Affiliation:
1. 0000 0004 0498 7682 grid.425195.e Microbial Engineering Group International Centre for Genetic Engineering and Biotechnology New Delhi India
2. 0000 0004 4699 2981 grid.462079.e Department of Genetics, Faculty of Agriculture Damietta University Damietta Egypt
3. 0000 0004 0498 7682 grid.425195.e DBT-ICGEB Centre for Advanced Bioenergy Research International Centre for Genetic Engineering and Biotechnology New Delhi India
Abstract
Abstract
Butanol production from agricultural residues is the most promising alternative for fossil fuels. To reach the economic viability of biobutanol production, both glucose and xylose should be utilized and converted into butanol. Here, we engineered a dual-operon-based synthetic pathway in the genome of E. coli MG1655 to produce n-butanol using CRISPR/Cas9 technology. Further deletion of competing pathway followed by fed-batch cultivation of the engineered strain in a bioreactor with glucose-containing complex medium yielded 5.4 g/L n-butanol along with pyruvate as major co-product, indicating a redox imbalance. To ferment xylose into butanol in redox-balanced manner, we selected SSK42, an ethanologenic E. coli strain engineered and evolved in our laboratory to produce ethanol from xylose, for integrating synthetic butanol cassette in its genome via CRISPR/Cas9 after deleting the gene responsible for endogenous ethanol production. The engineered plasmid- and marker-free strain, ASA02, produced 4.32 g/L butanol in fed-batch fermentation in completely defined AM1–xylose medium.
Funder
Department of Biotechnology, Government of India
Publisher
Oxford University Press (OUP)
Subject
Applied Microbiology and Biotechnology,Biotechnology,Bioengineering
Cited by
47 articles.
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