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PMID: 10802621 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Improving lycopene production in Escherichia coli by engineering metabolic control.

Nature biotechnology ·Vol. 18 ·No. 5 ·2000-05-00 ·Pages 533-7

Farmer WR, Liao JC

Abstract

Metabolic engineering has achieved encouraging success in producing foreign metabolites in a variety of hosts. However, common strategies for engineering metabolic pathways focus on amplifying the desired enzymes and deregulating cellular controls. As a result, uncontrolled or deregulated metabolic pathways lead to metabolic imbalance and suboptimal productivity. Here we have demonstrated the second stage of metabolic engineering effort by designing and engineering a regulatory circuit to control gene expression in response to intracellular metabolic states. Specifically, we recruited and altered one of the global regulatory systems in Escherichia coli, the Ntr regulon, to control the engineered lycopene biosynthesis pathway. The artificially engineered regulon, stimulated by excess glycolytic flux through sensing of an intracellular metabolite, acetyl phosphate, controls the expression of two key enzymes in lycopene synthesis in response to flux dynamics. This intracellular control loop significantly enhanced lycopene production while reducing the negative impact caused by metabolic imbalance. Although we demonstrated this strategy for metabolite production, it can be extended into other fields where gene expression must be closely controlled by intracellular physiology, such as gene therapy.

MeSH Terms
3-Deoxy-7-Phosphoheptulonate Synthase/biosynthesis,genetics Anticarcinogenic Agents/metabolism Antioxidants/metabolism Bacterial Proteins Carbon-Carbon Double Bond Isomerases/biosynthesis,genetics Carotenoids/biosynthesis DNA-Binding Proteins/genetics Escherichia coli/genetics,metabolism Feedback Gene Dosage Gene Expression Regulation, Bacterial Genetic Engineering/methods Glycolysis Hemiterpenes Lycopene Metabolism/genetics Nitrogen/deficiency Organophosphates/metabolism PII Nitrogen Regulatory Proteins Phosphoprotein Phosphatases/genetics Phosphotransferases (Paired Acceptors)/biosynthesis,genetics Protein Kinases/genetics Regulon Trans-Activators Transcription Factors
Chemicals
Anticarcinogenic Agents Antioxidants Bacterial Proteins DNA-Binding Proteins Hemiterpenes Organophosphates PII Nitrogen Regulatory Proteins Trans-Activators Transcription Factors Carotenoids acetyl phosphate 3-Deoxy-7-Phosphoheptulonate Synthase Protein Kinases protein kinase-phosphatase NTRB Phosphotransferases (Paired Acceptors) pyruvate, water dikinase Phosphoprotein Phosphatases Carbon-Carbon Double Bond Isomerases isopentenyldiphosphate delta-isomerase Nitrogen Lycopene
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Farmer W R
Department of Chemical Engineering, University of California Los Angeles, Los Angeles, CA 90034, USA.
Liao J C
Article Info
Journal
Nature biotechnology
Abbr.
Nat Biotechnol
ISSN
1087-0156
Published
2000-05-00
Pages
533-7
Language
English
Region
United States
NLM ID
9604648
Subset
IM
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