Brain Network Dynamics

Brain network dynamics describes how patterns of neural activity and connectivity change across time, enabling the brain to integrate information and generate behavior. Interacting neuronal populations shift among transient network states through synaptic signaling, coordinated oscillations, and changes in the strength of connections within and between brain regions. Studying these dynamics helps explain how the brain supports perception, learning, decision-making, and social behavior, while revealing how disruptions in network coordination may contribute to neurological and psychiatric conditions. Dynamic analyses also guide models of brain function and inform research on behavior, cognition, and potential clinical biomarkers.

Brain Network Dynamics - Related Videos

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JoVE EoE - Neurophysiology

Optogenetic Control of Hippocampal Network Dynamics

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2025

This video demonstrates the method to use optogenetics to modulate hippocampal network dynamics by activating genetically modified light-sensitive interneurons in a mouse brain slice, enhancing theta oscillation synchronization and studying neural circuit behavior.

Comprehensive Analysis of Transcription Dynamics from Brain Samples Following Behavioral Experience

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Cited by 6 •

2014

This manuscript describes a protocol that applies comprehensive profiling for analysis of transcriptional programs induced in specific brain nuclei of rodents following behavioral paradigms. Herein, this approach is illustrated in the context of profiling genes induced in the nucleus accumbens (NAc) of mice following acute cocaine exposure, utilizing microfluidic qPCR arrays.

Soft Pneumatic Robot Modulates Graph Theory Metrics of Brain Network for Hand Rehabilitation After Stroke

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2025

This study explores the effects of a configurable soft pneumatic robot on enhancing whole-brain network topology post-stroke. Graph theory analysis indicates significant improvements in clustering coefficient, path length, and global efficiency. Findings highlight the potential of programmable robotic protocols to modulate neuroplasticity and optimize functional recovery in stroke rehabilitation.

Brain Slice Stimulation Using a Microfluidic Network and Standard Perfusion Chamber

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Cited by 8 •

2007

We demonstrate fabrication of a simple microfluidic device that can be integrated with standard electrophysiology setups to expose microscale surfaces of a brain slice in a well controlled manner to different neurotransmitters.

Quantification of Protein Interaction Network Dynamics using Multiplexed Co-Immunoprecipitation

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Cited by 14 •

2019

Quantitative Multiplex Immunoprecipitation (QMI) uses flow cytometry for sensitive detection of differences in the abundance of targeted protein-protein interactions between two samples. QMI can be performed using a small amount of biomaterial, does not require genetically engineered tags, and can be adapted for any previously defined protein interaction network.

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