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Acetylcholine receptors become clustered at the neuromuscular junction during synaptogenesis, at least in part via lateral migration of diffusely expressed receptors. We have shown previously that electric fields initiate a specific receptor clustering event which is dependent on lateral migration in aneural muscle cell cultures (Stollberg, J., and S. E. Fraser. 1988. J. Cell Biol. 107:1397-1408). Subsequent work with this model system ruled out the possibility that the clustering event was triggered by increasing the receptor density beyond a critical threshold (Stollberg, J., and S. E. Fraser. 1990. J. Neurosci. 10:247-255). This leaves two possibilities: the clustering event could be triggered by the field-induced change in the density of some other molecule, or by a membrane voltage-sensitive mechanism (e.g., a voltage-gated calcium signal). Electromigration is a slow, linear process, while voltage-sensitive mechanisms respond in a rapid, nonlinear fashion. Because of this the two possibilities make different predictions about receptor clustering behavior in response to pulsed or alternating electric fields. In the present work we have studied subcellular calcium distributions, as well as receptor clustering, in response to such fields. Subcellular calcium distributions were quantified and found to be consistent with the predicted nonlinear response. Receptor clustering, however, behaves in accordance with the predictions of a linear response, consistent with the electromigration hypothesis. The experiments demonstrate that a local increase in calcium, or, more generally, a voltage-sensitive mechanism, is not sufficient and probably not necessary to trigger receptor clustering. Experiments with slowly alternating electric fields confirm the view that the clustering of acetylcholine receptors is initiated by a local change in the density of some non-receptor molecule.
Almers,
The Ca signal from fura-2 loaded mast cells depends strongly on the method of dye-loading.
1985, Pubmed
Almers,
The Ca signal from fura-2 loaded mast cells depends strongly on the method of dye-loading.
1985,
Pubmed
Anderson,
Nerve-induced and spontaneous redistribution of acetylcholine receptors on cultured muscle cells.
1977,
Pubmed
,
Xenbase
Bloch,
Molecular events in synaptogenesis: nerve-muscle adhesion and postsynaptic differentiation.
1988,
Pubmed
Brackenbury,
Distinct calcium-independent and calcium-dependent adhesion systems of chicken embryo cells.
1981,
Pubmed
Davey,
Localization of acetylcholine receptors and cholinesterase on nerve-contacted and noncontacted muscle cells grown in the presence of agents that block action potentials.
1986,
Pubmed
,
Xenbase
Frank,
Early events in neuromuscular junction formation in vitro: induction of acetylcholine receptor clusters in the postsynaptic membrane and morphology of newly formed synapses.
1979,
Pubmed
Fraser,
Development, maintenance, and modulation of patterned membrane topography: models based on the acetylcholine receptor.
1982,
Pubmed
,
Xenbase
Godfrey,
Components of Torpedo electric organ and muscle that cause aggregation of acetylcholine receptors on cultured muscle cells.
1984,
Pubmed
Grunwald,
Enzymatic dissection of embryonic cell adhesive mechanisms.
1980,
Pubmed
Grynkiewicz,
A new generation of Ca2+ indicators with greatly improved fluorescence properties.
1985,
Pubmed
Henderson,
The absence of calcium blocks impulse-evoked release of acetylcholine but not de novo formation of functional neuromuscular synaptic contacts in culture.
1984,
Pubmed
,
Xenbase
Huang,
Mobility and diffusion in the plane of cell membrane.
1973,
Pubmed
Jaffe,
Electrophoresis along cell membranes.
1977,
Pubmed
Jaffe,
Electrical controls of development.
1977,
Pubmed
Kuromi,
Nerve disperses preexisting acetylcholine receptor clusters prior to induction of receptor accumulation in Xenopus muscle cultures.
1984,
Pubmed
,
Xenbase
Lin-Liu,
Migration of cell surface concanavalin A receptors in pulsed electric fields.
1984,
Pubmed
,
Xenbase
McLaughlin,
The role of electro-osmosis in the electric-field-induced movement of charged macromolecules on the surfaces of cells.
1981,
Pubmed
,
Xenbase
Peng,
Participation of calcium and calmodulin in the formation of acetylcholine receptor clusters.
1984,
Pubmed
,
Xenbase
Peng,
Formation of ACh receptor clusters induced by positively charged latex beads.
1981,
Pubmed
,
Xenbase
Poo,
Diffusional and electrokinetic redistribution at the synapse: a physicochemical basis of synaptic competition.
1990,
Pubmed
Poo,
In situ electrophoresis of membrane components.
1981,
Pubmed
,
Xenbase
Ravdin,
Fluorescent tetramethyl rhodamine derivatives of alpha-bungarotoxin: preparation, separation, and characterization.
1977,
Pubmed
Rochlin,
Localization of intracellular proteins at acetylcholine receptor clusters induced by electric fields in Xenopus muscle cells.
1989,
Pubmed
,
Xenbase
Role,
On the mechanism of acetylcholine receptor accumulation at newly formed synapses on chick myotubes.
1985,
Pubmed
Schuetze,
Developmental regulation of nicotinic acetylcholine receptors.
1987,
Pubmed
Stollberg,
Acetylcholine receptors and concanavalin A-binding sites on cultured Xenopus muscle cells: electrophoresis, diffusion, and aggregation.
1988,
Pubmed
,
Xenbase
Stollberg,
Local accumulation of acetylcholine receptors is neither necessary nor sufficient to induce cluster formation.
1990,
Pubmed
,
Xenbase
Takeichi,
Functional correlation between cell adhesive properties and some cell surface proteins.
1977,
Pubmed
Usdin,
Purification and characterization of a polypeptide from chick brain that promotes the accumulation of acetylcholine receptors in chick myotubes.
1986,
Pubmed
Wallace,
Regulation of agrin-induced acetylcholine receptor aggregation by Ca++ and phorbol ester.
1988,
Pubmed
Zhu,
Increase in intracellular calcium induced by the polycation-coated latex bead, a stimulus that causes postsynaptic-type differentiation in cultured Xenopus muscle cells.
1988,
Pubmed
,
Xenbase
Ziskind-Conhaim,
Redistribution of acetylcholine receptors on developing rat myotubes.
1984,
Pubmed