Gustavsson Martin, Lee Sang Yup
Metabolic and Biomolecular Engineering National Research Laboratory, Department of Chemical and Biomolecular Engineering (BK21 Plus Program), BioProcess Engineering Research Center, Center for Systems and Synthetic Biotechnology, Institute for the BioCentury, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Korea.
KTH Royal Institute of Technology, School of Biotechnology, Division of Industrial Biotechnology, AlbaNova University Center, 106 91, Stockholm, Sweden.
Microb Biotechnol. 2016 Sep;9(5):610-7. doi: 10.1111/1751-7915.12385. Epub 2016 Jul 20.
While academic-level studies on metabolic engineering of microorganisms for production of chemicals and fuels are ever growing, a significantly lower number of such production processes have reached commercial-scale. In this work, we review the challenges associated with moving from laboratory-scale demonstration of microbial chemical or fuel production to actual commercialization, focusing on key requirements on the production organism that need to be considered during the metabolic engineering process. Metabolic engineering strategies should take into account techno-economic factors such as the choice of feedstock, the product yield, productivity and titre, and the cost effectiveness of midstream and downstream processes. Also, it is important to develop an industrial strain through metabolic engineering for pathway construction and flux optimization together with increasing tolerance to products and inhibitors present in the feedstock, and ensuring genetic stability and strain robustness under actual fermentation conditions.
虽然关于微生物代谢工程用于化学品和燃料生产的学术层面研究不断增加,但达到商业规模的此类生产过程数量却显著较少。在这项工作中,我们回顾了从微生物化学品或燃料生产的实验室规模示范转向实际商业化所面临的挑战,重点关注代谢工程过程中需要考虑的生产生物体的关键要求。代谢工程策略应考虑技术经济因素,如原料选择、产品产量、生产率和滴度,以及中游和下游过程的成本效益。此外,通过代谢工程构建途径和优化通量,同时提高对原料中存在的产品和抑制剂的耐受性,并确保在实际发酵条件下的遗传稳定性和菌株鲁棒性,开发工业菌株也很重要。