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Proton-Coupled Conformational Allostery Modulates the Inhibitor Selectivity for beta-Secretase

机译:质子偶联的构象构象调节β-分泌酶的抑制剂选择性

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Many important pharmaceutical targets, such as aspartyl proteases and kinases, exhibit pH-dependent dynamics, functions and inhibition. Accurate prediction of their binding free energies is challenging because current computational techniques neglect the effects of pH. Here we combine free energy perturbation calculations with continuous constant pH molecular dynamics to explore the selectivity of a small molecule inhibitor for beta-secretase (BACE1), an important drug target for Alzheimer's disease. The calculations predicted identical affinity for BACE1 and the closely related cathepsin D at high pH; however, at pH 4.6 the inhibitor is selective for BACE1 by 1.3 kcal/mol, in excellent agreement with experiment. Surprisingly, the pH-dependent selectivity can be attributed to the protonation of His45, which allosterically modulates a loop inhibitor interaction. Allosteric regulation induced by proton binding is likely common in biology; considering such allosteric sites could lead to exciting new opportunities in drug design.
机译:许多重要的药物靶标,例如阿斯巴氨酰蛋白酶和激酶,表现出pH依赖性动力学,功能和抑制。准确预测其绑定能量是具有挑战性的,因为目前的计算技术忽略了pH的影响。在这里,我们将自由能量扰动计算与连续恒定的pH分子动力学结合起来,探讨β-分泌酶(BACE1)的小分子抑制剂的选择性,这是阿尔茨海默病的重要药物靶标。计算预测对Bace1的相同亲和力和高pH的密切相关的组织蛋白酶D;然而,在pH4.6,抑制剂对Bace1选择为1.3kcal / mol,与实验非常一致。令人惊讶的是,pH依赖性选择性可以归因于HIS45的质子化,其构成激发环抑制剂相互作用。质子结合诱导的变构规则可能在生物学中常见;考虑到这些颠覆的网站可能导致令人兴奋的药物设计的新机遇。

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