Development of bio-based fine chemical production through synthetic bioengineering

被引:0
|
作者
Kiyotaka Y Hara
Michihiro Araki
Naoko Okai
Satoshi Wakai
Tomohisa Hasunuma
Akihiko Kondo
机构
[1] Kobe University,Organization of Advanced Science and Technology
[2] Graduate School of Engineering,Department of Chemical Science and Engineering
[3] Kobe University,undefined
来源
Microbial Cell Factories | / 13卷
关键词
Fine chemical; Synthetic bioengineering; Metabolic engineering; Enzymatic synthesis; Microbial fermentation; Bioinformatics;
D O I
暂无
中图分类号
学科分类号
摘要
Fine chemicals that are physiologically active, such as pharmaceuticals, cosmetics, nutritional supplements, flavoring agents as well as additives for foods, feed, and fertilizer are produced by enzymatically or through microbial fermentation. The identification of enzymes that catalyze the target reaction makes possible the enzymatic synthesis of the desired fine chemical. The genes encoding these enzymes are then introduced into suitable microbial hosts that are cultured with inexpensive, naturally abundant carbon sources, and other nutrients. Metabolic engineering create efficient microbial cell factories for producing chemicals at higher yields. Molecular genetic techniques are then used to optimize metabolic pathways of genetically and metabolically well-characterized hosts. Synthetic bioengineering represents a novel approach to employ a combination of computer simulation and metabolic analysis to design artificial metabolic pathways suitable for mass production of target chemicals in host strains. In the present review, we summarize recent studies on bio-based fine chemical production and assess the potential of synthetic bioengineering for further improving their productivity.
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