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Stroukov, E.

Publications and source records attributed to Stroukov, E..

2 recordsLinked to original sources

The psychedelic DOI decreases the modularity of the cortical network by increasing cortico-cortical and thalamo-cortical functional influence

Psychedelics are powerful modulators of conscious perception, hypothesized to exert their effects by reorganizing large-scale brain functional connectivity. The circuit mechanisms underlying this reorganization remain unknown. Here, using widefield calcium imaging in awake mice, we found that the psychedelic DOI, in a 5-HT2A-dependent manner, acutely decreased the modularity of the cortical network by increasing correlations between anterolateral (AL) and posteromedial (PM) cortical domains. Functional influence measurements revealed that DOI increased both thalamo-cortical and long-range cortico-cortical influence onto the AL domain. We speculate that these increases in functional influence are driving the DOI-induced increase in the coupling between cortical domains. Our results provide a mouse correlate of the network reorganization seen under psychedelics in human neuroimaging and identify thalamo-cortical and cortico-cortical changes as candidate circuit mechanisms for this reorganization.

neuroscience↗

Electroconvulsive stimulation drives cortical spreading depression dependent immediate early gene expression in mice

Electroconvulsive therapy (ECT) is a highly effective treatment for several psychiatric disorders, though its biological mechanisms remain unclear. Its therapeutic action has traditionally been attributed to the generalized seizure ECT induces. However, this view is challenged by the recent finding that electroconvulsive stimulation (ECS) can trigger a cortical spreading depression (CSD). Because CSD triggers massive intracellular molecular changes, we hypothesized that it could be a key mediator of ECTs therapeutic, plasticity-inducing effects. We observed similar neuronal oscillations following ECS in mice and patients undergoing ECT. We show that CSD drives increased expression of the immediate early gene Fos, a key marker of neuronal plasticity, and is associated with factors that predict positive ECT therapeutic outcome. Our results suggest that the therapeutic efficacy of ECT may be mediated by CSD. This challenges the seizure-centric model and implies that CSD, a currently unmonitored neurophysiological event, may serve as a more relevant biomarker for predicting and optimizing therapeutic outcomes of ECT.

neuroscience↗