Skip to main navigation Skip to search Skip to main content

SAD: A Presynaptic Kinase Associated with Synaptic Vesicles and the Active Zone Cytomatrix that Regulates Neurotransmitter Release

  • Eiji Inoue
  • , Sumiko Mochida
  • , Hiroshi Takagi
  • , Susumu Higa
  • , Maki Deguchi-Tawarada
  • , Etsuko Takao-Rikitsu
  • , Marie Inoue
  • , Ikuko Yao
  • , Kosei Takeuchi
  • , Isao Kitajima
  • , Mitsutoshi Setou
  • , Toshihisa Ohtsuka
  • , Yoshimi Takai

Research output: Contribution to journalArticlepeer-review

Abstract

A serine/threonine kinase SAD-1 in C. elegans regulates synapse development. We report here the isolation and characterization of mammalian orthologs of SAD-1, named SAD-A and SAD-B, which are specifically expressed in the brain. SAD-B is associated with synaptic vesicles and, like the active zone proteins CAST and Bassoon, is tightly associated with the presynaptic cytomatrix in nerve terminals. A short conserved region (SCR) in the COOH-terminus is required for the synaptic localization of SAD-B. Overexpression of SAD-B in cultured rat hippocampal neurons significantly increases the frequency of miniature excitatory postsynaptic current but not its amplitude. Introduction of SCR into presynaptic superior cervical ganglion neurons in culture significantly inhibits evoked synaptic transmission. Moreover, SCR decreases the size of the readily releasable pool measured by applying hypertonic sucrose. Furthermore, SAD-B phosphorylates the active zone protein RIM1 but not Munc13-1. These results suggest that mammalian SAD kinase presynaptically regulates neurotransmitter release.

Original languageEnglish
Pages (from-to)261-275
Number of pages15
JournalNeuron
Volume50
Issue number2
DOIs
Publication statusPublished - 20-04-2006
Externally publishedYes

All Science Journal Classification (ASJC) codes

  • General Neuroscience

Fingerprint

Dive into the research topics of 'SAD: A Presynaptic Kinase Associated with Synaptic Vesicles and the Active Zone Cytomatrix that Regulates Neurotransmitter Release'. Together they form a unique fingerprint.

Cite this