At the same time, the experiment revealed an important limitation. When multiple pathways were activated at once, they began to compete for the same starting material. In biological terms, the system reached a bottleneck, and production efficiency dropped.
Finally, the team pushed the system beyond what occurs in nature. By adding bacterial enzymes, they produced modified psychedelic molecules carrying chlorine or bromine atoms in specific positions – something that evolution had apparently left out of the plant’s job description but might prove therapeutically valuable. Several such molecules have already shown intriguing biological activity, including antidepressant-like effects, as part of the growing search for new treatments for disorders such as depression, anxiety, PTSD and addiction.
The research points toward new ways of producing psychedelic compounds. Many are currently obtained from slow-growing plants, rare fungi or animal sources, often raising ecological and ethical concerns. The Sonoran Desert toad, for example, is increasingly threatened by habitat loss and overcollection. Plants used for ayahuasca are also under growing pressure due to land loss and rising demand.
Producing these molecules in fast-growing laboratory plants could provide a more sustainable alternative, reducing the need to harvest vulnerable species while making production more efficient and scalable. Plants are grown, the genes are introduced, and within about a week, measurable amounts of the psychedelic can be extracted.