Elsevier

Metabolic Engineering

Volume 70, March 2022, Pages 196-205
Metabolic Engineering

Diverting phenylpropanoid pathway flux from sinapine to produce industrially useful 4-vinyl derivatives of hydroxycinnamic acids in Brassicaceous oilseeds

https://doi.org/10.1016/j.ymben.2022.01.016Get rights and content
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Highlights

  • A phenolic acid decarboxylase was expressed in developing Camelina sativa seeds.

  • Production of the antinutritive phenolic compound sinapine was reduced by 95%.

  • Hydroxycinnamic acids were converted to 4-vinyl phenols and accumulated as glycosides.

  • The quantity of 4-vinyl phenols was more than twice that of sinapine in wild type.

  • Seed yield appeared not to be affected in either glasshouse or field experiments.

Abstract

Sinapine (sinapoylcholine) is an antinutritive phenolic compound that can account for up to 2% of seed weight in brassicaceous oilseed crops and reduces the suitability of their protein-rich seed meal for use as animal feed. Sinapine biosynthesis draws on hydroxycinnamic acid precursors produced by the phenylpropanoid pathway. The 4-vinyl derivatives of several hydroxycinnamic acids have industrial applications. For example, 4-vinyl phenol (4-hydroxystyrene) is a building block for a range of synthetic polymers applied in resins, inks, elastomers, and coatings. Here we have expressed a modified bacterial phenolic acid decarboxylase (PAD) in developing seed of Camelina sativa to redirect phenylpropanoid pathway flux from sinapine biosynthesis to the production of 4-vinyl phenols. PAD expression led to a ∼95% reduction in sinapine content in seeds of both glasshouse and field grown C. sativa and to an accumulation of 4-vinyl derivatives of hydroxycinnamic acids, primarily as glycosides. The most prevalent aglycone was 4-vinyl phenol, but 4-vinyl guaiacol, 6-hydroxy-4-vinyl guaiacol and 4-vinylsyringol (Canolol) were also detected. The molar quantity of 4-vinyl phenol glycosides was more than twice that of sinapine in wild type seeds. PAD expression was not associated with an adverse effect on seed yield, harvest index, seed morphology, storage oil content or germination in either glasshouse or field experiments. Our data show that expression of PAD in brassicaceous oilseeds can supress sinapine accumulation, diverting phenylpropanoid pathway flux into 4-vinyl phenol derivatives, thereby also providing a non-petrochemical source of this class of industrial chemicals.

Keywords

Metabolic engineering
Plant
Oilseed
4-Vinyl phenol
4-Vinyl guaiacol
4-Vinylsyringol

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