Filopodial protrusions induced by glycoprotein M6a exhibit high motility and aids synapse formation

Marcela A Brocco1, María Eugenia Fernández, Alberto C C Frasch

  • 1Instituto de Investigaciones Biotecnológicas-Instituto Tecnológico de Chascomús-Consejo Nacional de Investigaciones Científicas y Técnicas, Universidad Nacional de General San Martín, Buenos Aires, Argentina. mbrocco@iib.unsam.edu.ar

Insights

The M6a glycoprotein promotes the formation and motility of filopodial protrusions in neurons, suggesting it is crucial for spine development and synaptogenesis during neural development.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Molecular Biology

Background:

  • M6a is a neuronal membrane glycoprotein.
  • M6a expression decreases during chronic stress.
  • M6a overexpression in neurons forms filopodial protrusions, potential spine precursors.

Purpose of the Study:

  • Investigate the role of M6a in neuronal development.
  • Analyze the motility of M6a-induced filopodial protrusions.
  • Determine the influence of M6a phosphorylation and presynaptic contact on protrusion behavior.

Main Methods:

  • Primary hippocampal neuron culture from rats.
  • Overexpression of wild-type and mutant M6a.
  • Time-lapse imaging to analyze filopodia motility.
  • Analysis of protrusion interaction with synaptophysin-labeled neurites.

Main Results:

  • M6a overexpression increased the abundance and speed of filopodial protrusions.
  • Mutation of intracellular phosphorylation sites reduced filopodia motility.
  • M6a-induced protrusions showed reduced motility upon contact with presynaptic regions (synaptophysin-labeled cells).

Conclusions:

  • M6a phosphorylation state regulates filopodia motility.
  • M6a-induced protrusions may act as precursors that migrate to presynaptic sites for spine formation.
  • M6a is a key molecule in developmental spine formation.

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