National Key Research and Development Program of China (No. 2018YFA0900600), National Natural Science Foundation of China (Nos. 31670099, 41876084), Strategic Priority Research Program of Chinese Academy of Sciences (No. XDB27020202), Key Research Program of the Chinese Academy of Sciences (Nos. XDPB0400, KFZD-SW-215), Program of Shanghai Academic Research Leader (No. 20XD1404400), Natural Science Foundation of Shanghai Municipal Science and Technology Committee (No. 17ZR1435000), International Partnership Program of Chinese Academy of Sciences (No. 153D31KYSB20170121).
In 1990s, Bailey and Stephanopoulos put forward the concept of classic metabolic engineering, aiming to use DNA recombination technology to rewire metabolic network to achieve improved cell performance and increased target products. In the last 30 years since the birth of metabolic engineering, life science have flourished, and new disciplines such as genomics, systems biology and synthetic biology have emerged, injecting new connotations and vitality into the development of metabolic engineering. Classic metabolic engineering research has entered into an unprecedented stage of systems metabolic engineering. The application of synthetic biology tools and strategies, such as omics technology, genomic-scale metabolic model, parts assembly, circuits design, dynamic control, genome editing and many others, have greatly improved the design, build, and rewiring capabilities of complex metabolism. The intervention of machine learning and the combination of evolutionary engineering and metabolic engineering will further promote the development of systems metabolic engineering. This paper analyzes the development of metabolic engineering in the past 30 years and summarizes the novel theories, techniques, strategies, and applications of metabolic engineering that have emerged over the past 30 years.
刘志凤,王勇. 历久弥新:进化中的代谢工程[J]. Chinese Journal of Biotechnology, 2021, 37(5): 1494-1509
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