Department of Bioengineering, University of Washington, Seattle, Washington 98195, United States.
Biochemistry. 2012 Jan 17;51(2):597-607. doi: 10.1021/bi201221j. Epub 2012 Jan 3.
We report a point mutation in the second contact shell of the high-affinity streptavidin-biotin complex that appears to reduce binding affinity through transmitted effects on equilibrium dynamics. The Y54F streptavidin mutation causes a 75-fold loss of binding affinity with 73-fold faster dissociation, a large loss of binding enthalpy (ΔΔH = 3.4 kcal/mol at 37 °C), and a small gain in binding entropy (TΔΔS = 0.7 kcal/mol). The removed Y54 hydroxyl is replaced by a water molecule in the bound structure, but there are no observable changes in structure in the first contact shell and no additional changes surrounding the mutation. Molecular dynamics simulations reveal a large increase in the atomic fluctuation amplitudes for W79, a key biotin contact residue, compared to the fluctuation amplitudes in the wild-type. The increased W79 atomic fluctuation amplitudes are caused by loss of water-mediated hydrogen bonds between the Y54 hydroxyl group and peptide backbone atoms in and near W79. We propose that the increased atomic fluctuation amplitudes diminish the integrity of the W79-biotin interaction and represents a loosening of the "tryptophan collar" that is critical to the slow dissociation and high affinity of streptavidin-biotin binding. These results illustrate how changes in protein dynamics distal to the ligand binding pocket can have a profound impact on ligand binding, even when equilibrium structure is unperturbed.
我们报告了高亲和力链霉亲和素-生物素复合物的第二个接触壳层中的一个点突变,该突变似乎通过对平衡动力学的传递效应降低了结合亲和力。Y54F 链霉亲和素突变导致结合亲和力降低 75 倍,解离速度加快 73 倍,结合焓降低(37°C 时 ΔΔH = 3.4 kcal/mol),结合熵略有增加(TΔΔS = 0.7 kcal/mol)。结合结构中被去除的 Y54 羟基被一个水分子取代,但在第一接触壳层中没有观察到结构发生变化,并且在突变周围也没有发生其他变化。分子动力学模拟显示,与野生型相比,关键生物素接触残基 W79 的原子波动幅度大大增加。与 W79 中肽骨架原子之间的 Y54 羟基的水介导氢键的丧失导致 W79 的原子波动幅度增加。我们提出,增加的原子波动幅度削弱了 W79-生物素相互作用的完整性,并代表了对链霉亲和素-生物素结合的缓慢解离和高亲和力至关重要的“色氨酸环”的松弛。这些结果表明,即使平衡结构不受干扰,配体结合口袋远端的蛋白质动力学变化也会对配体结合产生深远影响。