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Mechanism of the myosin catalyzed hydrolysis of ATP as rationalized by molecular modeling

机译:通过分子建模合理化肌球蛋白催化ATP水解的机理

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The intrinsic chemical reaction of adenosine triphosphate (ATP) hydrolysis catalyzed by myosin is modeled by using a combined quantum mechanics and molecular mechanics (QM/MM) methodology that achieves a near ab initio representation of the entire model. Starting with coordinates derived from the heavy atoms of the crystal structure (Protein Data Bank ID code 1VOM) in which myosin is bound to the ATP analog ADP·VO_4~-, a minimum-energy path is found for the transformation ATP + H_2O → ADP + P_i that is characterized by two distinct events: (ⅰ) a low activation-energy cleavage of the P_γ—O_(βγ) bond and separation of the γ-phosphate from ADP and (ⅱ) the formation of the inorganic phosphate as a consequence of proton transfers mediated by two water molecules and assisted by the Glu-459-Arg-238 salt bridge of the protein. The minimum-energy model of the enzyme-substrate complex features a stable hydrogen-bonding network in which the lytic water is positioned favorably for a nucleophilic attack of the ATP γ-phosphate and for the transfer of a proton to stably bound second water. In addition, the P_γ—O_(βγ) bond has become significantly longer than in the unbound state of the ATP and thus is predisposed to cleavage. The modeled transformation is viewed as the part of the overall hydrolysis reaction occurring in the closed enzyme pocket after ATP is bound tightly to myosin and before conformational changes preceding release of inorganic phosphate.
机译:肌球蛋白催化的三磷酸腺苷(ATP)水解的内在化学反应是通过使用组合的量子力学和分子力学(QM / MM)方法进行建模的,该方法从头开始就代表了整个模型。从源自肌球蛋白与ATP类似物ADP·VO_4〜-结合的晶体结构(蛋白质数据库ID代码1VOM)的重原子的坐标开始,发现转换ATP + H_2O→ADP的最小能量路径+ P_i的特征在于两个不同的事件:(ⅰ)P_γ-O_(βγ)键的活化能低裂解和γ-磷酸盐与ADP的分离,以及(ⅱ)结果形成无机磷酸盐由两个水分子介导并由蛋白质的Glu-459-Arg-238盐桥协助的质子转移过程酶-底物复合物的最小能量模型具有稳定的氢键网络,其中的裂解水位置有利于ATPγ-磷酸的亲核攻击,并且质子转移到稳定结合的第二水上。另外,P_γ-O_(βγ)键变得比在ATP的未结合状态下明显更长,因此易于断裂。 ATP紧紧结合在肌球蛋白上之后,构象变化之前,无机磷酸盐释放之前,建模的转化被视为在封闭的酶囊中发生的总水解反应的一部分。

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