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March 7, 2026Journal of Agricultural and Food Chemistry2 citations

Engineering Substrate Promiscuity and Catalytic Efficiency of Benzylisoquinoline Alkaloids N -Methyltransferases

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YZYuyang ZhangYPYang PanZCZhenshan Chen

Key Points

  • The aim is to engineer benzylisoquinoline alkaloid N-methyltransferases to enhance their catalytic efficiency and substrate promiscuity.
  • Characterization of two novel N-methyltransferases from Stephania yunnanensis.
  • Identification of key residues influencing enzyme activity.
  • Engineering specific variants to alter substrate specificity and catalytic performance.
  • Quantitative analysis of catalytic parameters such as Kcat and Kcat/Km.
  • SyNMT2-L219F variant achieved functional conversion from N- to O-methylation.
  • E197A/L198F mutation in PsCNMT improved substrate specificity.
  • Kcat and Kcat/Km values were enhanced by 1.22- and 1.07-fold, respectively.

Abstract

Benzylisoquinoline alkaloids (BIAs) represent a diverse class of plant-derived secondary metabolites with significant medicinal and agricultural values. N-methylation is a common structural feature influencing the BIA bioactivity and bioavailability. Here, we report the characterization and rational engineering of two novel BIA N-methyltransferases (NMTs), SyNMT1 and SyNMT2 from Stephania yunnanensis. Key residues governing substrate promiscuity and catalytic efficiency were identified (A216 / F217 in SyNMT1; E218 / L219 / L223 in SyNMT2). Notably, the SyNMT2-L219F variant was engineered into a specific BIA 6OMT, representing the first instance of functional conversion from N- to O-methylation. This strategy was further extended to PsCNMT from Papaver somniferum, where the E197A/L198F mutation altered its substrate specificity and enhanced catalytic efficiency, increasing the Kcat and Kcat/Km values by 1.22- and 1.07-fold, respectively. This work provides a blueprint for engineering both the substrate promiscuity and catalytic efficiency of BIA NMTs, enriching the enzymatic toolkit for producing medicinally and agriculturally relevant BIAs.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69abc1d75af8044f7a4eaeachttps://doi.org/10.1021/acs.jafc.5c16426
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