Orlando Carla, Prejanò Mario, Russo Nino, Marino Tiziana
Dipartimento di Chimica e Tecnologie Chimiche Laboratorio PROMOCS cubo 14C, Università della Calabria, 87036, Rende (CS), Italy.
Chembiochem. 2023 Oct 17;24(20):e202300412. doi: 10.1002/cbic.202300412. Epub 2023 Aug 28.
Enzyme FAST-PETase, recently obtained by a machine learning approach, can depolymerize poly(ethylene terephthalate) (PET), a synthetic resin employed in plastics and in clothing fibers. Therefore it represents a promising solution for the recycling of PET-based materials. In this study, a model of PET was adopted to describe the substrate, and all-atoms classical molecular dynamics (MD) simulations on apo- and substrate-bound FAST-PETase were carried out at 30 and 50 °C to provide atomistic details on the binding step of the catalytic cycle. Comparative analysis shed light on the interactions occurring between the FAST-PETase and 4PET at 50 °C, the optimal working conditions of the enzyme. Pre-organization of the enzyme active and binding sites has been highlighted, while MD simulations of FAST-PETase:4PET pointed out the occurrence of solvent-inaccessible conformations of the substrate promoted by the enzyme. Indeed, neither of these conformations was observed during MD simulations of the substrate alone in solution performed at 30, 50 and 150 °C. The analysis led us to propose that, at 50 °C, the FAST-PETase is pre-organized to bind the PET and that the interactions occurring in the binding site can promote a more reactive conformation of PET substrate, thus enhancing the catalytic activity of the enzyme.
最近通过机器学习方法获得的酶FAST-PETase能够解聚聚对苯二甲酸乙二酯(PET),PET是一种用于塑料和服装纤维的合成树脂。因此,它是基于PET的材料回收的一种有前景的解决方案。在本研究中,采用PET模型来描述底物,并在30和50°C下对无底物和结合底物的FAST-PETase进行全原子经典分子动力学(MD)模拟,以提供催化循环结合步骤的原子细节。对比分析揭示了在50°C(该酶的最佳工作条件)下FAST-PETase与4PET之间发生的相互作用。突出了酶活性位点和结合位点的预组织,而FAST-PETase:4PET的MD模拟指出了由酶促进的底物的溶剂不可及构象的出现。实际上,在30、50和150°C下单独对底物进行的溶液MD模拟中均未观察到这些构象。分析使我们提出,在50°C时,FAST-PETase已预组织好以结合PET,并且在结合位点发生的相互作用可以促进PET底物形成更具反应性的构象,从而增强酶的催化活性。