School of Chemistry and Chemical Engineering, Queen's University Belfast, David Keir Building, Stranmillis Road, Belfast, BT9 5AG, Northern Ireland, UK.
Org Biomol Chem. 2019 Feb 27;17(9):2423-2431. doi: 10.1039/c8ob03197e.
Mevalonate Kinase (MVK) catalyses the ATP-Mg2+ mediated phosphate transfer of mevalonate to produce mevalonate 5-phosphate and is a key kinase in the mevalonate pathway in the biosynthesis of isopentenyl diphosphate, the precursor of isoprenoid-based biofuels. However, the crystal structure in complex with the native substrate mevalonate, ATP and Mg2+ has not been resolved, which has limited the understanding of its reaction mechanism and therefore its application in the production of isoprenoid-based biofuels. Here using molecular docking, molecular dynamics (MD) simulations and a hybrid QM/MM study, we revisited the location of Mg2+ resolved in the crystal structure of MVK and determined a catalytically competent MVK structure in complex with the native substrate mevalonate and ATP. We demonstrated that significant conformational change on a flexible loop connecting the α6 and α7 helix is induced by the substrate binding. Further, we found that Asp204 is coordinated to the Mg2+ ion. Arg241 plays a crucial role in organizing the triphosphoryl tail of ATP for in-line phosphate transfer and stabilizing the negative charge that accumulates at the β,γ-bridging oxygen of ATP upon bond cleavage. Remarkably, we revealed that the phosphorylation of mevalonate catalyzed by MVK occurs via a direct phosphorylation mechanism, instead of the conventionally postulated catalytic base mechanism. The catalytically competent complex structure of MVK as well as the mechanism of reaction will pave the way for the rational engineering of MVK to exploit its applications in the production of biofuels.
甲羟戊酸激酶(MVK)催化 ATP-Mg2+介导的焦磷酸转移,将甲羟戊酸转化为甲羟戊酸 5-磷酸,是异戊烯二磷酸生物合成途径中的关键激酶,异戊烯二磷酸是基于异戊烯的生物燃料的前体。然而,与天然底物甲羟戊酸、ATP 和 Mg2+ 形成复合物的晶体结构尚未解析,这限制了对其反应机制的理解,从而限制了其在基于异戊烯的生物燃料生产中的应用。在这里,我们使用分子对接、分子动力学(MD)模拟和混合 QM/MM 研究,重新考察了在 MVK 晶体结构中解析的 Mg2+的位置,并确定了与天然底物甲羟戊酸和 ATP 形成复合物的催化有效 MVK 结构。我们证明了底物结合诱导连接α6 和 α7 螺旋的柔性环发生显著的构象变化。此外,我们发现 Asp204 与 Mg2+ 离子配位。Arg241 在组织三磷酸腺苷的三磷酸尾以供线性磷酸转移以及稳定在键断裂时在 ATP 的β、γ-桥氧上积累的负电荷方面发挥着至关重要的作用。值得注意的是,我们揭示了 MVK 催化的甲羟戊酸磷酸化通过直接磷酸化机制发生,而不是传统上假定的催化碱机制。MVK 的催化有效复合物结构以及反应机制将为 MVK 的合理工程化铺平道路,以利用其在生物燃料生产中的应用。