Electrophysiological development and functional plasticity in dissociated human cerebral organoids across multiple cell lines

Электрофизиологическое развитие и функциональная пластичность диссоциированных церебральных органоидов человека, полученных из нескольких клеточных линий
Deepak P. Srivastava, Deepak P. Srivastava, Adam Pavlinek, Sara Guerrisi, Kara O’Driscoll, Lucia Dutan Polit, Roland Nagy, Madeline A. Lancaster, Anthony C. Vernon, Adam Pavlinek, Sara Guerrisi, Kara O'Driscoll, Lucia Dutan Polit, Roland Nagy, Madeline A. Lancaster, Anthony C. Vernon
2026-03-27

dissociated human cerebral organoidsfunctional connectivity and network activityfunctional synapse developmentmicroelectrode arrays (MEAs)synaptic-like stimulation plasticity
Microelectrode arrays (MEAs) are increasingly used to profile the development of synchronized activity in neural organoids, yet no organoid study has reported on the consistency of electrophysiological development across cell lines. Here, we used dissociated neural organoids derived from six cell lines on MEAs to characterize functional synapse development using multiple parameters across time. The dissociated organoids demonstrated increasing functional connectivity and network activity over time across all cell lines and plasticity in response to synaptic-like stimulation. Like the organoids they were derived from, dissociated organoid cultures contained a diverse mixture of cell types. These results demonstrate that dissociated cerebral organoids can generate functional neurons, akin to primary neuronal cultures from brain tissue, providing a scalable model for studies of neurodevelopment and synaptic function. Consistent with unguided differentiation, we observed variability in activity parameters linked to donor cell line and batch effects, which must be considered in experimental design.
1
Dissociated cerebral organoids provide a scalable in vitro model for studying neurodevelopment and synaptic function.
2
Dissociated human cerebral organoids from six cell lines, plated on MEAs, show increasing functional connectivity and network activity over time.
3
Dissociated organoid cultures exhibit synaptic plasticity, responding to synaptic-like stimulation across cell lines.
4
Dissociated organoids contain a diverse mixture of cell types similar to their parent organoids, enabling generation of functional neurons akin to primary neuronal cultures.
5
Variability in electrophysiological activity parameters is observed and is linked to donor cell line and batch effects, requiring consideration in experimental design.

Dissociated human cerebral organoid cultures derived from six cell lines plated on microelectrode arrays

Electrophysiological development and functional synaptic/network plasticity over time, including functional connectivity, network activity, and responses to synaptic-like stimulation, and their consistency/variability across donor cell lines and batches

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2026-03-27
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Deepak P. Srivastava
Deepak P. Srivastava
Adam Pavlinek
Sara Guerrisi
Kara O’Driscoll
Lucia Dutan Polit
Roland Nagy
Madeline A. Lancaster
Anthony C. Vernon
Adam Pavlinek
Sara Guerrisi
Kara O'Driscoll
Lucia Dutan Polit
Roland Nagy
Madeline A. Lancaster
Anthony C. Vernon
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