The Missing Piece? A Case for Microglia's Prominent Role in the Therapeutic Action of Anesthetics, Ketamine, and Psychedelics.

Jared VanderZwaag, Torin Halvorson, Kira Dolhan, Eva Šimončičová, Benneth Ben-Azu, Marie-Ève Tremblay

Journal: Neurochemical research 2023;48(4):1129-1166

PMID: 36327017

Abstract

There is much excitement surrounding recent research of promising, mechanistically novel psychotherapeutics - psychedelic, anesthetic, and dissociative agents - as they have demonstrated surprising efficacy in treating central nervous system (CNS) disorders, such as mood disorders and addiction. However, the mechanisms by which these drugs provide such profound psychological benefits are still to be fully elucidated. Microglia, the CNS's resident innate immune cells, are emerging as a cellular target for psychiatric disorders because of their critical role in regulating neuroplasticity and the inflammatory environment of the brain. The following paper is a review of recent literature surrounding these neuropharmacological therapies and their demonstrated or hypothesized interactions with microglia. Through investigating the mechanism of action of psychedelics, such as psilocybin and lysergic acid diethylamide, ketamine, and propofol, we demonstrate a largely under-investigated role for microglia in much of the emerging research surrounding these pharmacological agents. Among others, we detail sigma-1 receptors, serotonergic and γ-aminobutyric acid signalling, and tryptophan metabolism as pathways through which these agents modulate microglial phagocytic activity and inflammatory mediator release, inducing their therapeutic effects. The current review includes a discussion on future directions in the field of microglial pharmacology and covers bidirectional implications of microglia and these novel pharmacological agents in aging and age-related disease, glial cell heterogeneity, and state-of-the-art methodologies in microglial research.

© 2022. The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.

Address: Neuroscience Graduate Program, University of Victoria, Victoria, BC, Canada.; Division of Medical Sciences, University of Victoria, Victoria, BC, Canada.; Department of Surgery, Faculty of Medicine, University of British Columbia, Vancouver, BC, Canada.; BC Children's Hospital Research Institute, Vancouver, BC, Canada.; Department of Psychology, University of Victoria, Vancouver, BC, Canada.; Department of Biology, University of Victoria, Vancouver, BC, Canada.; Department of Pharmacology, Faculty of Basic Medical Sciences, College of Health Sciences, Delta State University, Abraka, Delta State, Nigeria.; Neuroscience Graduate Program, University of Victoria, Victoria, BC, Canada. [email protected].; Division of Medical Sciences, University of Victoria, Victoria, BC, Canada. [email protected].; Département de médecine moléculaire, Université Laval, Québec City, QC, Canada. [email protected].; Axe Neurosciences, Centre de Recherche du CHU de Québec, Université Laval, Québec City, QC, Canada. [email protected].; Neurology and Neurosurgery Department, McGill University, Montreal, QC, Canada. [email protected].; Department of Biochemistry and Molecular Biology, University of British Columbia, Vancouver, BC, Canada. [email protected].; Centre for Advanced Materials and Related Technology (CAMTEC), University of Victoria, Victoria, BC, Canada. [email protected].; Institute for Aging and Lifelong Health, University of Victoria, Victoria, BC, Canada. [email protected].

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