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Restricting Promiscuity of Plant Flavonoid 3′-Hydroxylase and 4′-<i>O</i>-Methyltransferase Improves the Biosynthesis of (2<i>S</i>)-Hesperetin in <i>E. coli</i>

Juan Liu, Zhiqiang Xiao, Siqi Zhang, Zhen Wang, Yun Chen, Yang Shan

2023Journal of Agricultural and Food Chemistry24 citationsDOIOpen Access PDF

Abstract

High Resolution Image Download MS PowerPoint Slide Enzyme promiscuity is evolutionarily advantageous to plants for gaining new enzyme functions when adapting to environmental challenges. However, this promiscuity can negatively affect the expression of genes encoding for plant enzymes in microorganisms. Here, we show that refining the promiscuity of flavonoid 3′-hydroxylase (F3′H) and 4′- O -methyltransferase (F4′OMT) improves (2 S )-hesperetin production in Escherichia coli . First, we employed inverse molecular docking to screen a highly substrate-specific ThF3′H from Tricyrtis hirta, which could selectively convert 100 mg L –1 (2 S )-naringenin to (2 S )-eriodictyol but not (2 S )-isosakuranetin, with a cytochrome P450 reductase from Arabidopsis thaliana . Second, we employed a directed evolution approach to restrict the promiscuity of MpOMT from Mentha × piperita . The strain harboring the MpOMT S142V mutant presented a remarkably increased preference for (2 S )-eriodictyol. Finally, 27.5 mg L –1 (2 S )-hesperetin was produced, while only minor amounts of (2 S )-eriodictyol and (2 S )-isosakuranetin accumulated as byproducts. This value represents a 14-fold increase in (2 S )-hesperetin compared to the parental strain, along with a dramatic reduction in side products. Our work highlights the benefit of alleviating the promiscuity of plant enzymes when engineering production of natural products by microbial cell factories.

Topics & Concepts

HesperetinEriodictyolO-methyltransferaseBiochemistryEnzymeNaringeninFlavonoidChemistryBiologyMethyltransferaseGeneMethylationAntioxidantPlant biochemistry and biosynthesisPlant Gene Expression AnalysisMicrobial Natural Products and Biosynthesis