The Ig cell adhesion molecule Basigin controls compartmentalization and vesicle release at Drosophila melanogaster synapses

Author:

Besse Florence1,Mertel Sara23,Kittel Robert J.23,Wichmann Carolin23,Rasse Tobias M.24,Sigrist Stephan J.23,Ephrussi Anne1

Affiliation:

1. Developmental Biology Unit, European Molecular Biology Laboratory, D-69117 Heidelberg, Germany

2. European Neuroscience Institute Göttingen, D-37077 Göttingen, Germany

3. Institut für Klinische Neurobiologie und Rudolf-Virchow-Zentrum, Universität Würzburg, D-97078 Würzburg, Germany

4. Hertie-Institute for Clinical Brain Research, University of Tübingen, D-72076 Tübingen, Germany

Abstract

Synapses can undergo rapid changes in size as well as in their vesicle release function during both plasticity processes and development. This fundamental property of neuronal cells requires the coordinated rearrangement of synaptic membranes and their associated cytoskeleton, yet remarkably little is known of how this coupling is achieved. In a GFP exon-trap screen, we identified Drosophila melanogaster Basigin (Bsg) as an immunoglobulin domain-containing transmembrane protein accumulating at periactive zones of neuromuscular junctions. Bsg is required pre- and postsynaptically to restrict synaptic bouton size, its juxtamembrane cytoplasmic residues being important for that function. Bsg controls different aspects of synaptic structure, including distribution of synaptic vesicles and organization of the presynaptic cortical actin cytoskeleton. Strikingly, bsg function is also required specifically within the presynaptic terminal to inhibit nonsynchronized evoked vesicle release. We thus propose that Bsg is part of a transsynaptic complex regulating synaptic compartmentalization and strength, and coordinating plasma membrane and cortical organization.

Publisher

Rockefeller University Press

Subject

Cell Biology

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