Neuromuscular synapses can form in vivo by incorporation of initially aneural postsynaptic specializations

Author:

Flanagan-Steet Heather1,Fox Michael A.2,Meyer Dirk3,Sanes Joshua R.12

Affiliation:

1. Department of Anatomy and Neurobiology, Washington University Medical School,St. Louis, MO 63110, USA

2. Department of Molecular and Cellular Biology, Harvard University, Cambridge,MA 02138, USA

3. Biology I, University of Freiburg, 79104 Freiburg, Germany

Abstract

Synapse formation requires the coordination of pre- and postsynaptic differentiation. An unresolved question is which steps in the process require interactions between pre- and postsynaptic cells, and which proceed cell-autonomously. One current model is that factors released from presynaptic axons organize postsynaptic differentiation directly beneath the nerve terminal. Here, we used neuromuscular junctions (NMJs) of the zebrafish primary motor system to test this model. Clusters of neurotransmitter(acetylcholine) receptors (AChRs) formed in the central region of the myotome,destined to be synapse-rich, before axons extended and even when axon extension was prevented. Time-lapse imaging revealed that pre-existing clusters on early-born slow (adaxial) muscle fibers were incorporated into NMJs as axons advanced. Axons were, however, required for the subsequent remodeling and selective stabilization of synaptic clusters that precisely appose post- to presynaptic elements. Thus, motor axons are dispensable for the initial stages of postsynaptic differentiation but are required for later stages. Moreover, many AChR clusters on later-born fast muscle fibers formed at sites that had already been contacted by axons, suggesting heterogeneity in the signaling mechanisms leading to synapse formation by a single axon.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

Reference52 articles.

1. Akimenko, M. A., Johnson, S. L., Westerfield, M. and Ekker,M. (1995). Differential induction of four msx homeobox genes during fin development and regeneration in zebrafish. Development121,347-357.

2. Anderson M. J. and Cohen M. W. (1978). Nerve-induced and spontaneous redistribution of acetyl choline receptors on cultured muscle cells. J. Physiol.268,757-773.

3. Barresi, M. J., Stickney, H. L. and Devoto, S. H.(2000). The zebrafish slow-muscle-omitted gene product is required for Hedgehog signal transduction and the development of slow muscle identity. Development127,2189-2199.

4. Beattie, C. E. (2000). Control of motor axon guidance in the zebrafish embryo. Brain Res. Bull.53,489-500.

5. Bevan S. and Steinbach, J. H. (1977). The distribution of alpha-bungarotoxin binding sites of mammalian skeletal muscle developing in vivo. J. Physiol.267,195-213.

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