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Hongkui Zeng

2 papers in the library · 15 citations · publishing 2020-2025

Papers

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

Cell December 5, 2025 Quan Jiang, Ling-Xiao Shao, Shenqin Yao et al. 15 citations

A single dose of psilocybin causes structural remodeling of dendritic spines in the medial frontal cortex of mice. Using monosynaptic rabies tracing, the researchers mapped brain-wide inputs to frontal cortical pyramidal neurons and found that psilocybin's effect on connectivity is network specific: it strengthens routing of inputs from perceptual and medial regions (homolog of the default mode network) to subcortical targets while weakening inputs that are part of cortico-cortical recurrent loops. The pattern of synaptic reorganization depends on drug-evoked spiking activity, as silencing a presynaptic region during psilocybin administration disrupts the rewiring. These results reveal how psilocybin impacts large-scale cortical network connectivity and show that neural activity modulation can sculpt psychedelic-evoked plasticity.

Regional, Layer, and Cell-Type-Specific Connectivity of the Mouse Default Mode Network

Neuron December 1, 2020 Jennifer D. Whitesell, Adam Liska, L. Coletta et al.

The default mode network (DMN) is a set of brain regions active at rest and vulnerable to brain disorders, but how disease affects it remains unknown. By co-registering functional MRI and axonal tracing data into the Allen mouse brain atlas, the authors show that the mouse DMN consists of preferentially interconnected cortical regions. Layer 2/3 neurons within the DMN project almost exclusively to other DMN regions, whereas layer 5 neurons project both in and out of the DMN. In the retrosplenial cortex, two layer 5 projection types were identified, distinguished by their targets, laminar position, and gene expression. These findings provide a multi-scale description of the mouse DMN's anatomical connectivity.