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Sustained Depolarization Induces Gene Expression Pattern Changes Related to Synaptic Plasticity in a Human Cholinergic Cellular Model

Anna Maria Carrese; Rossella Vitale; Manuela Turco; Valeria Masola; Francesco Aniello; Emilia Vitale; Aldo Donizetti
Molecular Neurobiology · Vol. 62, Issue 1 · pp. 935-945 · 2025

Abstract

Neuronal gene expression in the brain dynamically responds to synaptic activity. The interplay among synaptic activity, gene expression, and synaptic plasticity has crucial implications for understanding the pathophysiology of diseases such as Alzheimer’s disease and epilepsy. These diseases are marked by synaptic dysfunction that affects the expression patterns of neuroprotective genes that are incompletely understood. In our study, we developed a cellular model of synaptic activity using human cholinergic neurons derived from SH-SY5Y cell differentiation. Depolarization induction modulates the expression of neurotrophic genes and synaptic markers, indicating a potential role in synaptic plasticity regulation. This hypothesis is further supported by the induction kinetics of various long non-coding RNAs, including primate-specific ones. Our experimental model showcases the utility of SH-SY5Y cells in elucidating the molecular mechanisms underlying synaptic plasticity in human cellular systems.

Bibliographic Information

JournalMolecular Neurobiology
PublisherSpringer
Publication Date2025-01-01
Publication Year2025
Volume62
Issue1
Pages935-945
Document TypeJournal Article
Print ISSN0893-7648
eISSN1559-1182
DOI10.1007/s12035-024-04262-w

Access Information

NARA Access Coverage1987-01-01~Current
Journal Homepagehttps://www.springer.com/journal/12035
Publisher PageOpen Publisher Page
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