The MITRE Corporation, Bedford, Massachusetts, United States of America.
PLoS One. 2011;6(5):e20335. doi: 10.1371/journal.pone.0020335. Epub 2011 May 31.
Human Serum paraoxonase 1 (HuPON1) is an enzyme that has been shown to hydrolyze a variety of chemicals including the nerve agent VX. While wildtype HuPON1 does not exhibit sufficient activity against VX to be used as an in vivo countermeasure, it has been suggested that increasing HuPON1's organophosphorous hydrolase activity by one or two orders of magnitude would make the enzyme suitable for this purpose. The binding interaction between HuPON1 and VX has recently been modeled, but the mechanism for VX hydrolysis is still unknown. In this study, we created a transition state model for VX hydrolysis (VX(ts)) in water using quantum mechanical/molecular mechanical simulations, and docked the transition state model to 22 experimentally characterized HuPON1 variants using AutoDock Vina. The HuPON1-VX(ts) complexes were grouped by reaction mechanism using a novel clustering procedure. The average Vina interaction energies for different clusters were compared to the experimentally determined activities of HuPON1 variants to determine which computational procedures best predict how well HuPON1 variants will hydrolyze VX. The analysis showed that only conformations which have the attacking hydroxyl group of VX(ts) coordinated by the sidechain oxygen of D269 have a significant correlation with experimental results. The results from this study can be used for further characterization of how HuPON1 hydrolyzes VX and design of HuPON1 variants with increased activity against VX.
人血清对氧磷酶 1(HuPON1)是一种能够水解多种化学物质的酶,包括神经毒剂 VX。虽然野生型 HuPON1 对 VX 没有足够的水解活性,不能作为体内对抗剂使用,但有人认为将 HuPON1 的有机磷水解酶活性提高一个或两个数量级,就可以使该酶适合这一用途。HuPON1 与 VX 的结合相互作用最近已被建模,但 VX 水解的机制仍不清楚。在这项研究中,我们使用量子力学/分子力学模拟在水中创建了 VX 水解的过渡态模型(VX(ts)),并用 AutoDock Vina 将过渡态模型对接至 22 个经过实验表征的 HuPON1 变体。使用一种新的聚类程序,根据反应机制对 HuPON1-VX(ts) 复合物进行分组。比较不同簇的平均 Vina 相互作用能与 HuPON1 变体的实验活性,以确定哪种计算程序最能预测 HuPON1 变体水解 VX 的效果。分析表明,只有 VX(ts) 的进攻性羟基由 D269 的侧链氧配位的构象,才与实验结果有显著相关性。这项研究的结果可用于进一步研究 HuPON1 水解 VX 的机制,并设计对 VX 活性更高的 HuPON1 变体。