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Updated: Aug 21, 2026

3D Modeling of Dendritic Spines with Synaptic Plasticity
Published on: May 18, 2020
Fascin in Dendritic Protrusions is Required for Synaptic Plasticity
James Q Zheng1, Shuristeen Joubert2, Carlos Gonzalez-Islas2
1Department of Cell Biology, Emory University School of Medicine, Atlanta, GA 30322; Department of Neurology, Emory University School of Medicine, Atlanta, GA 30322; Center for Neurodegenerative Disease, Emory University School of Medicine, Atlanta, GA 30322.
None:
The Fascin family of actin-bundling proteins is best known for organizing actin filaments (F-actin) into tightly packed bundles that drive dynamic membrane protrusions such as filopodia. In neurons, fascin has been thought to primarily function in axons, as previous studies reported its absence from dendritic filopodia and spines. Here, we demonstrate that fascin is both present and functionally important in dendritic compartments. Using optimized immunocytochemistry and CRISPR-based endogenous tagging of fascin1 in cultured hippocampal neurons, we show that fascin is concentrated in developing dendritic filopodia and enriched in mature dendritic spines. Super-resolution imaging further reveals that fascin is organized into discrete nanoscale foci within spine heads, but not the spine neck. Finally, we show that CRISPR-mediated knockout of fascin1 in mature hippocampal neurons impairs synaptic potentiation, without affecting baseline excitatory synaptic transmission. Together, our findings uncover a previously overlooked aspect of actin organization in dendritic spines and establish fascin as a critical regulator of postsynaptic plasticity. SUMMARY: Statement The actin bundling protein fascin localizes to dendritic filopodia and spines, where it regulates activity-dependent synaptic plasticity.
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