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Hung, T. S.

Publications and source records attributed to Hung, T. S..

2 recordsLinked to original sources

Psilocybin triggers an activity-dependent rewiring of large-scale cortical networks

Psilocybin holds promise as a treatment for mental illnesses. One dose of psilocybin induces structural remodeling of dendritic spines in the medial frontal cortex in mice. The dendritic spines would be innervated by presynaptic neurons, but the sources of these inputs have not been identified. Here, using monosynaptic rabies tracing, we map the brain-wide distribution of inputs to frontal cortical pyramidal neurons. We discover that psilocybins effect on connectivity is network-specific: strengthening the routing of inputs from perceptual and medial regions (homolog of default mode network) to subcortical targets, while weakening inputs that are part of cortico-cortical recurrent loops. The pattern of synaptic reorganization depends on the drug-evoked spiking activity, because silencing a presynaptic region during psilocybin administration disrupts the rewiring. Collectively, the results reveal the impact of psilocybin on the connectivity of large-scale cortical networks and demonstrate neural activity modulation as an approach to sculpt the psychedelic-evoked neural plasticity.

neuroscience↗

Cerebellum-Targeted Transcranial Focused Ultrasound Stimulation Modulates Hippocampus Neural Activities

Low-intensity transcranial focused ultrasound stimulation (tFUS) has recently emerged as a promising neuromodulation technique due to its non-invasive nature, ability to penetrate deeply, and high spatial resolution. On the other hand, the cerebellum has attracted new interest as a target for neuromodulation. In this study, we investigated how cerebellum-targeted tFUS could modulate hippocampal neural activity. We found that tFUS at pulse repetition frequency (PRF) as high as 10kHz can effectively activate the cerebellum in vivo. Furthermore, PRF at 10kHz, rather than 1kHz, favored remote inhibition of hippocampus neurons. We found that the neuromodulation at hippocampus was mainly mediated by cerebellum cortex than deep cerebellar nucleus. Furthermore, by cFos expression mapping and phase-amplitude coupling analysis, we showed that the hippocampal response at different PRFs resulted from altered neurodynamic interaction rather than overall activation of engaged brain regions. Our results reveal new potential for cerebellum as a neuromodulation target for hippocampus-related functions.

bioengineering↗