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1.
Mol Plant ; 2024 Jun 03.
Artículo en Inglés | MEDLINE | ID: mdl-38835170

RESUMEN

Mescaline, among the earliest identified natural hallucinogens, holds great potential in psychotherapy treatment. Nonetheless, despite the existence of a postulated biosynthetic pathway for more than half a century, the specific enzymes involved in this process are yet to be identified. Here, we investigated the cactus Lophophora williamsii (Peyote), the largest known natural producer of the phenethylamine mescaline. We employed a multi-faceted approach, combining de novo whole-genome and transcriptome sequencing with comprehensive chemical profiling, enzymatic assays, molecular modeling, and pathway engineering for pathway elucidation. We identified four groups of enzymes governing the six steps towards mescaline, and provided essential insights into several challenges hindering the reconstruction of this pathway in plant and yeast heterologous systems. Furthermore, we discovered an N-methyltransferase enzyme responsible for catalyzing the production of an array of N-methyl-phenethylamines, likely regulating mescaline levels in Peyote. Our findings open up avenues for exploring sustainable production approaches and responsible utilization, safeguarding this valuable natural resource for future generations.

2.
Nat Plants ; 9(5): 817-831, 2023 05.
Artículo en Inglés | MEDLINE | ID: mdl-37127748

RESUMEN

Modulation of the endocannabinoid system is projected to have therapeutic potential in almost all human diseases. Accordingly, the high demand for novel cannabinoids stimulates the discovery of untapped sources and efficient manufacturing technologies. Here we explored Helichrysum umbraculigerum, an Asteraceae species unrelated to Cannabis sativa that produces Cannabis-type cannabinoids (for example, 4.3% cannabigerolic acid). In contrast to Cannabis, cannabinoids in H. umbraculigerum accumulate in leaves' glandular trichomes rather than in flowers. The integration of de novo whole-genome sequencing data with unambiguous chemical structure annotation, enzymatic assays and pathway reconstitution in Nicotiana benthamiana and in Saccharomyces cerevisiae has uncovered the molecular and chemical features of this plant. Apart from core biosynthetic enzymes, we reveal tailoring ones producing previously unknown cannabinoid metabolites. Orthology analyses demonstrate that cannabinoid synthesis evolved in parallel in H. umbraculigerum and Cannabis. Our discovery provides a currently unexploited source of cannabinoids and tools for engineering in heterologous hosts.


Asunto(s)
Cannabinoides , Cannabis , Humanos , Cannabinoides/metabolismo , Cannabis/genética , Flores/metabolismo , Hojas de la Planta/metabolismo
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