Development of an E. coli-based norbaeocystin production platform and evaluation of behavioral effects in rats
Alexandra M. Adams, Nicholas A. Anas, Abhishek K. Sen, Jordan D. Hinegardner-Hendricks, Philip J. O’dell, William J. Gibbons, Jessica E. Flower, Matthew S. Mcmurray, J. Andrew Jones
Metabolic Engineering Communications March 11, 2022 DOI: 10.1016/j.mec.2022.e00196 via OpenAlex
Summary
AI-generated from the abstractPsilocybin and other psychedelic compounds are being studied for therapeutic use, but little is known about norbaeocystin, a pathway intermediate, due to difficulties obtaining it. Researchers developed a new E. coli platform to produce gram-scale amounts of norbaeocystin, finding that even minor genetic changes required reoptimization of production. In vivo tests on Long-Evans rats showed a dose response to psilocybin, but norbaeocystin did not elicit any pharmacological response, suggesting it and its metabolites may not strongly bind to the serotonin 2A receptor. This work enables future studies of norbaeocystin in animal models and supports the safety of using cell broth as a drug delivery vehicle.
Study at a glance
| Characteristics | Experimental study Peer reviewed |
|---|---|
| Population | Long-Evans rats |
| Topics | Psilocybin |
| Keywords | Tryptamine Metabolite In vivo Pharmacology |
| Citations | 21 |
| Key finding | Norbaeocystin did not elicit a pharmacological response in rats, suggesting it may not have strong affinity for the serotonin 2A receptor. |
Abstract
Interest in the potential therapeutic efficacy of psilocybin and other psychedelic compounds has escalated significantly in recent years. To date, little is known regarding the biological activity of the psilocybin pathway intermediate, norbaeocystin, due to limitations around sourcing the phosphorylated tryptamine metabolite for in vivo testing. To address this limitation, we first developed a novel E. coli platform for the rapid and scalable production of gram-scale amounts of norbaeocystin. Through this process we compare the genetic and fermentation optimization strategies to that of a similarly constructed and previously reported psilocybin producing strain, uncovering the need for reoptimization and balancing upon even minor genetic modifications to the production host. We then perform in vivo measurements of head twitch response to both biosynthesized psilocybin and norbaeocystin using both a cell broth and water vehicle in Long-Evans rats. The data show a dose response to psilocybin while norbaeocystin does not elicit any pharmacological response, suggesting that norbaeocystin and its metabolites may not have a strong affinity for the serotonin 2A receptor. The findings presented here provide a mechanism to source norbaeocystin for future studies to evaluate its disease efficacy in animal models, both individually and in combination with psilocybin, and support the safety of cell broth as a drug delivery vehicle.