Anhui Province Key Laboratory of Farmland Ecological Conservation and Pollution Prevention, School of Resources and Environment, Anhui Agricultural University, Hefei, Anhui, China.
College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, Jiangsu, China.
Crit Rev Biotechnol. 2021 Nov;41(7):969-993. doi: 10.1080/07388551.2021.1895053. Epub 2021 Apr 4.
This is the first comprehensive overview of laccase-triggered anabolism from fundamental theory to biotechnology applications. Laccase is a typical biological oxidordeuctase that induces the one-electronic transfer of diverse substrates for engendering four phenoxy radicals with concomitant reduction of O into 2HO. , laccase can participate in anabolic processes to create multifarious functional biopolymers such as fungal pigments, plant lignins, and insect cuticles, using mono/polyphenols and their derivatives as enzymatic substrates, and is thus conducive to biological tissue morphogenesis and global carbon storage. Exhilaratingly, fungal laccase has high redox potential (° = 500-800 mV) and thermodynamic efficiency, making it a remarkable candidate for utilization as a versatile catalyst in the green and circular economy. This review elaborates the anabolic mechanisms of laccase in initiating the polymerization of natural phenolic compounds and their derivatives radical-based self/cross-coupling. Information is also presented on laccase immobilization engineering that expands the practical application ranges of laccase in biotechnology by improving the enzymatic catalytic activity, stability, and reuse rate. Particularly, advances in biotechnology applications through fungal laccase-triggered macromolecular biosynthesis may provide a key research direction beneficial to the rational design of green chemistry.
这是首次对漆酶触发的合成代谢进行全面概述,涵盖了从基础理论到生物技术应用的各个方面。漆酶是一种典型的生物氧化还原酶,可诱导多种底物的单电子转移,生成四个酚氧基自由基,同时将 O 还原为 2HO。通过利用单酚/多酚及其衍生物作为酶促底物,漆酶可以参与合成代谢过程,生成各种功能性生物聚合物,如真菌色素、植物木质素和昆虫外骨骼,从而有利于生物组织形态发生和全球碳储存。令人振奋的是,真菌漆酶具有较高的氧化还原电位(°=500-800 mV)和热力学效率,使其成为绿色和循环经济中多功能催化剂的理想选择。本综述详细阐述了漆酶引发天然酚类化合物及其衍生物聚合的合成代谢机制,以及基于自由基的自/交叉偶联反应。本文还介绍了漆酶固定化工程,通过提高酶的催化活性、稳定性和重复利用率,扩展了漆酶在生物技术中的实际应用范围。特别是,通过真菌漆酶触发的高分子生物合成在生物技术应用方面的进展,可能为绿色化学的合理设计提供一个关键的研究方向。