Residue-Position-Dependent Modulation of Urethanase Activity for Polyurethane Depolymerization

Abstract Enzymatic depolymerization of hydrolyzable plastics, such as polyurethane (PU), opens a promising route for the eco-friendly recycling of plastic waste. A comprehensive understanding of the molecular mechanisms governing enzyme-catalyzed PU hydrolysis is crucial for engineering high-performance enzymes. Here, we combined extensive molecular dynamics simulations, hybrid quantum mechanics/molecular mechanics calculations, and experimental mutagenesis to elucidate how residues in distinct spatial regions regulate substrate binding and catalysis in UMG-SP2. Our results reveal that residues in the first shell (e.g., L140) stabilize the substrate in a catalytically productive conformation within the active-site pocket. Three flexible loop regions, H215–L227, L320–D346, and S377–L400, are identified as potential regulators of substrate capture. Furthermore, we quantify the contributions of individual surface-exposed charged residues to the reaction-relevant electric fields in the active site. The reaction mechanism comprises acylation and deacylation stages, with the rate-determining step corresponding to water-assisted nucleophilic attack. Experimental mutagenesis demonstrates that substitutions at residues in different spatial regions selectively modulate substrate binding and catalytic activity, leading to distinct and substrate-dependent effects on low-molecular-weight dicarbamate hydrolysis and PU depolymerization. Collectively, these findings reveal a residue-position-dependent modulation framework for urethanase activity and establish a general mechanism-guided strategy for advancing enzymatic PU depolymerization and recycling.

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Publication Details

Journal
ACS Catalysis
Published
2026-09-29
DOI
https://doi.org/10.1021/acscatal.6c04525
Primary Topic
Microplastics and Plastic Pollution
Type
article
Field-Weighted Citation Impact
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article

Residue-Position-Dependent Modulation of Urethanase Activity for Polyurethane Depolymerization

Weiliang Dong, Mingna Zheng, Ren Wei, Yanwei Li et al.
ACS Catalysis
Microplastics and Plastic Pollution
article

Residue-Position-Dependent Modulation of Urethanase Activity for Polyurethane Depolymerization

Weiliang Dong, Mingna Zheng, Ren Wei, Yanwei Li, Qingzhu Zhang, Ziqin Li, Wenxing Wang, Jiawei Liu, Xiaomin Zhu, Weixin Zhang, Caihua Liang
article en

Abstract

Abstract Enzymatic depolymerization of hydrolyzable plastics, such as polyurethane (PU), opens a promising route for the eco-friendly recycling of plastic waste. A comprehensive understanding of the molecular mechanisms governing enzyme-catalyzed PU hydrolysis is crucial for engineering high-performance enzymes. Here, we combined extensive molecular dynamics simulations, hybrid quantum mechanics/molecular mechanics calculations, and experimental mutagenesis to elucidate how residues in distinct spatial regions regulate substrate binding and catalysis in UMG-SP2. Our results reveal that residues in the first shell (e.g., L140) stabilize the substrate in a catalytically productive conformation within the active-site pocket. Three flexible loop regions, H215–L227, L320–D346, and S377–L400, are identified as potential regulators of substrate capture. Furthermore, we quantify the contributions of individual surface-exposed charged residues to the reaction-relevant electric fields in the active site. The reaction mechanism comprises acylation and deacylation stages, with the rate-determining step corresponding to water-assisted nucleophilic attack. Experimental mutagenesis demonstrates that substitutions at residues in different spatial regions selectively modulate substrate binding and catalytic activity, leading to distinct and substrate-dependent effects on low-molecular-weight dicarbamate hydrolysis and PU depolymerization. Collectively, these findings reveal a residue-position-dependent modulation framework for urethanase activity and establish a general mechanism-guided strategy for advancing enzymatic PU depolymerization and recycling.

ACS Catalysis
Nanjing Tech University (CN), Shandong University (CN), RWTH Aachen University (DE)
Responsible consumption and production
Openalex Percentile: Top 23%
Microplastics and Plastic Pollution
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