Simultaneous Production of Psilocybin and a Cocktail of β‐Carboline Monoamine Oxidase Inhibitors in “Magic” Mushrooms
Felix Blei, Sebastian Dörner, Janis Fricke, Florian Baldeweg, Felix Trottmann, Anna J. Komor, Florian Meyer, Christian Hertweck, Dirk Hoffmeister
Chemistry - A European Journal November 14, 2019 DOI: 10.1002/chem.201904363 via OpenAlex
Summary
AI-generated from the abstractThe psychotropic effects of Psilocybe 'magic' mushrooms are caused by the alkaloid psilocybin, but their broader secondary metabolome is poorly understood. Analysis of four Psilocybe species identified harmane, harmine, and other tryptophan-derived β-carbolines as natural products, confirmed by NMR spectroscopy and stable-isotope labeling. MALDI-MS imaging showed β-carbolines accumulate toward hyphal apices. As potent monoamine oxidase inhibitors, these β-carbolines are neuroactive and interfere with psilocybin degradation, representing an unprecedented scenario where different natural product pathways from the same building block contribute directly or indirectly to the same pharmacological effects.
Study at a glance
| Characteristics | Qualitative study Peer reviewed |
|---|---|
| Population | Four Psilocybe species |
| Topics | Psilocybin |
| Keywords | Harmine Monoamine oxidase Alkaloid Natural product |
| Citations | 80 |
| Key finding | Psilocybe mushrooms produce β-carbolines, including harmane and harmine, which are potent monoamine oxidase inhibitors that interfere with psilocybin degradation. |
Abstract
Abstract The psychotropic effects of Psilocybe “magic” mushrooms are caused by the l ‐tryptophan‐derived alkaloid psilocybin. Despite their significance, the secondary metabolome of these fungi is poorly understood in general. Our analysis of four Psilocybe species identified harmane, harmine, and a range of other l ‐tryptophan‐derived β‐carbolines as their natural products, which was confirmed by 1D and 2D NMR spectroscopy. Stable‐isotope labeling with 13 C 11 ‐ l ‐tryptophan verified the β‐carbolines as biosynthetic products of these fungi. In addition, MALDI‐MS imaging showed that β‐carbolines accumulate toward the hyphal apices. As potent inhibitors of monoamine oxidases, β‐carbolines are neuroactive compounds and interfere with psilocybin degradation. Therefore, our findings represent an unprecedented scenario of natural product pathways that diverge from the same building block and produce dissimilar compounds, yet contribute directly or indirectly to the same pharmacological effects.