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Bragg, E.

Publications and source records attributed to Bragg, E..

2 recordsLinked to original sources

Lysergic acid diethylamide pretreatment prolongs brain-stimulation induced neural activity

A leading theory for how psychedelics are able to produce robust clinical improvement and preclinical behavioral changes is that psychedelics act through neuroplastic mechanisms to induce lasting structural and functional alterations in neural circuits. However, psychedelics produce these effects across wide swaths of the brain. Based on our prior work, we hypothesized that engaging a specific brain circuit with focal brain stimulation during the window of enhanced plasticity produced by psychedelics would lead to more persistent alterations in the activity of that circuit. To test this, we administered either saline (SAL) or lysergic acid diethylamide (LSD) to rats 24 hours prior to electrical stimulation targeting the rat medial prefrontal cortex (mPFC). Brain activity was recorded before, during, and after stimulation using depth electrodes implanted in four bilateral frontostriatal regions. To assess changes in neural activity, we trained general logistic classifiers to distinguish between time points (e.g., pre-stimulation vs. post-stimulation) and then compared model performances across groups (e.g., LSD vs. SAL). As such, model performance represents the degree of difference between the two neural states (pre vs. post), and a significant difference between groups indicates a larger change in brain activity in one group. We found that LSD pretreatment, compared to SAL, resulted in larger and longer-lasting changes in brain activity following stimulation. Immunohistochemistry revealed that stimulation led to the activation of the mTOR signaling pathway, and the combination of LSD and stimulation led to alterations in perineuronal net (PNN) integrity. Regardless of pretreatment, brain activity states recorded during stimulation did not capture the brain state that persisted in the minutes or days that followed. This work has important implications for understanding the general effects of brain stimulation and provides strong support for the development of psychedelic-assisted brain stimulation approaches. By increasing the durability of brain stimulation-induced changes in activity, this approach could lead to a reduction in relapse rates, which currently limit the impact of non-invasive stimulation treatments.

neuroscience↗

Psychedelics enhance the effects of brain stimulation in rodents

BackgroundPsychedelic drugs have resurged in neuroscience and psychiatry with promising success in psychedelic-assisted therapy for the treatment of anxiety, depression, and addiction. At the cellular level, psychedelic drugs elicit neuroplastic processes 24 hours after administration, priming neural circuits for change. The acute effects of psychedelic drugs are well characterized with functional imaging and neural oscillations showing an increase in the entropy of spontaneous cortical activity. HypothesesWe hypothesized that cortical-striatal oscillations recorded in rats would confirm the effects of psychedelic drugs. We also hypothesized that brain stimulation delivered 24 hours after LSD administration would lead to different effects than brain stimulation alone. MethodsWe recorded local field potential (LFP) oscillations from rats following lysergic acid diethylamide (LSD) or saline administration and determined if exposure to these treatments altered the effect of a targeted intervention (brain stimulation) 24 hours later. ResultsWe confirmed acutely decreased low frequency power across the brain when rats are given LSD. We also demonstrated these altered states return to baseline after 24 hours. Brain stimulation applied in the previously reported window of heightened neuroplasticity produced distinct shifts in brain state compared to brain stimulation applied 24 hours after saline. ConclusionsDespite the acute effects of LSD disappearing after 24 hours, there are still latent effects that interact with brain stimulation to create larger and distinct changes in brain activity compared to brain stimulation alone. Our proof-of-concept findings are the first to suggest that psychedelic drugs could work in combination with brain stimulation to achieve enhanced effects on brain activity and future work will assess impacts on stimulation induced changes in behavior.

neuroscience↗