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Updated: Mar 27, 2026

Author Spotlight: Advancing 3D Cell Modeling – A High-Throughput Approach for Neural Cocultures
Published on: September 29, 2023
Nanopiezoelectric 3D-Bioprinted Neural Organoid Models Epileptic Neuron-Microglia Circuit in Neurodegeneration
Jiangbangrui Chu1, Kefan Hu2, Wang-Fat Fred Lee1
1School of Science and Technology, Hong Kong Metropolitan University, Ho Man Tin, Kowloon, Hong Kong SAR 999077, China.
Abstract:
Epilepsy is increasingly linked to neurodegeneration, yet the cellular drivers of the neuron-microglia interplay remain unclear. Herein, we present "EpiNeuroid", a 3D-bioprinted human neural organoid that incorporates barium titanate piezoelectric nanoparticles to generate an on-demand, ultrasound-triggered electrostimulatory microenvironment that induces a hyperexcitable state, recapitulating key electrophysiological signatures indicative of a trend toward epileptiform discharges. EpiNeuroid recapitulates neuronal DAMPs release (HMGB1, TLR4, NF-κB), microglial activation (Iba1, TNF-α, IL-1β, IL-6, iNOS), heightened neuronal Ca2+ influx, and progressive viability loss, with microglia amplifying injury and hyperexcitability to establish a self-perpetuating epilepsy-neurodegeneration loop. To enable therapeutic screening, we engineered self-assembled ginsenoside protopanaxadiol nanorods (PPD-NRs), which outperformed free protopanaxadiol by suppressing BDNF/ERK/CREB/mTOR hyperactivation, reducing cytokines and HMGB1, restoring Ca2+ homeostasis, and preserving neurosphere integrity. Collectively, EpiNeuroid provides a human-relevant, tunable platform for the mechanistic dissection and discovery of nanotherapeutic interventions in epilepsy-associated neurodegeneration.
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