Organization of acetylcholine receptors in quick-frozen, deep-etched, and rotary-replicated Torpedo postsynaptic membrane.
Open Access
- 1 July 1979
- journal article
- research article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 82 (1) , 150-173
- https://doi.org/10.1083/jcb.82.1.150
Abstract
The receptor-rich postsynaptic membrane of the elasmobranch electric organ was fixed by quick-freezing and then viewed by freeze-fracture, deep-etching and rotary-replication. Traditional freeze-fracture revealed a distinct, geometrical pattern of shallow 8.5-nm bumps on the E fracture-face, similar to the lattice which has been seen before in chemically fixed material, but seen less clearly than after quick-freezing. Fracture plus deep-etching brought into view on the true outside of this membrane a similar geometrical pattern of 8.5-nm projections rising out of the membrane surface. The individual projections looked like structures that have been seen in negatively stained or deep-etched membrane fragments and have been identified as individual acetylcholine receptor molecules. The surface protrusions were twice as abundant as the large intramembrane particles that characterize the fracture faces of this membrane, which have also been considered to be receptor molecules. Particle counts have always been too low to match the estimates of postsynaptic receptor density derived from physiological and biochemical studies; counts of surface projections, however, more closely matched these estimates. Rotary-replication of quick-frozen, etched postsynaptic membranes enhanced the visibility of these surface protuberances and illustrated that they often occur in dimers, tetramers, and ordered rows. The variations in these surface patterns suggested that in vivo, receptors in the postsynaptic membrane may tend to pack into "liquid crystals" which constantly appear, flow, and disappear in the fluid environment of the membrane. Additionally, deep-etching revealed a distinct web of cytoplasmic filaments beneath the postsynaptic membrane, and revealed the basal lamina above it; and delineated possible points of contact between these structures and the membrane proper.This publication has 50 references indexed in Scilit:
- Synaptic vesicle exocytosis captured by quick freezing and correlated with quantal transmitter release.The Journal of cell biology, 1979
- Electrophorus acetylcholinesterase. Biochemical and electron microscope characterization of low ionic strength aggregatesThe Journal of cell biology, 1978
- Freeze-fracturing in ultrahigh vacuum at -196 degrees C.The Journal of cell biology, 1978
- Binding of antibodies to acetylcholine receptors in Electrophorus and Torpedo electroplax membranes.The Journal of cell biology, 1978
- Immunization of rats with polypeptide chains from torpedo acetylcholine receptor causes an autoimmune response to receptors in rat muscle.Proceedings of the National Academy of Sciences, 1978
- Correlative gap junction ultrastructure.1978
- Membrane particle aggregates in innervated and noninnervated cultures of Xenopus embryonic muscle cells.Proceedings of the National Academy of Sciences, 1978
- Structural studies of a membrane-bound acetylcholine receptor from Torpedo californicaJournal of Molecular Biology, 1977
- Nerve‐induced and spontaneous redistribution of acetylcholine receptors on cultured muscle cells.The Journal of Physiology, 1977
- Collapse phenomena in freeze-dryingJournal of Ultrastructure Research, 1977