4.6 Article

Munc13-2 Differentially Affects Hippocampal Synaptic Transmission and Plasticity

Journal

CEREBRAL CORTEX
Volume 20, Issue 5, Pages 1109-1120

Publisher

OXFORD UNIV PRESS INC
DOI: 10.1093/cercor/bhp170

Keywords

hippocampus; mossy fiber; presynaptic; release probability; synaptic plasticity; synaptic transmission

Categories

Funding

  1. Deutsche Forschungsgemeinschaft [SFB 618, SFB 665, GRK 1123, Exc 257]
  2. Bundesministerium fur Bildung und Forschung
  3. DFG-Research Center for Molecular Physiology of the Brain
  4. Cure Autism Now Foundation

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The short-term dynamics of synaptic communication between neurons provides neural networks with specific frequency-filter characteristics for information transfer. The direction of short-term synaptic plasticity, that is, facilitation versus depression, is highly dependent on and inversely correlated to the basal release probability of a synapse. Amongst the processes implicated in shaping the release probability, proteins that regulate the docking and priming of synaptic vesicles at the active zone are of special importance. Here, we found that a member of the Munc13 protein family of priming proteins, namely Munc13-2, is essential for normal release probability at hippocampal mossy fiber synapses. Paired pulse and frequency facilitation were strongly increased, whereas mossy fiber long-term potentiation was unaffected in the absence of Munc13-2. In contrast, transmission at 3 other types of hippocampal synapses, Schaffer-collateral, associational-commissural, as well as inhibitory synapses onto CA3 pyramidal neurons was unaffected by the loss of Munc13-2.

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