Literature DB >> 23361000

Modular optimization of multi-gene pathways for fatty acids production in E. coli.

Peng Xu1, Qin Gu, Wenya Wang, Lynn Wong, Adam G W Bower, Cynthia H Collins, Mattheos A G Koffas.   

Abstract

Microbial fatty acid-derived fuels have emerged as promising alternatives to petroleum-based transportation fuels. Here we report a modular engineering approach that systematically removed metabolic pathway bottlenecks and led to significant titre improvements in a multi-gene fatty acid metabolic pathway. On the basis of central pathway architecture, E. coli fatty acid biosynthesis was re-cast into three modules: the upstream acetyl coenzyme A formation module; the intermediary acetyl-CoA activation module; and the downstream fatty acid synthase module. Combinatorial optimization of transcriptional levels of these three modules led to the identification of conditions that balance the supply of acetyl-CoA and consumption of malonyl-CoA/ACP. Refining protein translation efficiency by customizing ribosome binding sites for both the upstream acetyl coenzyme A formation and fatty acid synthase modules enabled further production improvement. Fed-batch cultivation of the engineered strain resulted in a final fatty acid production of 8.6 g l(-1). The modular engineering strategies demonstrate a generalized approach to engineering cell factories for valuable metabolites production.

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Year:  2013        PMID: 23361000     DOI: 10.1038/ncomms2425

Source DB:  PubMed          Journal:  Nat Commun        ISSN: 2041-1723            Impact factor:   14.919


  39 in total

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  110 in total

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Review 4.  The application of powerful promoters to enhance gene expression in industrial microorganisms.

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Review 6.  Heterologous production of curcuminoids.

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8.  Improving fatty acids production by engineering dynamic pathway regulation and metabolic control.

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10.  Metabolic engineering of Pichia pastoris to produce ricinoleic acid, a hydroxy fatty acid of industrial importance.

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