Skip to content

Drummond E. Mcculloch

2 papers in the library · 9 citations · publishing 2026

Papers

An international mega-analysis of psychedelic drug effects on brain circuit function

Nature Medicine April 1, 2026 Manesh Girn, Manoj K. Doss, Leor Roseman et al. 8 citations

Psychedelic drugs are being studied again for their therapeutic potential, but how they change brain function is not well understood. By combining 11 brain-scanning datasets from five different psychedelics (psilocybin, LSD, mescaline, DMT, and ayahuasca) across three continents, researchers found a common pattern: increased communication between brain networks that handle high-level thinking (default, frontoparietal, and limbic) and those that handle sensory input (visual and somatomotor). Key deep-brain regions (thalamus, caudate, putamen) and the cerebellum also changed how they connect with sensorimotor networks. Contrary to some earlier studies, reductions in within-network connectivity were weak to moderate and varied by drug. These findings help resolve previous inconsistencies and provide a comprehensive map of how psychedelics alter large-scale brain organization.

Psychedelics distinctly alter brain entropy and complexity compared to psychostimulants

medRxiv January 16, 2026 Kristian Larsen, Patrick M Fisher, Drummond E. Mcculloch et al. 1 citation

Classical psychedelics such as LSD, psilocybin, and mescaline produce distinct changes in brain complexity and entropy that are not seen with stimulants like MDMA or d-Amphetamine. Using resting-state fMRI data from three placebo-controlled crossover trials with 79 participants across 255 sessions, the study found that psychedelics specifically increased meta-state complexity, short-timescale multiscale entropy, and dynamic conditional correlation entropy. Both drug classes increased Lempel-Ziv and spatial complexity and decreased absolute modularity, but only psychedelics showed these unique complexity and entropy increases. These findings suggest that psychedelic-specific brain signal changes may help distinguish the acute psychedelic state from other psychoactive drug effects and could be relevant to understanding their therapeutic potential.