Related Experiment Video
Updated: Jan 19, 2026

Author Spotlight: Advancing Large-Scale Neural Dynamics Through HD-MEA Technology
Published on: March 8, 2024
Structural Insights Into the Dynamic Evolution of Neuronal Networks as Synaptic Density Decreases
Ye Yuan1,2, Jian Liu1,2, Peng Zhao1,2
1Department of Automation, Shanghai Jiao Tong University, Shanghai, China.
Abstract:
The human brain is thought to be an extremely complex but efficient computing engine, processing vast amounts of information from a changing world. The decline in the synaptic density of neuronal networks is one of the most important characteristics of brain development, which is closely related to synaptic pruning, synaptic growth, synaptic plasticity, and energy metabolism. However, because of technical limitations in observing large-scale neuronal networks dynamically connected through synapses, how neuronal networks are organized and evolve as their synaptic density declines remains unclear. Here, by establishing a biologically reasonable neuronal network model, we show that despite a decline in the synaptic density, the connectivity, and efficiency of neuronal networks can be improved. Importantly, by analyzing the degree distribution, we also find that both the scale-free characteristic of neuronal networks and the emergence of hub neurons rely on the spatial distance between neurons. These findings may promote our understanding of neuronal networks in the brain and have guiding significance for the design of neuronal network models.
Related Concept Videos
09:44Recording and Analyzing Multimodal Large-Scale Neuronal Ensemble Dynamics on CMOS-Integrated High-Density Microelectrode Array
08:03Advanced Self-Healing Asphalt Reinforced by Graphene Structures: An Atomistic Insight
07:28Evolution of Staircase Structures in Diffusive Convection
10:18Photodiode-Based Optical Imaging for Recording Network Dynamics with Single-Neuron Resolution in Non-Transgenic Invertebrates
The Evidence for Evolution
03:03Generating an Ultra-Low-Density Neuronal Culture Using a High-Density Neuronal Feeder Layer

