| Literature DB >> 26969254 |
Jianming Liu1, Siu Hung Joshua Chan1, Theis Brock-Nannestad2, Jun Chen1, Sang Yup Lee3, Christian Solem4, Peter Ruhdal Jensen5.
Abstract
Biocompatible chemistry is gaining increasing attention because of its potential within biotechnology for expanding the repertoire of biological transformations carried out by enzymes. Here we demonstrate how biocompatible chemistry can be used for synthesizing valuable compounds as well as for linking metabolic pathways to achieve redox balance and rescued growth. By comprehensive rerouting of metabolism, activation of respiration, and finally metal ion catalysis, we successfully managed to convert the homolactic bacterium Lactococcus lactis into a homo-diacetyl producer with high titer (95mM or 8.2g/L) and high yield (87% of the theoretical maximum). Subsequently, the pathway was extended to (S,S)-2,3-butanediol (S-BDO) through efficiently linking two metabolic pathways via chemical catalysis. This resulted in efficient homo-S-BDO production with a titer of 74mM (6.7g/L) S-BDO and a yield of 82%. The diacetyl and S-BDO production rates and yields obtained are the highest ever reported, demonstrating the promising combination of metabolic engineering and biocompatible chemistry as well as the great potential of L. lactis as a new production platform.Entities:
Keywords: Biocompatible chemistry; Homo-(S,S)-2,3-butanediol; Homo-diacetyl; Lactococcus lactis; Metabolic engineering
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Year: 2016 PMID: 26969254 DOI: 10.1016/j.ymben.2016.02.008
Source DB: PubMed Journal: Metab Eng ISSN: 1096-7176 Impact factor: 9.783