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Updated: May 27, 2026

3D Modeling of Dendritic Spines with Synaptic Plasticity
Published on: May 18, 2020
Dynamic microtubules promote synaptic NMDA receptor-dependent spine enlargement
Elliott B Merriam1, Derek C Lumbard, Chris Viesselmann
1Neuroscience Training Program, University of Wisconsin School of Medicine and Public Health, Madison, Wisconsin, United States of America.
Abstract:
Most excitatory synaptic terminals in the brain impinge on dendritic spines. We and others have recently shown that dynamic microtubules (MTs) enter spines from the dendritic shaft. However, a direct role for MTs in long-lasting spine plasticity has yet to be demonstrated and it remains unclear whether MT-spine invasions are directly influenced by synaptic activity. Lasting changes in spine morphology and synaptic strength can be triggered by activation of synaptic NMDA receptors (NMDARs) and are associated with learning and memory processes. To determine whether MTs are involved in NMDAR-dependent spine plasticity, we imaged MT dynamics and spine morphology in live mouse hippocampal pyramidal neurons before and after acute activation of synaptic NMDARs. Synaptic NMDAR activation promoted MT-spine invasions and lasting increases in spine size, with invaded spines exhibiting significantly faster and more growth than non-invaded spines. Even individual MT invasions triggered rapid increases in spine size that persisted longer following NMDAR activation. Inhibition of either NMDARs or dynamic MTs blocked NMDAR-dependent spine growth. Together these results demonstrate for the first time that MT-spine invasions are positively regulated by signaling through synaptic NMDARs, and contribute to long-lasting structural changes in targeted spines.
Insights
Dynamic microtubules (MTs) invade dendritic spines and are regulated by NMDA receptors (NMDARs). This invasion promotes lasting spine growth, crucial for learning and memory processes.
Area of Science:
- Neuroscience
- Cell Biology
Background:
- Excitatory synaptic terminals in the brain primarily target dendritic spines.
- Dynamic microtubules (MTs) have been observed entering spines from the dendritic shaft.
- The role of MTs in long-lasting spine plasticity and their regulation by synaptic activity remain unclear.
Purpose of the Study:
- To investigate the involvement of MTs in NMDA receptor (NMDAR)-dependent spine plasticity.
- To determine if MT-spine invasions are influenced by synaptic activity.
Main Methods:
- Imaging MT dynamics and spine morphology in live mouse hippocampal pyramidal neurons.
- Acute activation of synaptic NMDARs.
- Inhibition of NMDARs or dynamic MTs.
Main Results:
- Synaptic NMDAR activation increased MT-spine invasions and spine size.
- MT-invaded spines showed faster and greater growth.
- Individual MT invasions led to rapid, persistent spine size increases.
- Inhibition of NMDARs or MTs abolished NMDAR-dependent spine growth.
Conclusions:
- MT-spine invasions are positively regulated by synaptic NMDAR signaling.
- MT-spine invasions contribute to long-lasting structural changes in dendritic spines.
- MTs play a critical role in NMDAR-dependent spine plasticity.
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