ACS synthetic biology | 2019

Endocytosing Escherichia coli as a Whole-Cell Biocatalyst of Fatty Acids.

 
 
 
 
 
 
 
 
 
 
 
 
 
 
 

Abstract


Whole cell biocatalysts can be used to convert fatty acids into various value-added products. However, fatty acid transport across cellular membranes into the cytosol of microbial cells limits substrate availability and impairs membrane integrity, which in turn decreases cell viability and bioconversion activity. Because these problems are associated with the mechanism of fatty acid transport through membranes, a whole-cell biocatalyst that can form caveolae-like structures was generated to promote substrate endocytosis. Caveolin-1 ( CAV1) expression in Escherichia coli increased both the fatty acid transport rate and intracellular fatty acid concentrations via endocytosis of the supplemented substrate. Furthermore, fatty-acid endocytosis alleviated substrate cytotoxicity in E.\xa0coli. These traits attributed to bacterial endocytosis resulted in dramatically elevated biotransformation efficiencies in fed-batch and cell-recycle reaction systems when caveolae-forming E.\xa0coli was used for the bioconversion of ricinoleic acid (12-hydroxyoctadec-9-enoic acid) to ( Z)-11-(heptanoyloxy) undec-9-enoic acid. We propose that CAV1-mediated endocytosing E.\xa0coli represents a versatile tool for the biotransformation of hydrophobic substrates.

Volume 8 5
Pages \n 1055-1066\n
DOI 10.1021/acssynbio.8b00519
Language English
Journal ACS synthetic biology

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