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解析聚对苯二甲酸乙二醇酯(PET)水解酶设计中的稳定性与灵活性的相互作用。

Unraveling the Interplay between Stability and Flexibility in the Design of Polyethylene Terephthalate (PET) Hydrolases.

机构信息

Advanced Materials Thrust, Function Hub, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou, Guangdong 511400, China.

Guangzhou Municipal Key Laboratory of Materials Informatics, The Hong Kong University of Science and Technology (Guangzhou), Guangzhou, Guangdong 511400, China.

出版信息

J Chem Inf Model. 2024 Oct 14;64(19):7576-7589. doi: 10.1021/acs.jcim.4c00877. Epub 2024 Sep 13.

Abstract

The accumulation of polyethylene terephthalate (PET), a widely used polyester plastic in packaging and textiles, has led to a global environmental crisis. Biodegradation presents a promising strategy for PET recycling, with PET hydrolases (PETase) undertaking the task at the molecular level. Unfortunately, PETase operates only at ambient temperatures with low efficiency, limiting its industrial application. Current engineering efforts focus on enhancing the thermostability of PETase, but increased stability can reduce the structural dynamics needed for substrate binding, potentially slowing enzymatic activity. To elucidate the balance between stability and flexibility in optimizing PETase catalytic activity, we performed theoretical investigations on both wild-type PETase (WT-PETase) and a thermophilic variant (Thermo-PETase) using molecular dynamics simulations and frustration analysis. Despite being initially designed to stabilize the native structure of the enzyme, our findings reveal that Thermo-PETase exhibits an unprecedented increase in structural flexibility at the PET-binding and catalytic sites, beneficial for substrate recruitment and product release, compared to WT-PETase. Upon PET binding, we observed that the structural dynamics of Thermo-PETase is largely quenched, favoring the proximity between the catalytic residues and the carbonyl of the PET substrate. This may potentially contribute to a higher probability of a catalytic reaction occurring in Thermo-PETase compared to WT-PETase. We suggest that Thermo-PETase can exhibit higher PET-degradation performance than WT-PETase across a broad temperature range by leveraging stability and flexibility at high and low temperatures, respectively. Our findings provide valuable insights into how PETase optimizes its enzymatic performance by balancing stability and flexibility, which may contribute to future PETase design strategies.

摘要

聚对苯二甲酸乙二醇酯(PET)的积累,一种广泛应用于包装和纺织品的聚酯塑料,已经导致了全球性的环境危机。生物降解为 PET 回收提供了一个有前途的策略,而 PET 水解酶(PETase)在分子水平上承担着这一任务。不幸的是,PETase 仅在环境温度下以低效率运行,限制了其工业应用。目前的工程努力集中在提高 PETase 的热稳定性上,但增加稳定性会降低底物结合所需的结构动力学,可能会减缓酶的活性。为了阐明在优化 PETase 催化活性时稳定性和灵活性之间的平衡,我们使用分子动力学模拟和挫折分析对野生型 PETase(WT-PETase)和一种嗜热变体(Thermo-PETase)进行了理论研究。尽管最初设计是为了稳定酶的天然结构,但我们的发现表明,与 WT-PETase 相比,Thermo-PETase 在 PET 结合和催化部位表现出前所未有的结构灵活性增加,这有利于底物的募集和产物的释放。在结合 PET 后,我们观察到 Thermo-PETase 的结构动力学在很大程度上被猝灭,有利于催化残基和 PET 底物羰基之间的接近。这可能有助于在 Thermo-PETase 中发生催化反应的概率高于 WT-PETase。我们认为,Thermo-PETase 可以通过分别在高低温下利用稳定性和灵活性,在较宽的温度范围内表现出比 WT-PETase 更高的 PET 降解性能。我们的发现为 PETase 通过平衡稳定性和灵活性来优化其酶性能提供了有价值的见解,这可能有助于未来的 PETase 设计策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2683/11480994/6f38774e52d0/ci4c00877_0001.jpg

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