Interactions of lectins with specific cell types in toad urinary bladder. Surface distribution revealed by colloidal gold probes and label fracture.
Open Access
- 1 August 1986
- journal article
- research article
- Published by SAGE Publications in Journal of Histochemistry & Cytochemistry
- Vol. 34 (8) , 1057-1062
- https://doi.org/10.1177/34.8.3090136
Abstract
Colloidal gold probes were used in conjunction with pre-embedding labeling and label-fracture to show the plasma membrane distribution of Helix pomatia lectin (HPL) and wheat germ lectin (WGL) binding sites on different epithelial cell types of toad urinary bladder. Mitochondria-rich cells were virtually unlabeled with HPL, but showed a strong affinity for WGL. Granular cells were weakly labeled with WGL but had a variable affinity for HPL. Strongly labeled granular cells were arranged in either chains or clusters that were surrounded by poorly-stained granular cells. By label-fracture, the distribution of gold-labeled lectins was related to other membrane features seen in freeze-fracture. Neither HPL nor WGL binding sites appeared to be specifically related to the large intramembrane particles that characterize granular cells, or to the rod-shaped intramembrane particles that are a feature of membranes of mitochondria-rich cells. The preferential lectin binding affinity of these functionally distinct cell types provides an important starting point for their isolation and the characterization of their plasma membranes. Furthermore, the label-fracture approach can now be used to examine the plasma membrane modifications that occur in these cells under different physiologic conditions affecting epithelial transport processes.This publication has 14 references indexed in Scilit:
- Exocytosis regulates urinary acidification in turtle bladder by rapid insertion of H+ pumps into the luminal membrane.Proceedings of the National Academy of Sciences, 1982
- Specialized function of carbonic anhydrase-rich and granular cells of turtle bladderAmerican Journal of Physiology-Renal Physiology, 1982
- Quantitative analysis of exocytosis and endocytosis in the hydroosmotic response of toad bladderThe Journal of Membrane Biology, 1980
- Cellular changes in the toad urinary bladder in response to metabolic acidosisThe Journal of Membrane Biology, 1978
- Mucosal surface morphology of the toad urinary bladder. Scanning electron microscope study of the natriferic and hydro-osmotic response to vasopressinThe Journal of cell biology, 1978
- Adsorption of horseradish peroxidase, ovomucoid and anti-immunoglobulin to colloidal gold for the indirect detection of concanavalin A, wheat germ agglutinin and goat anti-human immunoglobulin G on cell surfaces at the electron microscopic level: a new method, theory and application.Journal of Histochemistry & Cytochemistry, 1977
- Relationship of aggregated intramembranous particles to water permeability in vasopressin-treated toad urinary bladder.Journal of Clinical Investigation, 1977
- Study of enzymes regulating vasopressin-stimulated cyclic AMP metabolism in separated mitochondria-rich and granular epithelial cells of toad urinary bladderThe Journal of Membrane Biology, 1976
- Intercellular Communication: Renal, Urinary Bladder, Sensory, and Salivary Gland CellsScience, 1965
- THE FINE STRUCTURE OF THE URINARY BLADDER OF THE TOAD, BUFO MARINUS The Journal of cell biology, 1963