Related Experiment Video
Updated: Sep 17, 2026

A Multi-Electrode Array Platform for Modeling Epilepsy Using Human Pluripotent Stem Cell-Derived Brain Assembloids
Published on: September 27, 2024
A high-density microelectrode array integrated microfluidic platform for quantitative investigation of functional
Chiara Ausilio1, Annachiara Scalzone2, Valentina Mollo3
1Center for Advanced Biomaterials for Healthcare@CRIB, Istituto Italiano di Tecnologia Center for Advanced Biomaterials for Healthcare, largo bersanti e matteucci 53, napoli, Naples, Campania, 80125, Italy.
Abstract:
The quantitative investigation of functional connectivity across spatially organized neuronal networks remains a major challenge in human three-dimensional (3D) in vitro models. Although neurospheroids, brain organoids, and microfluidic systems enable controlled structural organization and guided neurite growth, their integration with high-resolution electrophysiological interfaces remains limited, often requiring post hoc adaptations that compromise recording stability and long-term reproducibility. Here, we present a polydimethylsiloxane (PDMS) microfluidic platform natively engineered for seamless integration with high-density microelectrode arrays (HD-MEAs), enabling the controlled interconnection and long-term electrophysiological interrogation of human neurospheroids within a defined geometry. The platform supports reproducible axonal growth between spatially separated spheroids while preserving full compatibility with HD-MEA recording requirements and electrical stability. Structural characterization revealed the formation of a stable inter-spheroid axonal fascicle enriched in neuronal and synapse-associated markers, supported by ultrastructural analyses across multiple spatial scales. Long-term electrophysiological recordings revealed progressive electrophysiological maturation-associated changes, characterized by increased mean firing rate, sustained and spatially confined neuronal activity within each spheroid, and changes in burst dynamics. Quantitative cross-correlation analysis identified lag-consistent interaction patterns compatible with both local (intra-spheroid) and long-range (inter-spheroid) putative functional connectivity, enabling the distinction between local and distributed network dynamics within the modular system. By combining controlled 3D architecture, stable HD-MEA integration, and quantitative electrophysiological readouts, this platform establishes a robust, reproducible and human-relevant framework for investigating activity patterns compatible with functional connectivity dynamics in interconnected neuronal assemblies, with potential applications in disease modeling and connectopathies-related studies.
More Related Videos
11:27Interfacing Microfluidics with Microelectrode Arrays for Studying Neuronal Communication and Axonal Signal Propagation
Published on: December 8, 2018
09:44Recording and Analyzing Multimodal Large-Scale Neuronal Ensemble Dynamics on CMOS-Integrated High-Density Microelectrode Array
Published on: March 8, 2024