RETRACTED ARTICLE: Systems engineering of Escherichia coli for high-level glutarate production from glucose
Glutarate is a key monomer in polyester and polyamide production. The low efficiency of the current biosynthetic pathways hampers its production by microbial cell factories. Herein, through metabolic simulation, a lysine-overproducing E. coli strain Lys5 is engineered, achieving titer, yield, and pr...
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Veröffentlicht in: | Nature communications 2024-02, Vol.15 (1), p.1032-14, Article 1032 |
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Zusammenfassung: | Glutarate is a key monomer in polyester and polyamide production. The low efficiency of the current biosynthetic pathways hampers its production by microbial cell factories. Herein, through metabolic simulation, a lysine-overproducing
E. coli
strain Lys5 is engineered, achieving titer, yield, and productivity of 195.9 g/L, 0.67 g/g glucose, and 5.4 g/L·h, respectively. Subsequently, the pathway involving aromatic aldehyde synthase, monoamine oxidase, and aldehyde dehydrogenase (AMA pathway) is introduced into
E. coli
Lys5 to produce glutarate from glucose. To enhance the pathway’s efficiency, rational mutagenesis on the aldehyde dehydrogenase is performed, resulting in the development of variant Mu5 with a 50-fold increase in catalytic efficiency. Finally, a glutarate tolerance gene
cbpA
is identified and genomically overexpressed to enhance glutarate productivity. With enzyme expression optimization, the glutarate titer, yield, and productivity of
E. coli
AMA06 reach 88.4 g/L, 0.42 g/g glucose, and 1.8 g/L·h, respectively. These findings hold implications for improving glutarate biosynthesis efficiency in microbial cell factories.
Glutarate is a platform chemical widely used in the production of polyesters and polyamindes. Here, the authors design the shortest and thermodynamically favorable pathway, and increase glutarate production from glucose through systematic engineering of
E. coli
. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/s41467-024-45448-z |