ArticleMolecular neurobiology2025
MicroRNA-502-3p Modulates the GABA A Subunits, Synaptic Proteins, and Mitochondrial Morphology in Hippocampal Neurons.
Article in Molecular neurobiology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 2 papers.
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
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Who cites it
2 citing papers in PubMed.
- Prognostic Value of Elevated miR-502-3p in Patients With Post-Stroke Cognitive Impairment.Brain and behavior · 2026Article
- Inhibition of miR-4284 could reduce apoptosis and neuroinflammation by targeting APBA1/JAK1/STAT3 signaling in Alzheimer's disease.Cell & bioscience · 2025Article
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5 authors.
Funding
Abstract
MicroRNA-502-3p (MiR-502-3p), a synapse-enriched miRNA, is significantly implicated in Alzheimer's disease (AD). Our previous study revealed a high expression level of miR-502-3p in AD synapses relative to controls. Additionally, miR-502-3p was found to modulate the GABAergic synapse function by modulating the GABA A receptor subunit α-1 (GABRA1) protein. The current study aims to investigate the impact of miR-502-3p on other GABA receptor subunit proteins, synaptic proteins, mitochondrial morphology, and other hippocampal neuron genes. Mouse hippocampal neuronal (HT22) cells were transfected with miR-502-3p overexpression (OE) vector, miR-502-3p suppression (sponge) vector, or scramble control vector. Transfection of miR-502-3p vectors was confirmed by fluorescence microscopy. MiR-502-3p and Gabra1 expressions were confirmed by qRT-PCR and RNAscope-based in situ hybridization analysis. GABA A subunits and synaptic protein levels were analyzed by immunoblotting, and mitochondrial morphology was examined by transmission electron microscopy. Additionally, Affymetrix gene array analysis was performed on miR-502-3p overexpressed and suppressed cells. Our results demonstrate that elevated levels of miR-502-3p negatively regulate the Gabra1 expression. The levels of GABA A subunit and synaptic proteins were reduced upon ectopic expression of miR-502-3p and increased upon miR-502-3p suppression. Mitochondrial morphology was improved in terms of mitochondrial number, length, and mitochondrial area in miR-502-3p suppressed cells. Furthermore, gene array analysis unveiled the modulatory effects of miR-502-3p on several specific genes, especially those that are associated with oxidative stress, immune response, and synaptic function. These findings provide a new insight into the molecular mechanism of miR-502-3p in regulating neuronal function and synaptic activity.
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