Center for Biomolecular Sciences, University of Illinois at Chicago, Chicago, Illinois.
Research Resource Center Biophysics Core, University of Illinois at Chicago, Chicago, Illinois.
Proteins. 2020 Feb;88(2):345-354. doi: 10.1002/prot.25809. Epub 2019 Sep 9.
Recent crystallography studies have shown that the binding site oxyanion hole plays an important role in inhibitor binding, but can exist in two conformations (active/inactive). We have undertaken molecular dynamics (MD) calculations to better understand oxyanion hole dynamics and thermodynamics. We find that the Zika virus (ZIKV) NS2B/NS3 protease maintains a stable closed conformation over multiple 100-ns conventional MD simulations in both the presence and absence of inhibitors. The S1, S2, and S3 pockets are stable as well. However, in two of eight simulations, the A132-G133 peptide bond in the binding pocket of S1' spontaneously flips to form a 3 -helix that corresponds to the inactive conformation of the oxyanion hole, and then maintains this conformation until the end of the 100-ns conventional MD simulations without inversion of the flip. This conformational change affects the S1' pocket in ZIKV NS2B/NS3 protease active site, which is important for small molecule binding. The simulation results provide evidence at the atomic level that the inactive conformation of the oxyanion hole is more favored energetically when no specific interactions are formed between substrate/inhibitor and oxyanion hole residues. Interestingly, however, transition between the active and inactive conformation of the oxyanion hole can be observed by boosting the valley potential in accelerated MD simulations. This supports a proposed induced-fit mechanism of ZIKV NS2B/NS3 protease from computational methods and provides useful direction to enhance inhibitor binding predictions in structure-based drug design.
最近的晶体学研究表明,结合部位的阴离子空穴在抑制剂结合中起着重要作用,但可以存在两种构象(活性/非活性)。我们进行了分子动力学(MD)计算,以更好地了解阴离子空穴的动力学和热力学。我们发现,寨卡病毒(ZIKV)NS2B/NS3 蛋白酶在存在和不存在抑制剂的情况下,在多个 100-ns 常规 MD 模拟中保持稳定的闭合构象。S1、S2 和 S3 口袋也很稳定。然而,在八个模拟中的两个中,S1'结合口袋中的 A132-G133 肽键自发翻转形成 3-螺旋,对应于阴离子空穴的非活性构象,然后在没有翻转的情况下保持这种构象直到 100-ns 常规 MD 模拟结束。这种构象变化影响 ZIKV NS2B/NS3 蛋白酶活性位点中 S1'口袋,这对于小分子结合很重要。模拟结果提供了原子水平的证据,表明当底物/抑制剂与阴离子空穴残基之间没有形成特定相互作用时,阴离子空穴的非活性构象在能量上更有利。有趣的是,然而,通过加速 MD 模拟中的谷势,可以观察到阴离子空穴的活性和非活性构象之间的转变。这从计算方法上支持了 ZIKV NS2B/NS3 蛋白酶的诱导契合机制,并为基于结构的药物设计中增强抑制剂结合预测提供了有用的方向。