Interdisciplinary Program of Biomedical, Electrical & Mechanical Engineering, Pukyong National University, Busan 48513, Korea.
Department of Biomedical Engineering, Pukyong National University, Busan 48513, Korea.
Molecules. 2020 Mar 12;25(6):1288. doi: 10.3390/molecules25061288.
The inhibition of human angiotensin I converting enzyme (ACE) has been regarded as a promising approach for the treatment of hypertension. Despite research attempts over many years, our understanding the mechanisms of activation and inhibition of ACE is still far from complete. Here, we present results of all atom molecular dynamics simulations of ACE with and without ligands. Two types of inhibitors, competitive and mixed non-competitive, were used to model the ligand bound forms. In the absence of a ligand the simulation showed spontaneous large hinge-bending motions of multiple conversions between the closed and open states of ACE, while the ligand bound forms were stable in the closed state. Our simulation results imply that the equilibrium between pre-existing backbone conformations shifts in the presence of a ligand. The hinge-bending motion of ACE is considered as an essential to the enzyme function. A mechanistic model of activation and the inhibition may provide valuable information for novel inhibitors of ACE.
人血管紧张素转化酶(ACE)的抑制作用一直被认为是治疗高血压的一种很有前途的方法。尽管多年来进行了大量的研究,但我们对 ACE 激活和抑制机制的理解还远远不够。在这里,我们展示了 ACE 与配体和无配体的全原子分子动力学模拟结果。使用了两种类型的抑制剂,竞争性和混合非竞争性抑制剂,来模拟配体结合形式。在没有配体的情况下,模拟显示 ACE 在关闭和开放状态之间自发地发生多次转换的大铰链弯曲运动,而配体结合形式在关闭状态下是稳定的。我们的模拟结果表明,在配体存在的情况下,预先存在的骨架构象之间的平衡会发生变化。ACE 的铰链弯曲运动被认为是酶功能的关键。激活和抑制的机制模型可能为 ACE 的新型抑制剂提供有价值的信息。