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Updated: Jan 7, 2026

Plant Sample Preparation for Nucleoside/Nucleotide Content Measurement with An HPLC-MS/MS
Published on: February 24, 2021
Conserved early steps of stemmadenine biosynthesis
Mohamed O Kamileen1, Yoko Nakamura2, Marlen Sigmund1
1Department of Natural Product Biosynthesis, Max Planck Institute for Chemical Ecology, Jena, Germany.
We identified key genes for stemmadenine acetate production and reconstituted the pathway in plants. Despite challenges with alternative isomers and byproducts, we achieved milligram-scale production of this important alkaloid intermediate.
Area of Science:
- Plant biotechnology
- Metabolic engineering
- Natural product biosynthesis
Background:
- Stemmadenine acetate is a crucial intermediate for synthesizing pharmacologically active monoterpene indole alkaloids.
- Understanding its biosynthesis is key for efficient production of valuable compounds.
Purpose of the Study:
- To identify and characterize stemmadenine acetate pathway genes.
- To reconstitute stemmadenine acetate biosynthesis in Nicotiana benthamiana.
- To compare plant-derived pathway enzymes and identify factors limiting production.
Main Methods:
- Identification and in vitro characterization of stemmadenine acetate pathway gene orthologs (SGD, GS, GO, Redox1, Redox2, SAT).
- Heterologous reconstitution of the pathway in Nicotiana benthamiana.
- Analysis of intermediates and shunt products using plant orthologs from Catharanthus roseus.
Main Results:
- Most ortholog pairs were catalytically similar, except for GS, which produced an alternative stereoisomer (19Z-geissoschizine).
- Substrate promiscuity of Redox1 led to shunt products (16(R/S)-isositsirikines), reducing pathway flux.
- Endogenous N. benthamiana enzymes oxidized stemmadenine to condylocarpine.
- Milligram-scale production (6 mg) of stemmadenine was achieved from 19E-geissoschizine via heterologous expression.
Conclusions:
- Enzyme characterization and pathway reconstitution in N. benthamiana reveal insights into stemmadenine acetate biosynthesis.
- Identified bottlenecks include GS stereoisomer formation and Redox1 promiscuity.
- Demonstrated potential for milligram-scale production of stemmadenine acetate in N. benthamiana.
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