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.
Zhang et al. (2026) studied this question.