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Graphene Optoelectronics for Non-Genetic Neuromodulation in Disease Modeling, Stem Cell Maturation, and Biohybrid Robotics

GSE301685 Homo sapiens Expression profiling by high throughput sequencing 8 samples Submitted 2025/08/27 Platform GPL30173
Summary
Light can serve as a tunable trigger for neurobioengineering technologies, enabling probing, control, and enhancement of brain function with unmatched spatiotemporal precision. Yet, these technologies often require genetic or structural alterations of neurons, disrupting their natural activity. Here, we introduce the Graphene-Mediated Optical Stimulation (GraMOS) platform, which leverages graphene’s optoelectronic properties and its ability to efficiently convert light into electricity. Using GraMOS in longitudinal studies, we found that repeated optical stimulation enhances the maturation of hiPSC-derived neurons and brain organoids, underscoring GraMOS’s potential for regenerative medicine and neurodevelopmental studies. To explore its potential for disease modeling, we applied short-term GraMOS to Alzheimer’s stem cell models, uncovering disease-associated alterations in neuronal activity. Finally, we demonstrated a proof-of-concept for neuroengineering applications by directing robotic movements with GraMOS-triggered signals from graphene-interfaced brain organoids. By enabling precise, non-invasive neural control across timescales from seconds to weeks, GraMOS opens new avenues in neurodevelopment, disease treatment, and robotics.
Published in
Non-genetic neuromodulation with graphene optoelectronic actuators for disease models, stem cell maturation, and biohybrid robotics
Molokanova E, Zhou T, Vasupal P et al. · Nature communications 2025 · PMID 40835596 · doi:10.1038/s41467-025-62637-6
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Also filed as BioProject PRJNA1285978 and SRA study SRP598172. Searching any of these in the dataset finder brings you back here.

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