BDNF-induced increase of PSD-95 in dendritic spines requires dynamic microtubule invasions

Xindao Hu1, Lauren Ballo, Lauren Pietila

  • 1Neuroscience Training Program, University of Wisconsin, Madison, Wisconsin 53706, USA.

Insights

Microtubules (MTs) invade dendritic spines, a process regulated by brain-derived neurotrophic factor (BDNF). This invasion is crucial for increasing postsynaptic density-95 (PSD-95) protein levels in the synapse.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Molecular Biology

Background:

  • Microtubules (MTs) dynamically polymerize and enter dendritic spines in mature hippocampal neurons.
  • While MT invasion correlates with neuronal activity, its functional significance remains unclear.

Purpose of the Study:

  • To investigate the functional role of MT invasion into dendritic spines.
  • To determine if MT invasion regulates postsynaptic protein levels, specifically postsynaptic density-95 (PSD-95), following BDNF treatment.

Main Methods:

  • Utilized multiwavelength total internal reflectance fluorescence microscopy in mouse hippocampal neurons.
  • Investigated the effects of BDNF treatment and TrkB receptor activation on MT dynamics within spines.
  • Assessed PSD-95 protein levels in spines using microscopy and quantified changes in response to MT invasion and pharmacological interventions.

Main Results:

  • BDNF treatment prolonged MT dwell time in spines, dependent on TrkB receptor activation.
  • Peaks of MT polymerization into spines correlated with rapid increases in PSD-95.
  • Spines invaded by MTs after BDNF application showed a significant increase in PSD-95, unlike spines without MT invasion.
  • Inhibiting MT dynamics abolished BDNF-induced PSD-95 increases.

Conclusions:

  • MT invasion of dendritic spines is essential for the BDNF-induced increase in PSD-95.
  • This study establishes a direct functional link between dynamic MTs and postsynaptic structure regulation.
  • Provides a functional role for MT invasion in synaptic plasticity and postsynaptic remodeling.