Construction of lycopene-overproducing E. coli strains by combining systematic and combinatorial gene knockout targets
- 10 April 2005
- journal article
- research article
- Published by Springer Nature in Nature Biotechnology
- Vol. 23 (5), 612-616
- https://doi.org/10.1038/nbt1083
Abstract
Identification of genes that affect the product accumulation phenotype of recombinant strains is an important problem in industrial strain construction and a central tenet of metabolic engineering. We have used systematic (model-based) and combinatorial (transposon-based) methods to identify gene knockout targets that increase lycopene biosynthesis in strains of Escherichia coli. We show that these two search strategies yield two distinct gene sets, which affect product synthesis either through an increase in precursor availability or through (largely unknown) kinetic or regulatory mechanisms, respectively. Exhaustive exploration of all possible combinations of the above gene sets yielded a unique set of 64 knockout strains spanning the metabolic landscape of systematic and combinatorial gene knockout targets. This included a global maximum strain exhibiting an 8.5-fold product increase over recombinant K12 wild type and a twofold increase over the engineered parental strain. These results were further validated in controlled culture conditions.Keywords
This publication has 23 references indexed in Scilit:
- Identifying gene targets for the metabolic engineering of lycopene biosynthesis in Escherichia coliMetabolic Engineering, 2005
- MEROPS: the peptidase databaseNucleic Acids Research, 2004
- Metabolic engineering towards biotechnological production of carotenoids in microorganismsApplied Microbiology and Biotechnology, 2002
- Controlling the Metabolic Flux through the Carotenoid Pathway Using Directed mRNA Processing and StabilizationMetabolic Engineering, 2001
- Low-Copy Plasmids can Perform as Well as or Better Than High-Copy Plasmids for Metabolic Engineering of BacteriaMetabolic Engineering, 2000
- Metabolic engineering for the production of carotenoids in non-carotenogenic bacteria and yeastsJournal of Biotechnology, 1998
- RpoS Dependent Overexpression of Carotenoids fromErwinia herbicolainOXYRDeficientEscherichia coliBiochemical and Biophysical Research Communications, 1997
- Thermal asymmetric interlaced PCR: automatable amplification and sequencing of insert end fragments from P1 and YAC clones for chromosome walkingGenomics, 1995
- Molecular structure and enzymatic function of lycopene cyclase from the cyanobacterium Synechococcus sp strain PCC7942.Plant Cell, 1994
- Identification of carotenoids in Erwinia herbicola and in a transformed Escherichia coli strainFEMS Microbiology Letters, 1990