A Novel Ca2+-Dependent O -Methyltransferase Involved in Flavonoid Methylation in Tartary Buckwheat

Abstract Methoxyflavonoids have attracted increasing attention because of their diverse biological activities and improved physicochemical properties. Although methylation is pivotal to methoxyflavonoid biosynthesis, the O-methyltransferases (OMTs) responsible for this process in Tartary buckwheat remain poorly characterized. In this study, the Tartary buckwheat cultivar “Y324” was used to systematically analyze the accumulation patterns and spatial distribution of methoxyflavonoids during achene development. Most methoxyflavonoids accumulated progressively during achene development, and they were specifically enriched in the hull. Guided by these metabolite profiles, FtOMT19, a Ca2+-dependent member of the true CCoAOMT subfamily, was identified. Integrating in vitro enzymatic assays with in vivo hairy root overexpression experiments showed that FtOMT19 displays broad substrate promiscuity, efficiently catalyzing the methylation of various flavonoids bearing ortho-dihydroxyl moieties. The enzyme showed a strong preference for the flavonol quercetin, and it can efficiently methylate the 6-, 7-, 8-, 3′-, 4′-, and 5′-hydroxyl positions. Notably, its in vivo role was supported by the increased accumulation of multiple methoxyflavonoids in FtOMT19-overexpressing hairy roots. Mechanistic studies combining molecular docking and site-directed mutagenesis further revealed that the catalytic activity of FtOMT19 depends on the Ca2+-stabilized active center formed by key residues D167, K170 and N194. Meanwhile, D193 contributes to partial activity maintenance, which orchestrates a general base catalytic mechanism. Collectively, this study expands the functional understanding of the true CCoAOMT subfamily and confirms that FtOMT19 is a highly efficient, multifunctional O-methyltransferase that can participate in the biosynthesis of methoxyflavonoids in Tartary buckwheat, providing useful mechanistic insights and genetic resources for further studies of methoxyflavonoid biosynthesis.

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Journal
Journal of Agricultural and Food Chemistry
Published
2026-10-09
DOI
https://doi.org/10.1021/acs.jafc.6c08964
Primary Topic
Plant Gene Expression Analysis
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article
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article

A Novel Ca2+-Dependent O -Methyltransferase Involved in Flavonoid Methylation in Tartary Buckwheat

Tingxia Liu, 董刚强, 石桃雄, 万会花 et al.
Journal of Agricultural and Food Chemistry
Plant Gene Expression Analysis
article

A Novel Ca2+-Dependent O -Methyltransferase Involved in Flavonoid Methylation in Tartary Buckwheat

Tingxia Liu, 董刚强, 石桃雄, 万会花, Jingling Liu, 陈庆富, Peng Wang, Wei Yang, Yuanzhi Cheng, Yiming Zhang, Haixia Li, Tingchi Wen, Yiling Chen, Wei Sun, Pengda Ma, Yuebai Xu, Xue Cao
article en

Abstract

Abstract Methoxyflavonoids have attracted increasing attention because of their diverse biological activities and improved physicochemical properties. Although methylation is pivotal to methoxyflavonoid biosynthesis, the O-methyltransferases (OMTs) responsible for this process in Tartary buckwheat remain poorly characterized. In this study, the Tartary buckwheat cultivar “Y324” was used to systematically analyze the accumulation patterns and spatial distribution of methoxyflavonoids during achene development. Most methoxyflavonoids accumulated progressively during achene development, and they were specifically enriched in the hull. Guided by these metabolite profiles, FtOMT19, a Ca2+-dependent member of the true CCoAOMT subfamily, was identified. Integrating in vitro enzymatic assays with in vivo hairy root overexpression experiments showed that FtOMT19 displays broad substrate promiscuity, efficiently catalyzing the methylation of various flavonoids bearing ortho-dihydroxyl moieties. The enzyme showed a strong preference for the flavonol quercetin, and it can efficiently methylate the 6-, 7-, 8-, 3′-, 4′-, and 5′-hydroxyl positions. Notably, its in vivo role was supported by the increased accumulation of multiple methoxyflavonoids in FtOMT19-overexpressing hairy roots. Mechanistic studies combining molecular docking and site-directed mutagenesis further revealed that the catalytic activity of FtOMT19 depends on the Ca2+-stabilized active center formed by key residues D167, K170 and N194. Meanwhile, D193 contributes to partial activity maintenance, which orchestrates a general base catalytic mechanism. Collectively, this study expands the functional understanding of the true CCoAOMT subfamily and confirms that FtOMT19 is a highly efficient, multifunctional O-methyltransferase that can participate in the biosynthesis of methoxyflavonoids in Tartary buckwheat, providing useful mechanistic insights and genetic resources for further studies of methoxyflavonoid biosynthesis.

Journal of Agricultural and Food Chemistry
Guizhou Normal University (CN), Guizhou University (CN), Wuhan Botanical Garden (CN), China Academy of Chinese Medical Sciences (CN), Institute of Chinese Materia Medica, Dali University (CN), Northwest A&F University (CN)
Openalex Percentile: Top 23%
Plant Gene Expression Analysis
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