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Calvin Ly

3 papers in the library · 1,492 citations · publishing 2018-2021

Papers

Psychedelics Promote Structural and Functional Neural Plasticity

Cell Reports June 1, 2018 Calvin Ly, Alexandra C. Greb, Lindsay P. Cameron et al. 1,158 citations

Serotonergic psychedelics, like ketamine, can robustly increase the growth of neurons and their connections (neuritogenesis and spinogenesis) in the prefrontal cortex, both in lab dishes and in living animals. These structural changes are accompanied by more synapses and enhanced function, as shown by microscopy and electrophysiology. The effects appear to arise from stimulation of TrkB, mTOR, and 5-HT2A signaling pathways, which may explain the clinical effectiveness of these compounds. The findings highlight the therapeutic potential of psychedelics and identify several chemical scaffolds for developing fast-acting, safe antidepressants that promote brain plasticity.

Psychedelic-inspired drug discovery using an engineered biosensor.

Cell April 28, 2021 Chunyang Dong, Calvin Ly, Lee E. Dunlap et al. 207 citations

A genetically encoded fluorescent sensor called psychLight, based on the 5-HT2A receptor structure, detects behaviorally relevant serotonin release and correctly predicts whether structurally similar 5-HT2AR ligands will cause hallucinogenic behavioral effects. Using psychLight, a non-hallucinogenic psychedelic analog was identified that produced rapid-onset and long-lasting antidepressant-like effects after a single administration. The sensor enables in vivo detection of serotonin dynamics, early identification of designer drugs of abuse, and development of non-hallucinogenic therapeutics targeting the 5-HT2AR.

Transient Stimulation with Psychoplastogens Is Sufficient to Initiate Neuronal Growth

ACS Pharmacology & Translational Science September 11, 2020 Calvin Ly, Alexandra C. Greb, Maxemiliano V. Vargas et al. 127 citations

Cortical neuron atrophy, including neurite retraction and spine loss, is a hallmark of depression. Psychoplastogens are small molecules hypothesized to reverse these changes. Ketamine and LSD, from two structurally distinct chemical classes, promote sustained growth of cortical neurons after brief stimulation. This growth occurs in two phases: an initial stimulation phase requiring TrkB activation, followed by a growth period needing sustained mTOR and AMPA receptor activation. These temporal details suggest that rapidly excreted psychoplastogens could be effective neurotherapeutics with advantages over ketamine and LSD.