Abstract
Amaryllidaceae alkaloids (AmAs) comprise a structurally diverse group of specialized metabolites produced almost exclusively by species of the Amaryllidoideae subfamily and are of substantial pharmacological importance. However, the limited availability of high-quality genomes from Amaryllidoideae plants has constrained systematic investigations of the genes and evolutionary processes underlying AmA biosynthesis. Here, we present a chromosome-level genome assembly of Lycoris radiata , which enabled the discovery of key downstream enzymes in the galanthamine biosynthetic pathway and uncovered reversible reactions between two critical metabolite pairs. These findings provide new mechanistic insight into pathway architecture and enable reconstruction of the galanthamine biosynthetic pathway in Yarrowia lipolytica . Comparative genomic analyses indicate that several core genes for AmA biosynthesis originated in ancestral angiosperms, whereas the complete pathway was likely assembled in the Amaryllidoideae subfamily through gene duplication and neofunctionalization. Furthermore, integrated metabolomic and transcriptomic analyses suggest that roots contribute actively to AmA metabolism in Lycoris . Together, these findings provide a genomic and biochemical framework for understanding the evolution and engineering of AmA biosynthesis.
| Original language | English |
|---|---|
| Article number | 101942 |
| Journal | Plant Communications |
| DOIs | |
| State | Accepted/In press - 2026 |
Keywords
- Amaryllidaceae alkaloids
- chromosome-level genome
- galanthamine biosynthesis
- Lycoris radiata
- metabolomics
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