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PMID: 19850129 Published · ppublish English

An activity-induced microRNA controls dendritic spine formation by regulating Rac1-PAK signaling.

Molecular and cellular neurosciences ·Vol. 43 ·No. 1 ·2010-04-22

Impey Soren, Davare Monika, Lesiak Adam, Lasiek Adam, Fortin Dale, Ando Hideaki, Varlamova Olga, Obrietan Karl, Soderling Thomas R, Goodman Richard H, Wayman Gary A

Abstract

Activity-regulated gene expression is believed to play a key role in the development and refinement of neuronal circuitry. Nevertheless, the transcriptional networks that regulate synaptic plasticity remain largely uncharacterized. We show here that the CREB- and activity-regulated microRNA, miR132, is induced during periods of active synaptogenesis. Moreover, miR132 is necessary and sufficient for hippocampal spine formation. Expression of the miR132 target, p250GAP, is inversely correlated with miR132 levels and spinogenesis. Furthermore, knockdown of p250GAP increases spine formation while introduction of a p250GAP mutant unresponsive to miR132 attenuates this activity. Inhibition of miR132 decreases both mEPSC frequency and the number of GluR1-positive spines, while knockdown of p250GAP has the opposite effect. Additionally, we show that the miR132/p250GAP circuit regulates Rac1 activity and spine formation by modulating synapse-specific Kalirin7-Rac1 signaling. These data suggest that neuronal activity regulates spine formation, in part, by increasing miR132 transcription, which in turn activates a Rac1-Pak actin remodeling pathway.

Article Info
Journal
Molecular and cellular neurosciences
Abbr.
Mol Cell Neurosci
Published
2010-04-22
Indexed
2010-02-03
Updated
2016-11-22
Language
English
Country/Region
United States
NLM ID
9100095
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