conditions with particle mesh ewald (PME). (2) We apply the double decoupling method (DDM) to this system modeled by the spherical solvent boundary potential (SSBP) and the generalized solvent boundary potential (GSBP). The corresponding results for neutral biotin, ΔA(0) = -29.1 ± 0.8 and -25.2 ± 0.5 kcal/mol are significantly lower than the experimental value; we also provide the result for a charged biotin, ΔA(0) = -33.3 ± 0.8 kcal/mol. It is plausible to suggest that this disagreement with the experiment may stem from ignoring the (positive) contribution of a mobile loop that changes its structure upon ligand binding.
生物素与亲和素的结合是自然界中最强的结合之一,结合的绝对自由能为 ΔA(0) = -20.4 kcal/mol。因此,这个复合物成为了大量计算研究的目标,然而,所有这些研究都是基于近似技术或简化模型,得出了广泛的结果。因此,这里通过严格的统计力学方法和考虑长程静电的模型来计算 ΔA(0)。(1)我们应用我们的方法“假设扫描分子动力学与热力学积分”(HSMD-TI),对具有周期性边界条件的亲和素-生物素进行建模,并用粒子网格 Ewald(PME)进行处理。(2)我们将双解耦方法(DDM)应用于这个由球形溶剂边界势(SSBP)和广义溶剂边界势(GSBP)建模的系统。中性生物素的相应结果为 ΔA(0) = -29.1 ± 0.8 和 -25.2 ± 0.5 kcal/mol,明显低于实验值;我们还提供了带电荷生物素的结果,ΔA(0) = -33.3 ± 0.8 kcal/mol。合理的假设是,这种与实验的不一致可能源于忽略了(正)配体结合时改变其结构的可移动环的贡献。