生化工程
合成生物学
生物技术
代谢工程
瓶颈
合理设计
食品工业
生产(经济)
适应性
计算机科学
发酵
固态发酵
食品加工
酶
工程类
计算生物学
生物
生物化学
食品科学
嵌入式系统
生态学
宏观经济学
经济
遗传学
作者
Fatma Boukid,S. Ganeshan,Yingxin Wang,Mehmet Tülbek,Michael T. Nickerson
标识
DOI:10.3390/ijms241210156
摘要
Enzymes have been used in the food processing industry for many years. However, the use of native enzymes is not conducive to high activity, efficiency, range of substrates, and adaptability to harsh food processing conditions. The advent of enzyme engineering approaches such as rational design, directed evolution, and semi-rational design provided much-needed impetus for tailor-made enzymes with improved or novel catalytic properties. Production of designer enzymes became further refined with the emergence of synthetic biology and gene editing techniques and a plethora of other tools such as artificial intelligence, and computational and bioinformatics analyses which have paved the way for what is referred to as precision fermentation for the production of these designer enzymes more efficiently. With all the technologies available, the bottleneck is now in the scale-up production of these enzymes. There is generally a lack of accessibility thereof of large-scale capabilities and know-how. This review is aimed at highlighting these various enzyme-engineering strategies and the associated scale-up challenges, including safety concerns surrounding genetically modified microorganisms and the use of cell-free systems to circumvent this issue. The use of solid-state fermentation (SSF) is also addressed as a potentially low-cost production system, amenable to customization and employing inexpensive feedstocks as substrate.
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