Affiliation:
1. 0000 0000 9797 0900 grid.453074.1 College of Food and Bioengineering Henan University of Science and Technology 471023 Luoyang Henan China
2. 0000 0004 1763 3963 grid.458513.e Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences 300308 Tianjin China
3. 0000000119573309 grid.9227.e Key Laboratory of Systems Microbial Biotechnology Chinese Academy of Sciences 300308 Tianjin China
Abstract
Abstract
Glycerol, which is an inevitable by-product of biodiesel production, is an ideal carbon source for the production of carotenoids due to its low price, good availability and chemically reduced status, which results in a low requirement for additional reducing equivalents. In this study, an alternative carbon-utilization pathway was constructed in Escherichia coli to enable more efficient β-carotene production from glycerol. An aldehyde reductase gene (alrd) and an aldehyde dehydrogenase gene (aldH) from Ralstonia eutropha H16 were integrated into the E. coli chromosome to form a novel glycerol-utilization pathway. The β-carotene specific production value was increased by 50% after the introduction of alrd and aldH. It was found that the glycerol kinase gene (garK), alrd and aldH were the bottleneck of the alternative glycerol metabolic pathway, and modulation of garK gene with an mRS library further increased the β-carotene specific production value by 13%. Finally, co-modulation of genes in the introduced aldH–alrd operon led to 86% more of β-carotene specific production value than that of the strain without the alternative glycerol-utilization pathway and the glycerol-utilization rate was also increased. In this work, β-carotene production of E. coli was significantly improved by constructing and optimizing an alternative glycerol-utilization pathway. This strategy can potentially be used to improve the production of other isoprenoids using glycerol as a cheap and abundant substrate, and therefore has industrial relevance.
Funder
National Natural Science Foundation of China
Natural Science Foundation of Tianjin City
The STS project of Chinese Academy of sciences
Publisher
Oxford University Press (OUP)
Subject
Applied Microbiology and Biotechnology,Biotechnology,Bioengineering
Cited by
10 articles.
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