MicroRNAs are key regulators of brain gene expression, with miR-29 family notably upregulated from development to adulthood and in aging, and showing links to cognitive decline. However, the extent to which miR-29 levels influence learning and memory processes, and its molecular mediators, remains to be determined. Here, we down- and up-regulated miR-29 levels in the dorsal hippocampus of adult mice to reveal miR-29 role in memory. Inhibition of miR-29 enhanced trace fear memory stability, increased Dnmt3a levels, and promoted DNA methylation in a DNMT3a-dependent manner. In contrast, increasing miR-29 impaired memory performances and decreased Dnmt3a levels, suggesting a destabilization of memory processes. Proteomic and transcriptomic analysis demonstrated that miR-29 antagonism upregulated RNA-binding and synaptic proteins and downregulated inflammation and myelin associated proteins. These results underscore miR-29’s pivotal role in memory persistence, plasticity, and cognitive aging, suggesting that miR-29 modulation could offer potential strategies for cognitive enhancement and age-related memory decline.

MicroRNA-29 acutely regulates Memory Stability, Expression of Synaptic Genes, and DNA Methylation in the Mouse Adult Hippocampus

Viglione, Aurelia;Giannuzzi, Chiara;Putignano, Elena;Bagnoli, Sara;Tognini, Paola;Cellerino, Alessandro;Pizzorusso, Tommaso
2026

Abstract

MicroRNAs are key regulators of brain gene expression, with miR-29 family notably upregulated from development to adulthood and in aging, and showing links to cognitive decline. However, the extent to which miR-29 levels influence learning and memory processes, and its molecular mediators, remains to be determined. Here, we down- and up-regulated miR-29 levels in the dorsal hippocampus of adult mice to reveal miR-29 role in memory. Inhibition of miR-29 enhanced trace fear memory stability, increased Dnmt3a levels, and promoted DNA methylation in a DNMT3a-dependent manner. In contrast, increasing miR-29 impaired memory performances and decreased Dnmt3a levels, suggesting a destabilization of memory processes. Proteomic and transcriptomic analysis demonstrated that miR-29 antagonism upregulated RNA-binding and synaptic proteins and downregulated inflammation and myelin associated proteins. These results underscore miR-29’s pivotal role in memory persistence, plasticity, and cognitive aging, suggesting that miR-29 modulation could offer potential strategies for cognitive enhancement and age-related memory decline.
2026
Settore BIO/09 - Fisiologia
Settore BIOS-06/A - Fisiologia
Aging; Cognitive decline; Epigenetics; Fear conditioning; Hippocampus; MicroRNA; Neural plasticity; Non-coding RNA;
   Bridging neuroscience with neurotechnologies: an international advance education program
   NEUROBRIDGE
   MIUR MINISTERO DELL'ISTRUZIONE DELL'UNIVERSITA' E DELLA RICERCA
   TNE23-00034

   Neural Mechanisms Underlying Memory Improvement By Spaced Training As A Tool To Make Durable Memories In Normal And Cognitively Impaired Conditions
   NEMO
   Ministero della pubblica istruzione, dell'università e della ricerca
   20228RMXBE
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11384/166223
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