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Updated: May 25, 2025

Evaluation of Synapse Density in Hippocampal Rodent Brain Slices
Published on: October 6, 2017
DYRK1A Up-Regulation Specifically Impairs a Presynaptic Form of Long-Term Potentiation
Aude-Marie Lepagnol-Bestel1, Simon Haziza1,2, Julia Viard1
1Centre Psychiatrie & Neurosciences, INSERM U894, 75014 Paris, France.
Abstract:
Chromosome 21 DYRK1A kinase is associated with a variety of neuronal diseases including Down syndrome. However, the functional impact of this kinase at the synapse level remains unclear. We studied a mouse model that incorporated YAC 152F7 (570 kb), encoding six chromosome 21 genes including DYRK1A. The 152F7 mice displayed learning difficulties but their N-methyl-D-aspartate (NMDA)-dependent synaptic long-term potentiation is indistinguishable from non-transgenic animals. We have demonstrated that a presynaptic form of NMDA-independent long-term potentiation (LTP) at the hippocampal mossy fiber was impaired in the 152F7 animals. To obtain insights into the molecular mechanisms involved in such synaptic changes, we analyzed the Dyrk1a interactions with chromatin remodelers. We found that the number of DYRK1A-EP300 and DYRK1A-CREBPP increased in 152F7 mice. Moreover, we observed a transcriptional decrease in genes encoding presynaptic proteins involved in glutamate vesicle exocytosis, namely Rims1, Munc13-1, Syn2 and Rab3A.To refine our findings, we used a mouse BAC 189N3 (152 kb) line that only triplicates the gene Dyrk1a. Again, we found that this NMDA-independent form of LTP is impaired in this mouse line. Altogether, our results demonstrate that Dyrk1a up-regulation is sufficient to specifically inhibit the NMDA-independent form of LTP and suggest that this inhibition is linked to chromatin changes that deregulate genes encoding proteins involved in glutamate synaptic release.
Insights
Increased DYRK1A kinase due to chromosome 21 gene duplication impairs NMDA-independent long-term potentiation (LTP). This synaptic dysfunction is linked to chromatin changes affecting glutamate release in neurons.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- DYRK1A kinase on chromosome 21 is implicated in neuronal diseases like Down syndrome.
- The precise role of DYRK1A in synaptic function, particularly long-term potentiation (LTP), is not fully understood.
Purpose of the Study:
- To investigate the impact of DYRK1A up-regulation on synaptic plasticity.
- To elucidate the molecular mechanisms underlying DYRK1A-associated synaptic alterations.
Main Methods:
- Utilized YAC 152F7 and BAC 189N3 transgenic mouse models with altered DYRK1A gene dosage.
- Assessed N-methyl-D-aspartate (NMDA)-dependent and independent LTP at hippocampal mossy fiber synapses.
- Analyzed DYRK1A interactions with chromatin remodelers and gene expression of presynaptic proteins.
Main Results:
- Mice with DYRK1A up-regulation exhibited impaired NMDA-independent LTP but normal NMDA-dependent LTP.
- Increased DYRK1A-EP300 and DYRK1A-CREBPP interactions were observed.
- Transcriptional downregulation of key presynaptic proteins (Rims1, Munc13-1, Syn2, Rab3A) involved in glutamate exocytosis was identified.
Conclusions:
- DYRK1A up-regulation is sufficient to specifically inhibit NMDA-independent LTP.
- Synaptic impairment is associated with chromatin modifications affecting glutamate release machinery.
- Findings suggest DYRK1A as a potential therapeutic target for related neuronal disorders.
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