生化工程
持续性
生物燃料
生物催化
代谢工程
环境友好型
环境科学
生物技术
化学
工程类
酶
生物
生物化学
催化作用
生态学
离子液体
作者
Emily Radley,Joanne O. Davidson,Jake Foster,Richard Obexer,Elizabeth L. Bell,Anthony P. Green
出处
期刊:Angewandte Chemie
[Wiley]
日期:2023-08-31
卷期号:62 (52): e202309305-e202309305
被引量:48
标识
DOI:10.1002/anie.202309305
摘要
Abstract The development and implementation of sustainable catalytic technologies is key to delivering our net‐zero targets. Here we review how engineered enzymes, with a focus on those developed using directed evolution, can be deployed to improve the sustainability of numerous processes and help to conserve our environment. Efficient and robust biocatalysts have been engineered to capture carbon dioxide (CO 2 ) and have been embedded into new efficient metabolic CO 2 fixation pathways. Enzymes have been refined for bioremediation, enhancing their ability to degrade toxic and harmful pollutants. Biocatalytic recycling is gaining momentum, with engineered cutinases and PETases developed for the depolymerization of the abundant plastic, polyethylene terephthalate (PET). Finally, biocatalytic approaches for accessing petroleum‐based feedstocks and chemicals are expanding, using optimized enzymes to convert plant biomass into biofuels or other high value products. Through these examples, we hope to illustrate how enzyme engineering and biocatalysis can contribute to the development of cleaner and more efficient chemical industry.
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