Suppr超能文献

揭示UMG-SP2脲酶的酶促途径:在原子水平上对聚氨酯降解的见解。

Unveiling the enzymatic pathway of UMG-SP2 urethanase: insights into polyurethane degradation at the atomic level.

作者信息

Paiva P, Teixeira L M C, Wei R, Liu W, Weber G, Morth J P, Westh P, Petersen A R, Johansen M B, Sommerfeldt A, Sandahl A, Otzen D E, Fernandes P A, Ramos M J

机构信息

LAQV@REQUIMTE, Departamento de Química e Bioquímica, Faculdade de Ciências, Universidade do Porto Rua do Campo Alegre s/n 4169-007 Porto Portugal

EnZync Center for Enzymatic Deconstruction of Thermoset Plastics.

出版信息

Chem Sci. 2024 Dec 18;16(5):2437-2452. doi: 10.1039/d4sc06688j. eCollection 2025 Jan 29.

Abstract

The recently discovered metagenomic urethanases UMG-SP1, UMG-SP2, and UMG-SP3 have emerged as promising tools to establish a bio-based recycling approach for polyurethane (PU) waste. These enzymes are capable of hydrolyzing urethane bonds in low molecular weight dicarbamates as well as in thermoplastic PU and the amide bond in polyamide employing a Ser-Ser -Lys triad for catalysis, similar to members of the amidase signature protein superfamily. Understanding the catalytic mechanism of these urethanases is crucial for enhancing their enzymatic activity and improving PU bio-recycling processes. In this study, we employed hybrid quantum mechanics/molecular mechanics methods to delve into the catalytic machinery of the UMG-SP2 urethanase in breaking down a model PU substrate. Our results indicate that the reaction proceeds in two stages: STAGE 1 - acylation, in which the enzyme becomes covalently bound to the PU substrate, releasing an alcohol-leaving group; STAGE 2 - deacylation, in which a catalytic water hydrolyzes the enzyme:ligand covalent adduct, releasing the product in the form of a highly unstable carbamic acid, expected to rapidly decompose into an amine and carbon dioxide. We found that STAGE 1 comprises the rate-limiting step of the overall reaction, consisting of the cleavage of the substrate's urethane bond by its ester moiety and the release of the alcohol-leaving group (overall Gibbs activation energy of 20.8 kcal mol). Lastly, we identified point mutations that are expected to enhance the enzyme's turnover for the hydrolysis of urethane bonds by stabilizing the macrodipole of the rate-limiting transition state. These findings expand our current knowledge of urethanases and homolog enzymes from the amidase signature superfamily, paving the way for future research on improving the enzymatic depolymerization of PU plastic materials.

摘要

最近发现的宏基因组尿烷酶UMG-SP1、UMG-SP2和UMG-SP3已成为建立基于生物的聚氨酯(PU)废料回收方法的有前景的工具。这些酶能够水解低分子量二氨基甲酸盐中的尿烷键以及热塑性PU中的尿烷键,并且能够利用Ser-Ser-Lys三联体催化聚酰胺中的酰胺键,这与酰胺酶特征蛋白超家族的成员相似。了解这些尿烷酶的催化机制对于提高其酶活性和改善PU生物回收过程至关重要。在本研究中,我们采用量子力学/分子力学混合方法深入研究UMG-SP2尿烷酶分解模型PU底物的催化机制。我们的结果表明,反应分两个阶段进行:阶段1 - 酰化,其中酶与PU底物共价结合,释放出醇离去基团;阶段2 - 脱酰化,其中催化水水解酶:配体共价加合物,以高度不稳定的氨基甲酸形式释放产物,预计该产物会迅速分解为胺和二氧化碳。我们发现阶段1包括整个反应的限速步骤,该步骤由底物的尿烷键被其酯部分裂解以及醇离去基团的释放组成(总吉布斯活化能为20.8 kcal/mol)。最后,我们确定了一些点突变,预计这些突变通过稳定限速过渡态的大偶极来提高酶对尿烷键水解的周转率。这些发现扩展了我们目前对尿烷酶和来自酰胺酶特征超家族的同源酶的认识,为未来改善PU塑料材料酶促解聚的研究铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bcf/11778160/5f9e9144a721/d4sc06688j-s1.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验