miR-34a deficiency in APP/PS1 mice promotes cognitive function by increasing synaptic plasticity via AMPA and NMDA

Yuelong Xu1, Ping Chen2, Xianjun Wang3

  • 1Department of Neurology, Linyi Central Hospital, No. 17 Jiankang Road, Linyi, Shandong, 276400, PR China.

Neuroscience Letters
|January 30, 2018
PubMed

Insights

MicroRNA-34a increases early in Alzheimer's disease models, preceding pathology. Its deficiency improves synaptic function by upregulating AMPA and NMDA receptors, suggesting a role in early AD synaptic deficits.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Genetics

Background:

  • MicroRNA (miR)-34a is implicated in Alzheimer's disease (AD) pathology.
  • Its precise role in early AD and underlying mechanisms require further elucidation.

Purpose of the Study:

  • Investigate the role of miR-34a in early AD pathogenesis.
  • Elucidate the mechanisms by which miR-34a influences synaptic function in AD models.

Main Methods:

  • Utilized amyloid precursor protein (APP)/presenilin 1 (PS1) mice to model AD.
  • Assessed miR-34a expression, amyloid pathology, and cognitive function.
  • Evaluated synaptic plasticity using electrophysiology (high-frequency conditioning tetanus-induced excitatory postsynaptic potential).
  • Measured levels of synaptic proteins (synaptophysin, PSD95) and neurotransmitter receptors (AMPA, NMDA).

Main Results:

  • miR-34a expression increased in APP/PS1 mice before overt AD pathology.
  • miR-34a deficiency promoted synaptic plasticity in APP/PS1 mice.
  • AMPA and NMDA receptor expression was significantly upregulated in miR-34a deficient APP/PS1 mice.
  • Synaptic strength and key presynaptic/postsynaptic components remained largely unchanged.

Conclusions:

  • miR-34a contributes to synaptic deficits in early AD development.
  • This occurs, at least partly, through miR-34a-5p inhibiting NMDA receptors and miR-34a-3p inhibiting AMPA receptors.
  • Targeting miR-34a may offer a therapeutic strategy for early AD synaptic dysfunction.

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