| Literature DB >> 17182610 |
Taslimarif Saiyed1, Ingo Paarmann, Bertram Schmitt, Svenja Haeger, Maria Sola, Günther Schmalzing, Winfried Weissenhorn, Heinrich Betz.
Abstract
Gephyrin is a bifunctional modular protein that, in neurons, clusters glycine receptors and gamma-aminobutyric acid, type A receptors in the postsynaptic membrane of inhibitory synapses. By x-ray crystallography and cross-linking, the N-terminal G-domain of gephyrin has been shown to form trimers and the C-terminal E-domain dimers, respectively. Gephyrin therefore has been proposed to form a hexagonal submembranous lattice onto which inhibitory receptors are anchored. Here, crystal structure-based substitutions at oligomerization interfaces revealed that both G-domain trimerization and E-domain dimerization are essential for the formation of higher order gephyrin oligomers and postsynaptic gephyrin clusters. Insertion of the alternatively spliced C5' cassette into the G-domain inhibited clustering by interfering with trimerization, and mutation of the glycine receptor beta-subunit binding region prevented the localization of the clusters at synaptic sites. Together our findings show that domain interactions mediate gephyrin scaffold formation.Entities:
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Year: 2006 PMID: 17182610 DOI: 10.1074/jbc.M610290200
Source DB: PubMed Journal: J Biol Chem ISSN: 0021-9258 Impact factor: 5.157