Title of article :
Model-driven rebalancing of the intracellular redox state for optimization of a heterologous n-butanol pathway in Escherichia coli
Author/Authors :
Lim، نويسنده , , Jae Hyung and Seo، نويسنده , , Sang Woo and Kim، نويسنده , , Se Yeon and Jung، نويسنده , , Gyoo Yeol، نويسنده ,
Issue Information :
دوماهنامه با شماره پیاپی سال 2013
Pages :
7
From page :
56
To page :
62
Abstract :
The intracellular redox state plays an important role in the cellular physiology that determines the efficiency of chemical and biofuel production by microbial cell factories. However, it is difficult to achieve optimal redox rebalancing of synthetic pathways owing to the sensitive responses of cellular physiology according as the intracellular redox state changes. Here, we demonstrate optimal rebalancing of the intracellular redox state by model-driven control of expression using n-butanol production in Escherichia coli as a model system. The synthetic n-butanol production pathway was constructed by implementing synthetic constitutive promoters and designing synthetic 5′-untranslated regions (5′-UTR) for each gene. Redox rebalancing was achieved by anaerobically activating the pyruvate dehydrogenase (PDH) complex and additionally tuning the expression level of NAD+-dependent formate dehydrogenase (fdh1 from Saccharomyces cerevisiae) through rational UTR engineering. Interestingly, efficient production of n-butanol required different amounts of reducing equivalents depending on whether the substrate was glucose or galactose. One intriguing implication of this work is that additional strain improvement can be achieved, even within given genetic components, through rebalancing intracellular redox state according to target products and substrates.
Keywords :
Metabolic imbalance , Redox rebalancing , synthetic biology , Metabolic engineering , n-Butanol
Journal title :
Metabolic Engineering
Serial Year :
2013
Journal title :
Metabolic Engineering
Record number :
1429631
Link To Document :
بازگشت