Long term potentiation affects intracellular metalloproteinases activity in the mossy fiber-CA3 pathway

Grzegorz Wiera1, Tomasz Wójtowicz, Katarzyna Lebida

  • 1Laboratory of Neuroscience, Department of Biophysics, Wroclaw Medical University, Chalubinskiego 3, 50-368, Wroclaw, Poland. gwiera@biol.uni.wroc.pl

Insights

Matrix Metalloproteinases (MMPs) regulate synaptic plasticity. LTP induction in the mossy fiber-CA3 pathway correlates with increased MMP-9 expression and activity, particularly in neuronal cytoplasm and nucleus.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Biochemistry

Background:

  • Matrix Metalloproteinases (MMPs) are crucial for extracellular protein processing.
  • MMPs are known regulators of synaptic plasticity and learning in the hippocampus.
  • The mossy fiber-CA3 (mf-CA3) projection exhibits NMDAR-independent LTP, with distinct MMP roles.

Purpose of the Study:

  • To investigate the correlation between LTP induction and gelatinase expression/activity in mf-CA3 projections.
  • To explore MMP activity in both intracellular and extracellular compartments of the mf-CA3 pathway.
  • To determine the specific MMPs involved in mf-CA3 pathway plasticity.

Main Methods:

  • In situ zymography to assess gelatinase activity.
  • Gelatin zymography, immunohistochemistry, and immunofluorescent staining to identify MMPs.
  • Analysis of MMP expression and localization after LTP induction in mf-CA3 projections.

Main Results:

  • LTP induction significantly increased gelatinase activity in the cytoplasm of hilar and CA3 neurons.
  • MMP-9 de novo synthesis and activation were observed 2-3 hours post-LTP induction, primarily in the cytoplasm.
  • MMP-2 was localized in neuronal nuclei and unaffected by LTP induction.

Conclusions:

  • LTP induction in the mf-CA3 pathway is associated with enhanced MMP-9 expression and activity.
  • This study provides the first evidence of increased MMP-9 activity within neuronal cytoplasm and nucleus during mf-CA3 LTP.
  • Findings suggest a novel intracellular role for MMP-9 in regulating synaptic plasticity in this specific hippocampal pathway.

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