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Published on: July 20, 2022
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.
Abstract:
MicroRNA (miR)-34a was recently determined to contribute to the pathological development of Alzheimer's disease (AD). miR-34a deficiency significantly attenuates cognitive deficits in amyloid precursor protein (APP)/presenilin 1 (PS1) mice; however, its role in early AD pathology and the underlying mechanisms remain elusive. Here, we confirmed that the increase of miR-34a expression in APP/PS1 mice was earlier than the relevant AD pathological characteristics, such as amyloid-β production, amyloid plaque deposition, and cognitive deficits. Furthermore, because predicted miR-34a target genes were broadly linked to α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) and N-methyl-d-aspartate (NMDA) receptors, we evaluated synaptic plasticity by investigating high-frequency conditioning tetanus-induced excitatory postsynaptic potential, which revealed that synaptic plasticity was promoted in miR-34a knockout/APP/PS1 mice. Therefore, we assessed the expression of the presynaptic components synaptophysin and postsynaptic density protein 95 (PSD95) and found that synaptophysin and PSD95 were not altered by miR-34a deficiency. Additionally, the synaptic strength (vesicular fusion, vesicular docking, and transporting) was either not significantly changed. We also evaluated the levels of AMPA and NMDA receptors, which showed that the expression of AMPA and NMDA receptors was markedly upregulated in APP/PS1 mice with miR-34a deficiency. We conclude that miR-34a is involved in synaptic deficits in AD pathological development, which was, at least in part, due to the inhibition of NMDA (by miR-34a-5p) and AMPA (by miR-34a-3p) receptor expression.
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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