Engineered Production of Short Chain Fatty Acid in Escherichia coli Using Fatty Acid Synthesis Pathway. 2016

Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
Microbial Engineering Group, International Centre for Genetic Engineering and Biotechnology, Aruna Asaf Ali Marg, New Delhi, India.

Short-chain fatty acids (SCFAs), such as butyric acid, have a broad range of applications in chemical and fuel industries. Worldwide demand of sustainable fuels and chemicals has encouraged researchers for microbial synthesis of SCFAs. In this study we compared three thioesterases, i.e., TesAT from Anaerococcus tetradius, TesBF from Bryantella formatexigens and TesBT from Bacteroides thetaiotaomicron, for production of SCFAs in Escherichia coli utilizing native fatty acid synthesis (FASII) pathway and modulated the genetic and bioprocess parameters to improve its yield and productivity. E. coli strain expressing tesBT gene yielded maximum butyric acid titer at 1.46 g L-1, followed by tesBF at 0.85 g L-1 and tesAT at 0.12 g L-1. The titer of butyric acid varied significantly depending upon the plasmid copy number and strain genotype. The modulation of genetic factors that are known to influence long chain fatty acid production, such as deletion of the fadD and fadE that initiates the fatty acid degradation cycle and overexpression of fadR that is a global transcriptional activator of fatty acid biosynthesis and repressor of degradation cycle, did not improve the butyric acid titer significantly. Use of chemical inhibitor cerulenin, which restricts the fatty acid elongation cycle, increased the butyric acid titer by 1.7-fold in case of TesBF, while it had adverse impact in case of TesBT. In vitro enzyme assay indicated that cerulenin also inhibited short chain specific thioesterase, though inhibitory concentration varied according to the type of thioesterase used. Further process optimization followed by fed-batch cultivation under phosphorous limited condition led to production of 14.3 g L-1 butyric acid and 17.5 g L-1 total free fatty acid at 28% of theoretical yield. This study expands our understanding of SCFAs production in E. coli through FASII pathway and highlights role of genetic and process optimization to enhance the desired product.

UI MeSH Term Description Entries
D004926 Escherichia coli A species of gram-negative, facultatively anaerobic, rod-shaped bacteria (GRAM-NEGATIVE FACULTATIVELY ANAEROBIC RODS) commonly found in the lower part of the intestine of warm-blooded animals. It is usually nonpathogenic, but some strains are known to produce DIARRHEA and pyogenic infections. Pathogenic strains (virotypes) are classified by their specific pathogenic mechanisms such as toxins (ENTEROTOXIGENIC ESCHERICHIA COLI), etc. Alkalescens-Dispar Group,Bacillus coli,Bacterium coli,Bacterium coli commune,Diffusely Adherent Escherichia coli,E coli,EAggEC,Enteroaggregative Escherichia coli,Enterococcus coli,Diffusely Adherent E. coli,Enteroaggregative E. coli,Enteroinvasive E. coli,Enteroinvasive Escherichia coli
D004950 Esterases Any member of the class of enzymes that catalyze the cleavage of an ester bond and result in the addition of water to the resulting molecules. Esterase
D005232 Fatty Acids, Volatile Short-chain fatty acids of up to six carbon atoms in length. They are the major end products of microbial fermentation in the ruminant digestive tract and have also been implicated in the causation of neurological diseases in humans. Fatty Acids, Short-Chain,Short-Chain Fatty Acid,Volatile Fatty Acid,Acid, Short-Chain Fatty,Acid, Volatile Fatty,Fatty Acid, Short-Chain,Fatty Acid, Volatile,Fatty Acids, Short Chain,Short Chain Fatty Acid,Short-Chain Fatty Acids,Volatile Fatty Acids
D020148 Butyric Acid A four carbon acid, CH3CH2CH2COOH, with an unpleasant odor that occurs in butter and animal fat as the glycerol ester. Butanoic Acid,Butyric Acid Magnesium Salt,Butyric Acid, Sodium Salt,Magnesium Butyrate,Magnesium Dibutyrate,Sodium Butyrate,Acid, Butanoic,Acid, Butyric,Butyrate, Magnesium,Butyrate, Sodium,Dibutyrate, Magnesium

Related Publications

Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
April 2012, Microbial cell factories,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
July 2013, Enzyme and microbial technology,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
April 2017, Journal of the American Chemical Society,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
July 2014, Microbiology (Reading, England),
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
November 2014, Biotechnology and bioengineering,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
April 2018, Applied and environmental microbiology,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
January 2014, The Journal of general and applied microbiology,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
October 2014, Bioresource technology,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
January 2015, Biotechnology progress,
Kamran Jawed, and Anu Jose Mattam, and Zia Fatma, and Saima Wajid, and Malik Z Abdin, and Syed Shams Yazdani
January 1991, SAAS bulletin, biochemistry and biotechnology,
Copied contents to your clipboard!