Synapses are highly specialized intercellular contacts. Specific proteins of the plasma membrane, subjacent cytoplasm, and extracellular space are confined to the region of contact. How these proteins contribute to the synaptic architecture is not yet precisely determined, nor is it understood how this complex structure is assembled beginning with an undifferentiated contact between pre- and postsynaptic cells, These questions are addresses with a model system for the postsynaptic membrane, the clusters of acetylcholine receptors (AChR) that form on the ventral membranes of rat myotubes in tissue culture. Clusters are identified by binding of fluorescent toxin to AChR and isolated by mechanical shearing. The cytoplasmic membrane surface and its adherent membrane skeleton are revealed by quick-freeze, deep-etch and platinum replication (QFDERR), and protein component are localized by immunogold labeling. The proposed research concentrates on AChR-rich domains of clusters, whose membrane skeleton is composed primarily of an isoform of beta-spectrin organized into a network of intersecting filaments similar to that found in the membrane skeleton of erythrocytes.
In specific aim 1, immunogold labeling will be used to determine the positions of AChR and its related proteins relative to intersections in the membrane skeletal network and to suggest how the network is linked to the integral membrane AChR.
In specific aim 2, QFDERR and immunogold labeling will be used to study AChR- associated proteins, and mutated variants of these proteins, expressed in non- muscle cells. These experiments should further elucidate the role of these proteins, and particular portions of their sequence, in aggregation of AChR and formation/attachment of a membrane skeleton. They also open the way to further molecular biological studies of the architecture, formation, and maintenance of spectrin-based membrane skeletons in other less-accessible tissues.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS015513-17
Application #
2685640
Study Section
Neurology B Subcommittee 2 (NEUB)
Program Officer
Nichols, Paul L
Project Start
1979-07-01
Project End
1999-03-31
Budget Start
1998-04-01
Budget End
1999-03-31
Support Year
17
Fiscal Year
1998
Total Cost
Indirect Cost
Name
University of Maryland Baltimore
Department
Anatomy/Cell Biology
Type
Schools of Dentistry
DUNS #
003255213
City
Baltimore
State
MD
Country
United States
Zip Code
21201
Pumplin, D W; Getschman, E (2000) Synaptic proteins in rat taste bud cells: appearance in the Golgi apparatus and relationship to alpha-gustducin and the Lewis(b) and A antigens. J Comp Neurol 427:171-84
Pumplin, D W; Getschman, E; Boughter Jr, J D et al. (1999) Differential expression of carbohydrate blood-group antigens on rat taste-bud cells: relation to the functional marker alpha-gustducin. J Comp Neurol 415:230-9
De Deyne, P G; O'Neill, A; Resneck, W G et al. (1998) The vitronectin receptor associates with clathrin-coated membrane domains via the cytoplasmic domain of its beta5 subunit. J Cell Sci 111 ( Pt 18):2729-40
Bloch, R J; Bezakova, G; Ursitti, J A et al. (1997) A membrane skeleton that clusters nicotinic acetylcholine receptors in muscle. Soc Gen Physiol Ser 52:177-95
Luther, P W; Samuelsson, S J; Bloch, R J et al. (1996) Cytoskeleton-membrane interactions at the postsynaptic density of Xenopus neuromuscular junctions. J Neurocytol 25:417-27
Pumplin, D W (1995) The membrane skeleton of acetylcholine receptor domains in rat myotubes contains antiparallel homodimers of beta-spectrin in filaments quantitatively resembling those of erythrocytes. J Cell Sci 108 ( Pt 9):3145-54
Bloch, R J; Sealock, R; Pumplin, D W et al. (1994) Association of acetylcholine receptors with peripheral membrane proteins: evidence from antibody-induced coaggregation. J Membr Biol 138:13-28
Luther, P W; Samuelsson, S J; Pumplin, D W et al. (1994) Clustered acetylcholine receptors have two levels of organization in Xenopus muscle cells. Cell Motil Cytoskeleton 28:179-93
Samuelsson, S J; Luther, P W; Pumplin, D W et al. (1993) Structures linking microfilament bundles to the membrane at focal contacts. J Cell Biol 122:485-96
Dmytrenko, G M; Pumplin, D W; Bloch, R J (1993) Dystrophin in a membrane skeletal network: localization and comparison to other proteins. J Neurosci 13:547-58

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