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Phosphorylation of synaptotagmin-1 controls a post-priming step in PKC-dependent presynaptic plasticity

  • Arthur P H de Jong
  • , Marieke Meijer
  • , Ingrid Saarloos
  • , Lennart Niels Cornelisse
  • , Ruud F G Toonen
  • , Jakob B Sørensen
  • , Matthijs Verhage
  • Department of Functional Genomics, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam, VU University and VU Medical Center, Amsterdam 1081HV, The Netherlands;
  • Department of Functional Genomics, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam, VU University and VU Medical Center, Amsterdam 1081HV, The Netherlands; Department of Clinical Genetics, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam, VU University and VU Medical Center, Amsterdam 1081HV, The Netherlands;
  • Department of Clinical Genetics, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam, VU University and VU Medical Center, Amsterdam 1081HV, The Netherlands;
  • Department of Neuroscience and Pharmacology, Faculty of Health Sciences, University of Copenhagen, Copenhagen DK-2200, Denmark; Lundbeck Foundation Center for Biomembranes in Nanomedicine, University of Copenhagen, Copenhagen DK-2200, Denmark.
  • Department of Functional Genomics, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam, VU University and VU Medical Center, Amsterdam 1081HV, The Netherlands; Department of Clinical Genetics, Center for Neurogenomics and Cognitive Research, Neuroscience Campus Amsterdam, VU University and VU Medical Center, Amsterdam 1081HV, The Netherlands; [email protected].

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Presynaptic activation of the diacylglycerol (DAG)/protein kinase C (PKC) pathway is a central event in short-term synaptic plasticity. Two substrates, Munc13-1 and Munc18-1, are essential for DAG-induced potentiation of vesicle priming, but the role of most presynaptic PKC substrates is not understood. Here, we show that a mutation in synaptotagmin-1 (Syt1(T112A)), which prevents its PKC-dependent phosphorylation, abolishes DAG-induced potentiation of synaptic transmission in hippocampal neurons. This mutant also reduces potentiation of spontaneous release, but only if alternative Ca(2+) sensors, Doc2A/B proteins, are absent. However, unlike mutations in Munc13-1 or Munc18-1 that prevent DAG-induced potentiation, the synaptotagmin-1 mutation does not affect paired-pulse facilitation. Furthermore, experiments to probe vesicle priming (recovery after train stimulation and dual application of hypertonic solutions) also reveal no abnormalities. Expression of synaptotagmin-2, which lacks a seven amino acid sequence that contains the phosphorylation site in synaptotagmin-1, or a synaptotagmin-1 variant with these seven residues removed (Syt1(Δ109-116)), supports normal DAG-induced potentiation. These data suggest that this seven residue sequence in synaptotagmin-1 situated in the linker between the transmembrane and C2A domains is inhibitory in the unphosphorylated state and becomes permissive of potentiation upon phosphorylation. We conclude that synaptotagmin-1 phosphorylation is an essential step in PKC-dependent potentiation of synaptic transmission, acting downstream of the two other essential DAG/PKC substrates, Munc13-1 and Munc18-1.

Original languageEnglish
Pages (from-to)5095-100
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume113
Issue number18
DOIs
Publication statusPublished - 2016
Externally publishedYes

Keywords

  • Action Potentials/physiology
  • Animals
  • Cells, Cultured
  • Mice
  • Mice, Inbred C57BL
  • Mice, Knockout
  • Munc18 Proteins/metabolism
  • Nerve Tissue Proteins/metabolism
  • Neuronal Plasticity/physiology
  • Neurons/physiology
  • Phosphorylation/physiology
  • Presynaptic Terminals/physiology
  • Protein Kinase C/metabolism
  • Synaptotagmin I/metabolism

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