Sarcandra glabra genome unveils functional conservation and divergence of O-methyltransferases catalyzing isofraxidin biosynthesis in angiosperms

Isofraxidin, a characteristic coumarin extracted from the root of Sarcandra glabra, prevents human hepatoma cell invasion, while its biosynthesis remains elusive. Here, we construct a 4.23-Gb chromosome-level genome of S. glabra. We find that its intergenic and genic regions are profoundly longer than those of other angiosperms. Among the root-enriched O-methyltransferase candidates, SgOMT3 produces comparable amounts of isofraxidin and the byproduct fraxidin from fraxetin, while SgOMT5 only produces fraxidin. SgOMT3 and SgOMT5 are dispersed duplication genes, and site-directed mutagenesis reveals that Leu127 in SgOMT3 and Val292 in SgOMT5 are the key residues for isofraxidin and fraxidin biosynthesis, respectively. SgOMT3 orthologs from eudicot species preferentially produce more isofraxidin than fraxidin. The molecular docking and site-directed mutagenesis reveal that a Leu-to-Ile substitution at position 307 alters the regioselectivity of SgOMT3, shifting the conversion predominantly toward isofraxidin. These findings accelerate germplasm improvement of S. glabra and provide evidence for isofraxidin biosynthesis in chassis. Sarcandra glabra is a medicinal plant that can produce isofraxidin and fraxdin from fraxetin. Here, the authors report its chromosome-level genome assembly and reveal the O-methyltransferases that can convert fraxetin to isofraxidin and/or fraxdin.

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Journal
Nature Communications
Published
2026-09-08
DOI
https://doi.org/10.1038/s41467-026-77631-9
Primary Topic
Metal-Catalyzed Oxygenation Mechanisms
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article
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article

Sarcandra glabra genome unveils functional conservation and divergence of O-methyltransferases catalyzing isofraxidin biosynthesis in angiosperms

Xikai Yu, Jing Zhao, Ran Du, Xuezhu Liao et al.
Nature Communications
Metal-Catalyzed Oxygenation Mechanisms
article

Sarcandra glabra genome unveils functional conservation and divergence of O-methyltransferases catalyzing isofraxidin biosynthesis in angiosperms

Xikai Yu, Jing Zhao, Ran Du, Xuezhu Liao, Wei Li, Fengjiao Wang, Dejin Xie, Xianjin Qin, Li Wang, Wenwen Zhang, Jianan Chen, Qi Zhou
article en

Abstract

Isofraxidin, a characteristic coumarin extracted from the root of Sarcandra glabra, prevents human hepatoma cell invasion, while its biosynthesis remains elusive. Here, we construct a 4.23-Gb chromosome-level genome of S. glabra. We find that its intergenic and genic regions are profoundly longer than those of other angiosperms. Among the root-enriched O-methyltransferase candidates, SgOMT3 produces comparable amounts of isofraxidin and the byproduct fraxidin from fraxetin, while SgOMT5 only produces fraxidin. SgOMT3 and SgOMT5 are dispersed duplication genes, and site-directed mutagenesis reveals that Leu127 in SgOMT3 and Val292 in SgOMT5 are the key residues for isofraxidin and fraxidin biosynthesis, respectively. SgOMT3 orthologs from eudicot species preferentially produce more isofraxidin than fraxidin. The molecular docking and site-directed mutagenesis reveal that a Leu-to-Ile substitution at position 307 alters the regioselectivity of SgOMT3, shifting the conversion predominantly toward isofraxidin. These findings accelerate germplasm improvement of S. glabra and provide evidence for isofraxidin biosynthesis in chassis. Sarcandra glabra is a medicinal plant that can produce isofraxidin and fraxdin from fraxetin. Here, the authors report its chromosome-level genome assembly and reveal the O-methyltransferases that can convert fraxetin to isofraxidin and/or fraxdin.

Nature Communications
University of Macau (MO), Agricultural Genomics Institute at Shenzhen (CN), Chinese Academy of Agricultural Sciences (CN), Ministry of Agriculture and Rural Affairs (CN), University of Chinese Academy of Sciences (CN)
National Natural Science Foundation of China, Chinese Academy of Agricultural Sciences, Agricultural Science and Technology Innovation Program
Life in Land
Openalex Percentile: Top 25%
Metal-Catalyzed Oxygenation Mechanisms
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