Abstract
Activity-induced protein synthesis is critical for long-lasting synaptic plasticity and subject to tight controls. MicroRNAs (miRNAs) are negative regulators of mRNA translation, but their role during synaptic plasticity is not clear. In this study, we have investigated how induction of long-term potentiation (LTP) and long-term depression (LTD) regulates the expression of miRNAs. Using miRNA arrays, we determined the temporal expression profiles of 62 hippocampal miRNAs following induction of chemical LTP (C-LTP) and metabotropic glutamate receptor-dependent LTD (mGluR-LTD). Several striking features were observed. First, C-LTP or mGluR-LTD induction changed the expression levels of most hippocampal miRNAs. Second, the majority of miRNAs regulated by C-LTP or mGluR-LTD induction followed a similar temporal expression profile. Third, most miRNAs were regulated by both C-LTP and mGluR-LTD induction, but displayed distinct expression dynamics. Fourth, many miRNAs were upregulated at specific time points C-LTP and mGluR-LTD induction, suggesting that C-LTP and mGluR-LTD induction elicits miRNA-mediated suppression of mRNA translation. We propose that the upregulated miRNA expression provides a mechanism to prevent excess protein synthesis during the expression of synaptic plasticity. The extensive regulation of miRNA expression by C-LTP and mGluR-LTD induction suggests a critical role of miRNAs in synaptic plasticity.
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Acknowledgement
We thank Ruomu Gong for designing the RT-PCR primers. S. J. T. was supported by the American Heart Association and the Department of Defense.
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Supplemental Table 1
miRNA above threshold in hippocampus (XLS 16 kb)
Supplemental Table 2
miRNA regulated by C-LTP (XLS 35 kb)
Supplemental Table 3
miRNA regulated by mGluR-LTD (XLS 35 kb)
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Park, C.S., Tang, SJ. Regulation of microRNA Expression by Induction of Bidirectional Synaptic Plasticity. J Mol Neurosci 38, 50–56 (2009). https://doi.org/10.1007/s12031-008-9158-3
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DOI: https://doi.org/10.1007/s12031-008-9158-3