DNA methylation changes in plasticity genes accompany the formation and maintenance of memory

2016 | journal article

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​DNA methylation changes in plasticity genes accompany the formation and maintenance of memory​
Halder, R. ; Hennion, M. ; Vidal, R. O. ; Shomroni, O. ; Rahman, R.-U. ; Rajput, A.   & Centeno, T. P.  et al.​ (2016) 
Nature Neuroscience19(1) pp. 102​-110​.​ DOI: https://doi.org/10.1038/nn.4194 

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Authors
Halder, Rashi ; Hennion, Magali ; Vidal, Ramon O. ; Shomroni, Orr ; Rahman, Raza-Ur ; Rajput, Ashish ; Centeno, Tonatiuh Pena ; van Bebber, Frauke; Capece, Vincenzo ; Garcia Vizcaino, Julio C. ; Schuetz, Anna-Lena ; Burkhardt, Susanne ; Benito, Eva ; Navarro Sala, Magdalena ; Bahari Javan, Sanaz ; Haass, Christian; Schmid, Bettina; Fischer, André ; Bonn, Stefan 
Abstract
The ability to form memories is a prerequisite for an organism's behavioral adaptation to environmental changes. At the molecular level, the acquisition and maintenance of memory requires changes in chromatin modifications. In an effort to unravel the epigenetic network underlying both short- and long-term memory, we examined chromatin modification changes in two distinct mouse brain regions, two cell types and three time points before and after contextual learning. We found that histone modifications predominantly changed during memory acquisition and correlated surprisingly little with changes in gene expression. Although long-lasting changes were almost exclusive to neurons, learning-related histone modification and DNA methylation changes also occurred in non-neuronal cell types, suggesting a functional role for non-neuronal cells in epigenetic learning. Finally, our data provide evidence for a molecular framework of memory acquisition and maintenance, wherein DNA methylation could alter the expression and splicing of genes involved in functional plasticity and synaptic wiring.
Issue Date
2016
Journal
Nature Neuroscience 
eISSN
1546-1726
Language
English

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