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Updated: Aug 30, 2026

Purification of the Dendritic Filopodia-rich Fraction
Published on: May 2, 2019
Localization of a beta-actin messenger ribonucleoprotein complex with zipcode-binding protein modulates the density
Taesun Eom1, Laura N Antar, Robert H Singer
1Department of Neuroscience, Rose F. Kennedy Center for Mental Retardation, Albert Einstein College of Medicine, Bronx, New York 10461, USA.
Abstract:
The dendritic transport and local translation of mRNA may be an essential mechanism to regulate synaptic growth and plasticity. We investigated the molecular mechanism and function of beta-actin mRNA localization in dendrites of cultured hippocampal neurons. Previous studies have shown that beta-actin mRNA localization to the leading edge of fibroblasts or the growth cones of developing neurites involved a specific interaction between a zipcode sequence in the 3' untranslated region and the mRNA-binding protein zipcode-binding protein-1 (ZBP1). Here, we show that ZBP1 is required for the localization of beta-actin mRNA to dendrites. Knock-down of ZBP1 using morpholino antisense oligonucleotides reduced dendritic levels of ZBP1 and beta-actin mRNA and impaired growth of dendritic filopodia in response to BDNF treatment. Transfection of an enhanced green fluorescent protein (EGFP)-beta-actin construct, which contained the zipcode, increased the density of dendritic filopodia and filopodial synapses. Transfection of an EGFP construct, also with the zipcode, resulted in recruitment of endogenous ZBP1 and beta-actin mRNA into dendrites and similarly increased the density of dendritic filopodia. However, the beta-actin zipcode did not affect filopodial length or the density of mature spines. These results reveal a novel function for an mRNA localization element and its binding protein in the regulation of dendritic morphology and synaptic growth via dendritic filopodia.
Insights
Zipcode-binding protein-1 (ZBP1) is crucial for beta-actin mRNA transport into neuronal dendrites. This process regulates dendritic filopodia growth, impacting synaptic development and plasticity.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Dendritic mRNA transport and local translation are vital for synaptic plasticity.
- Beta-actin mRNA localization in neurons involves the zipcode sequence and zipcode-binding protein-1 (ZBP1).
Purpose of the Study:
- To investigate the molecular mechanism and function of beta-actin mRNA localization in cultured hippocampal neurons.
- To determine the role of ZBP1 in dendritic beta-actin mRNA transport and its effect on neuronal morphology.
Main Methods:
- Knock-down of ZBP1 using morpholino antisense oligonucleotides.
- Transfection of enhanced green fluorescent protein (EGFP)-beta-actin constructs with and without the zipcode sequence.
- Analysis of dendritic filopodia and synapse density.
Main Results:
- ZBP1 knock-down reduced dendritic beta-actin mRNA levels and impaired BDNF-induced dendritic filopodia growth.
- EGFP-beta-actin construct transfection increased dendritic filopodia and filopodial synapse density.
- The beta-actin zipcode element, when introduced via EGFP, recruited ZBP1 and beta-actin mRNA, enhancing filopodia density without affecting mature spine density.
Conclusions:
- ZBP1 is essential for beta-actin mRNA localization to dendrites.
- Beta-actin mRNA localization via the zipcode element regulates dendritic filopodia formation and synaptic growth.
- This mechanism highlights a novel role for mRNA localization in controlling dendritic morphology and synaptic development.
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