Production of zosteric acid and other sulfated phenolic biochemicals in microbial cell factories
- PMID: 31492833
- PMCID: PMC6731281
- DOI: 10.1038/s41467-019-12022-x
Production of zosteric acid and other sulfated phenolic biochemicals in microbial cell factories
Abstract
Biological production and application of a range of organic compounds is hindered by their limited solubility and toxicity. This work describes a process for functionalization of phenolic compounds that increases solubility and decreases toxicity. We achieve this by screening a wide range of sulfotransferases for their activity towards a range of compounds, including the antioxidant resveratrol. We demonstrate how to engineer cell factories for efficiently creating sulfate esters of phenolic compounds through the use of sulfotransferases and by optimization of sulfate uptake and sulfate nucleotide pathways leading to the 3'-phosphoadenosine 5'-phosphosulfate precursor (PAPS). As an example we produce the antifouling agent zosteric acid, which is the sulfate ester of p-coumaric acid, reaching a titer of 5 g L-1 in fed-batch fermentation. The described approach enables production of sulfate esters that are expected to provide new properties and functionalities to a wide range of application areas.
Conflict of interest statement
C.B.J. and A.T.N. have filed provisional applications on this work and are co-founders of Cysbio ApS.
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References
-
- Schildknecht H, Schumacher K. Ein och wirksamer leaf movement factor aus Acacia karroo. Chem.-Ztg. 1981;105:287–290.
-
- Baek D, et al. A stress-inducible sulphotransferase sulphonates salicylic acid and confers pathogen resistance in Arabidopsis. Plant. Cell Environ. 2010;33:1383–1392. - PubMed
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