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Edwards, J. G.

Publications and source records attributed to Edwards, J. G..

2 recordsLinked to original sources

VTA GABA Cell Bipotential Induction of iLTP or iLTD Synaptic Plasticity is Input Selective, where iLTD is Uniquely Eliminated by Cocaine.

The ventral tegmental area (VTA) is a key reward circuit hub, implicated in drug seeking and addictive behaviors. The VTA contains dopaminergic and GABAergic neurons that both play roles in reward prediction, aversion, motivated reward behavior, etc. Synaptic plasticity, including VTA excitatory and inhibitory long-term potentiation (LTP/iLTP) and long-term depression (LTD/iLTD), are fundamentally involved in processing reward learning and memory, which is maladaptively altered by abused drugs mediating dependence induction. This report extends our prior research of the understudied VTA GABA cells and the rationale for their bipotential plasticity (iLTP or iLTD) capacity by optogenetic circuit level examination of their unique GABAergic inputs. In addition, we examine potential cocaine impact on both plasticity forms. Optogenetic activation of either lateral hypothalamus or rostromedial tegmental nucleus induced iLTP in VTA GABA cells, while optogenetic activation of local VTA GABAergic inputs induced iLTD. This suggests expression of bipotential plasticity is input specific, and highlights implications for each type of plasticity on reward signaling. Drug of abuse cocaine eliminated iLTD while sparing iLTP, suggesting selective impairment of local GABA signaling to VTA GABA cells by cocaine versus projection GABA signaling. This emphasizes potential differential VTA GABA cell plasticity in reward processing and the need to further examine cocaine impact on inhibitory signaling in addition to known impact on the dopaminergic system. By elucidating the circuit-dependence of plasticity type in VTA GABA cells and drug-induced impact, our research could potentially identify additional targets for therapeutic intervention of drug dependence via the GABAergic system.

neuroscience↗

LSD Restores Synaptic Plasticity in VTA of Morphine-Treated Mice and Disrupts Morphine-Conditioned Place Preference

Psychedelics are emerging as a promising treatment option for a range of neuropsychiatric disorders, including substance use disorders. One potential mechanism underlying their therapeutic benefits may involve a reversal of maladaptive plasticity induced by drug exposure. Here, we identify physiological, behavioral, and epigenetic impacts of lysergic acid diethylamide (LSD) on morphine-treated male and female mice. Morphine was selected due to the high leverage capacity to address the opioid epidemic. A single treatment of LSD, or 4 microdoses of LSD, cause accelerated extinction of morphine-induced conditioned place preference. Whole-cell electrophysiology revealed that excitatory synaptic plasticity, which was eliminated in VTA GABA neurons following morphine exposure, was restored 24 hours after a single high dose of LSD. To explore the impact of LSD treatment on potential epigenetic changes, whole-brain DNA methylation analysis in morphine-treated mice that received either saline or LSD post-morphine treatment revealed significant differences in methylation profiles associated with LSD treatment. Collectively, these findings suggest that LSD may reverse or prevent morphine-induced changes in reward circuit plasticity and attenuate measures of morphine-preference.

neuroscience↗