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一种靶向聚氨酯以实现可持续回收利用的酰胺酶的结构与功能表征

Structural and Functional Characterization of an Amidase Targeting a Polyurethane for Sustainable Recycling.

作者信息

Rotilio Laura, Bayer Thomas, Meinert Hannes, Teixeira Luis M C, Johansen Martin B, Sommerfeldt Andreas, Petersen Allan R, Sandahl Alexander, Keller Malene B, Holck Jesper, Paiva Pedro, Otzen Daniel E, Bornscheuer Uwe T, Wei Ren, Fernandes Pedro A, Ramos Maria J, Westh Peter, Morth J Preben

机构信息

EnZync Center for Enzymatic Deconstruction of Thermoset Plastics.

Biotechnology and Biomedicine, Technical University of Denmark, Søltofts Plads, DK-2800, Kongens Lyngby, Denmark.

出版信息

Angew Chem Int Ed Engl. 2025 Feb 10;64(7):e202419535. doi: 10.1002/anie.202419535. Epub 2024 Dec 20.

Abstract

Global plastic production exceeded 400 million tons in 2022, urgently demanding improved waste management and recycling strategies for a circular plastic economy. While the enzymatic hydrolysis of polyethylene terephthalate (PET) has become feasible on industrial scales, efficient enzymes targeting other hydrolyzable plastic types, such as polyurethanes (PURs), are lacking. Recently, enzymes of the amidase signature (AS) family, capable of cleaving urethane bonds in a polyether-PUR analog and a linear polyester-PUR, have been identified. Herein, we present high-resolution crystal structures of the AS enzyme UMG-SP3 in three states: ligand-free, bound with a suicidal inhibitor mimicking the transition state, and bound with a monomeric PUR degradation product. Besides revealing the conserved core and catalytic triad akin to other AS family members, the UMG-SP3 structures show remarkable flexibility of loop regions. Particularly, Arg209 in loop 3 adopts two induced-fit conformations upon ligand binding. Through structure-guided kinetic studies and enzyme engineering, we mapped structural key elements that determine the enhanced hydrolysis of urethane and amide bonds in various small molecules, including a linear PUR fragment analog. Our findings contribute critical insights into urethanase activity, aiding PUR degradation campaigns and sustainable plastic recycling efforts in the future.

摘要

2022年全球塑料产量超过4亿吨,迫切需要改进废物管理和回收策略以实现塑料循环经济。虽然聚对苯二甲酸乙二酯(PET)的酶促水解在工业规模上已变得可行,但针对其他可水解塑料类型(如聚氨酯(PURs))的高效酶却很缺乏。最近,已鉴定出酰胺酶特征(AS)家族的酶,它们能够切割聚醚-PUR类似物和线性聚酯-PUR中的脲键。在此,我们展示了AS酶UMG-SP3在三种状态下的高分辨率晶体结构:无配体状态、与模拟过渡态的自杀性抑制剂结合状态以及与单体PUR降解产物结合状态。除了揭示与其他AS家族成员相似的保守核心和催化三联体外,UMG-SP3的结构还显示出环区域具有显著的灵活性。特别是,环3中的Arg209在配体结合时会采用两种诱导契合构象。通过结构导向的动力学研究和酶工程,我们确定了决定各种小分子(包括线性PUR片段类似物)中脲键和酰胺键增强水解的结构关键元件。我们的研究结果为脲酶活性提供了重要见解,有助于未来的PUR降解行动和可持续塑料回收工作。

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