DocumentCode :
3300444
Title :
An integrated computational and experimental study to increase the intra-cellular malonyl-CoA: Application to flavanone synthesis
Author :
Xu, Peng ; Ranganathan, Sridhar ; Maranas, Costas D. ; Koffas, Mattheos
Author_Institution :
Dept. of Chem. & Biol. Eng., Rensselaer Polytech. Inst., Troy, NY, USA
fYear :
2011
fDate :
1-3 April 2011
Firstpage :
1
Lastpage :
2
Abstract :
Malonyl-coenzyme A is an important precursor metabolite for the biosynthesis of polyketides, fatty acids and biofuels. However, malonyl-CoA naturally synthesized in microbial hosts is consumed for the production of amino acids, fatty acids and phospholipids leaving behind only a small amount available for overproduction targets. During the past decade, computational procedures have aided many metabolic engineering efforts to design strains of bacteria and yeast that overproduce malonyl-CoA. In this regard, we present milestones achieved from an integrated computational and an experimental study aimed at improving the intracellular availability of malonyl-CoA in Escherichia coli. We deploy the recent OptForce methodology to predict a minimal set of genetic interventions that guarantees a pre-specified yield for malonyl-CoA in E. coli strain BL21 Star™. In order to validate the model predictions, we have successfully constructed a recombinant strain of E. coli that exhibits a 4-fold increase in the levels of intracellular malonyl-CoA compared to the wild-type strain. Furthermore, we demonstrate the applicability of this E. coli strain in the synthesis of plant-specific secondary metabolites (i.e., flavanones) that are promising agents in the treatment of cardiovascular disorders and diabetes. Specifically, a titer of 474 mg/L of naringenin production was observed which, so far, is the highest yield achieved in a lab-scale fermentation process.
Keywords :
biochemistry; biological techniques; cellular biophysics; enzymes; genetics; microorganisms; molecular biophysics; organic compounds; BL21 Star E. coli strain; Escherichia coli; OptForce methodology; bacteria strain design; biofuel biosynthesis; fatty acid biosynthesis; flavanone synthesis; flavanones; genetic interventions; intracellular malonyl-CoA; malonyl-CoA intracellular availability; malonyl-CoA overproduction; malonyl-coenzyme A; metabolic engineering; plant specific secondary metabolites; polyketide biosynthesis; precursor metabolite; yeast strain design; Availability; Carbon; Compounds; Genetics; Production; Protocols; Strain;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioengineering Conference (NEBEC), 2011 IEEE 37th Annual Northeast
Conference_Location :
Troy, NY
ISSN :
2160-7001
Print_ISBN :
978-1-61284-827-3
Type :
conf
DOI :
10.1109/NEBC.2011.5778699
Filename :
5778699
Link To Document :
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