State Key Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry, Jilin University, Changchun, Jilin, People's Republic of China.
PLoS One. 2013;8(1):e53811. doi: 10.1371/journal.pone.0053811. Epub 2013 Jan 7.
The binding of (E)-2-(acetamidomethylene)succinate (E-2AMS) to E-2AMS hydrolase is crucial for biological function of the enzyme and the last step reaction of vitamin B(6) biological degradation. In the present study, several molecular simulation methods, including molecular docking, conventional molecular dynamics (MD), steered MD (SMD), and free energy calculation methods, were properly integrated to investigate the detailed binding process of E-2AMS to its hydrolase and to assign the optimal enzyme-substrate complex conformation. It was demonstrated that the substrate binding conformation with trans-form amide bond is energetically preferred conformation, in which E-2AMS's pose not only ensures hydrogen bond formation of its amide oxygen atom with the vicinal oxyanion hole but also provides probability of the hydrophobic interaction between its methyl moiety and the related enzyme's hydrophobic cavity. Several key residues, Arg146, Arg167, Tyr168, Arg179, and Tyr259, orientate the E-2AMS's pose and stabilize its conformation in the active site via the hydrogen bond interaction with E-2AMS. Sequentially, the binding process of E-2AMS to E-2AMS hydrolase was studied by SMD simulation, which shows the surprising conformational reversal of E-2AMS. Several important intermediate structures and some significant residues were identified in the simulation. It is stressed that Arg146 and Arg167 are two pivotal residues responsible for the conformational reversal of E-2AMS in the binding or unbinding. Our research has shed light onto the full binding process of the substrate to E-2AMS hydrolase, which could provide more penetrating insight into the interaction of E-2AMS with the enzyme and would help in the further exploration on the catalysis mechanism.
(E)-2-(乙酰亚氨基)琥珀酸(E-2AMS)与 E-2AMS 水解酶的结合对于该酶的生物学功能和维生素 B(6)生物降解的最后一步反应至关重要。在本研究中,适当整合了几种分子模拟方法,包括分子对接、常规分子动力学(MD)、导向 MD(SMD)和自由能计算方法,以研究 E-2AMS 与水解酶的详细结合过程,并确定最佳的酶-底物复合物构象。结果表明,具有反式酰胺键的底物结合构象是能量上优选的构象,其中 E-2AMS 的构象不仅确保其酰胺氧原子与邻近的亲核空穴形成氢键,而且还提供了其甲基部分与相关酶的疏水性腔之间发生疏水相互作用的可能性。几个关键残基,Arg146、Arg167、Tyr168、Arg179 和 Tyr259,通过与 E-2AMS 的氢键相互作用,定向 E-2AMS 的构象并稳定其在活性位点中的构象。随后,通过 SMD 模拟研究了 E-2AMS 与 E-2AMS 水解酶的结合过程,结果显示 E-2AMS 惊人的构象反转。在模拟中鉴定了几个重要的中间结构和一些重要的残基。值得强调的是,Arg146 和 Arg167 是负责 E-2AMS 在结合或脱结合过程中构象反转的两个关键残基。我们的研究揭示了底物与 E-2AMS 水解酶完全结合的过程,这可以更深入地了解 E-2AMS 与酶的相互作用,并有助于进一步探索催化机制。