生物催化
生化工程
商品化学品
化学
绿色化学
持续性
工业生物技术
蛋白质工程
重新使用
化学反应工程
合成生物学
可持续生产
生物技术
纳米技术
生产(经济)
有机化学
计算生物学
工程类
催化作用
酶
废物管理
反应机理
生态学
经济
材料科学
宏观经济学
生物
作者
Roger A. Sheldon,John M. Woodley
出处
期刊:Chemical Reviews
[American Chemical Society]
日期:2017-09-06
卷期号:118 (2): 801-838
被引量:1424
标识
DOI:10.1021/acs.chemrev.7b00203
摘要
Based on the principles and metrics of green chemistry and sustainable development, biocatalysis is both a green and sustainable technology. This is largely a result of the spectacular advances in molecular biology and biotechnology achieved in the past two decades. Protein engineering has enabled the optimization of existing enzymes and the invention of entirely new biocatalytic reactions that were previously unknown in Nature. It is now eminently feasible to develop enzymatic transformations to fit predefined parameters, resulting in processes that are truly sustainable by design. This approach has successfully been applied, for example, in the industrial synthesis of active pharmaceutical ingredients. In addition to the use of protein engineering, other aspects of biocatalysis engineering, such as substrate, medium, and reactor engineering, can be utilized to improve the efficiency and cost-effectiveness and, hence, the sustainability of biocatalytic reactions. Furthermore, immobilization of an enzyme can improve its stability and enable its reuse multiple times, resulting in better performance and commercial viability. Consequently, biocatalysis is being widely applied in the production of pharmaceuticals and some commodity chemicals. Moreover, its broader application will be further stimulated in the future by the emerging biobased economy.
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