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Ultrastructural localization of actin in muscle, epithelial and secretory cells by applying the protein A-gold immunocytochemical technique

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Summary

Actin-immunoreactive sites have been localized at the electron microscope level by the protein A-gold technique in striated and smooth muscle cells as well as in epithelial and secretory cells. The combination of the highly sensitive protein A-gold technique with the good ultrastructural preservation and retention of antigenicity obtained using low-temperature embedding conditions has allowed a very precise identification of the labelled structures with high resolution. In striated muscle cells the labelling was obtained over the myofilaments and the Z-band, mainly at its periphery. Labelling was also observed at the edge of the intercalated discs of the cardiac muscle cells. In smooth muscle cells the labelling was present over the myofilaments; the dense plaques associated with the plasma membrane were labelled at their periphery where actin filaments have been reported to anchor. In epithelial cells of the duodenum and the renal convoluted proximal tubule, the labelling occurred over the filamentous core of the microvilli and over the cell web. Gold particles were often present over, or closely associated with, the cell membrane at the tip of the microvilli or of invaginations and vesicular structures. At the level of the junctional complexes the gold particles were aligned at the edge of the dense zones. In pancreatic endocrine and exocrine secretory cells, actin-immunoreactive sites were revealed over the Golgi apparatus, mainly at the level of the inner cisternae in the maturing face over or closely associated with the membranes of the condensing vacuoles and secretory granules, and also over the plasma membrane. Microvilli and cell web were also labelled. Finally, in fibroblasts, gold particles were associated with the membrane of vesicular structures. The consistent finding of actinimmunoreactive sites closely associated with membranes of secretory granules and vesicular structures brings support to the proposal that contractile proteins might play an important role in transcellular transport and protein secretion.

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References

  • Barber, B. H. &Crumpton, J. (1976) Actin associated with purified lymphocyte plasma membrane.FEBS Lett. 66, 215–20.

    Google Scholar 

  • Bendayan, M. (1981a) Electron microscopical localization of nucleic acids by means of nuclease-gold complexes.Histochem. J. 13, 699–710.

    Google Scholar 

  • Bendayan, M. (1981b) Ultrastructural localization of actin in insulin-containing granules.Biol. Cell 41, 157–60.

    Google Scholar 

  • Bendayan, M., Roth, J., Perrelet, A. &Orci, L. (1980) Quantitative immunocytochemical localization of pancreatic secretory proteins in subcellular compartments of the rat acinar cell.J. Histochem. Cytochem. 28, 149–60.

    Google Scholar 

  • Bendayan, M. &Ørstavik, T. B. (1982) Immunocytochemical localization of kallikrein in the rat exocrine pancreas.J. Histochem. Cytochem. 30, 58–66.

    Google Scholar 

  • Bendayan, M. &Shore, G. C. (1982) Immunocytochemical localization of mitochondrial proteins in the rat hepatocyte.J. Histochem. Cytochem. 30, 139–47.

    Google Scholar 

  • Bendayan, M., Marceau, N., Beaudoin, A. R. &Trifaro, J. M. (1982) Immunocytochemical localization of actin in the pancreatic exocrine cell.J. Histochem. Cytochem. 30, 1075–8.

    Google Scholar 

  • Bretscher, A. &Weber, K. (1978a) Localization of actin and microfilament-associated proteins in the microvilli and terminal web of the intestinal brush border by immunofluorescence microscopy.J. Cell Biol. 79, 839–45.

    Google Scholar 

  • Bretscher, A. &Weber, K. (1978b) Purification of microvilli and analysis of the protein components of the microfilament core bundle.Expl Cell Res. 116, 397–407.

    Google Scholar 

  • Bretscher, A. &Weber, K. (1979). Villin: the major microfilament-associated protein of the intestinal microvillus.Proc. natn. Acad. Sci., U.S.A. 76, 2321–5.

    Google Scholar 

  • Bretscher, A. &Weber, K. (1980) Fimbrin, a new microfilament-associated protein present in microvilli and other cell surface structuresJ. Cell Biol. 86, 335–40.

    Google Scholar 

  • Burridge, K. &Phillips, J. H. (1975) Association of actin and myosin with secretory granule membranes.Nature, Lond. 254, 526–9.

    Google Scholar 

  • Cabana, C., Hugon, J. S. & Lamy, F. (1982) Electrophoretic analysis of pancreatic zymogen granule membrane. Correlation with certain ultrastructural features.Biol. Cell (in press).

  • Carlemalm, E., Villiger, W. &Acetarin, J. D. (1980) Advances in specimen preparation for electron microscopy. I. Novel low temperature embedding resins and a reformulated vestopal.Experientia 36, 740.

    Google Scholar 

  • Carraway, K. L., Huggings, J. W., Cerra, R. F., Yeltman, D. R. &Carothers Carraway, C. A. (1980) α-Actinin containing branched microvilli isolated from an ascites adenocarcinoma.Nature, Lond. 285, 508–10.

    Google Scholar 

  • Drenckhahn, D., Gröschel-Stewart, U. &Unsicker, K. (1977) Immunofluorescence-microscopic demonstrations of myosin and actin in salivary glands and exocrine pancreas of the rat.Cell Tiss. Res. 183, 273–9.

    Google Scholar 

  • Gabbiani, G., Ryan, G. B., Lamelin, J. P., Vassalli, P., Majno, G., Bouvier, C. A., Cruchand, A. &Lüscher, E. F. (1973) Human smooth muscle autoantibody: Its identification as antiactin antibody and a study of its binding to ‘non-muscular’ cells.Am. J. Path. 72, 473–88.

    Google Scholar 

  • Gabbiani, G., Malaisse-Lagae, F., Blondel, B. &Orcl, L. (1974) Actin in pancreatic islet cells.Endocrinol. 95, 1630–5.

    Google Scholar 

  • Gabbiani, G., Daprada, M., Richards, G. &Pletscher, A. (1976) Actin associated with membranes of monoamine storage organelles.Proc. Soc. exp. Biol. Med. 152, 135–8.

    Google Scholar 

  • Geiger, B., Tokuyasu, K. T., Dutton, A. H. &Singer, S. J. (1980) Vinculin, an intracellular protein localized at specialized sites where microfilament bundles terminate at cell membranes.Proc. natn. Acad. Sci., U.S.A.,77, 4127–31.

    Google Scholar 

  • Geiger, B., Dutton, A. H., Tokuyasu, K. T. &Singer, S. J. (1981) Immunoelectron microscope studies of membrane-microfilament interactions: Distribution of α-actinin, tropomyosin, and vinculin in intestinal epithelial brush border and chicken gizzard smooth muscle cells.J. Cell Biol. 91, 614–28.

    Google Scholar 

  • Gruenstein, E., Rich, A. &Weihing, R. R. (1975) Actin associated with membranes from 3T3 mouse fibroblast and Hela cells.J. Cell Biol. 64, 223–34.

    Google Scholar 

  • Huxley, H. E. (1969) The mechanisms of muscular contraction.Science 164, 1356–66.

    Google Scholar 

  • Huxley, H. E. (1972) Molecular basis of contraction in cross-striated muscles. InThe Structure and Function of Muscle, Vol. 1 (edited byBourne, G. H.), pp. 301–387. New York, London: Academic Press.

    Google Scholar 

  • Ishikawa, H., Bischoff, R. &Holtzer, H. (1969) Formation of arrowhead complexes with heavy meromyosin in a variety of cell types.J. Cell Biol. 43, 312–28.

    Google Scholar 

  • Korn, E. D. &Wright, P. L. (1973) Macromolecular composition of an ameoba plasma membrane.J. biol. Chem. 248, 439–47.

    Google Scholar 

  • Lazarides, E. &Burridge, K. (1975) α-Actinin: immunofluorescence localization of a muscle structural protein in nonmuscle cells.Cell. 6, 289–98.

    Google Scholar 

  • Lazarides, E., Hubbard, B. D. &Granger, B. L. (1979) Studies on the structure, interaction with actin and function of desmin and intermediate filaments in chicken muscle cells. InCell Motility: Molecular and Organization (edited byHatano, S., Ishikawa, H. andSato, H.), pp. 521–543. Baltimore: University Park Press.

    Google Scholar 

  • Leduc, E. H. &Bernhard, W. (1967) Recent modification of the glycol methacrylate embedding procedure.J. Ultrastruct. Res. 19, 196–9.

    Google Scholar 

  • Lee, R. W. H. &Trifaro, J. M. (1981) Characterization of anti-actin antibodies and their use in immunocytochemical studies on the localization of actin in adrenal chromaffin cells in culture.Neurosci. 6, 2087–10.

    Google Scholar 

  • Marceau, N., Goyette, R., Deschenes, J. &Valet, J. P. (1980) Morphological differences between epithelial and fibroblast cells in rat liver cultures and the roles of cell surface fibronectin and cytoskeletal element organization in cell shape.Ann. N.Y. Acad. Sci. 349, 138–52.

    Google Scholar 

  • Marshall, J. M. Jr., Holtzer, H., Finck, H. &Pepe, F. (1959) The distribution of protein antigens in striated myofibrils.Expl Cell Res., Suppl. 7, 219–33.

    Google Scholar 

  • Mooseker, M. S. &Tilney, L. G. (1975) Organization of an actin filament-membrane complex. Filament polarity and membrane attachment in the microvilli of intestinal epithelial cells.J. Cell Biol. 67, 725–43.

    Google Scholar 

  • Neimak, H. C. (1977) Extraction of an actin like protein from the prokaryotypeMycoplasma pneumonia.Proc. natn. Acad. Sci., U.S.A.,74, 4041–5.

    Google Scholar 

  • Ostlund, R. E., Leung, J. T. &Kipnis, D. M. (1977) Muscle actin filaments bind pituitary secretory granulesin vitro.J. Cell Biol. 73, 78–87.

    Google Scholar 

  • Pepe, F. A. (1966) Some aspects of the structural organization of the myofibril as revealed by antibody staining.J. Cell Biol. 28, 505–25.

    Google Scholar 

  • Pipeleers, D. G., Pipeleers-Marichal, M. A. &Kipnis, D. M. (1976) Regulation of tubulin synthesis in islets of Langerhans.Proc. natn. Acad. Sci., U.S.A. 73, 3188–91.

    Google Scholar 

  • Rohz, G. &Mannherz, H. G. (1978) Isolation and characterization of secretory actin-DNAase I complex from rat pancreatic juice.Eur. J. Biochem. 89, 151–7.

    Google Scholar 

  • Roth, J., Bendayan, M. &Orcl, L. (1978) Ultrastructural localization of intracellular antigens by the use of protein A-gold complex.J. Histochem. Cytochem. 26, 1074–81.

    Google Scholar 

  • Roth, J., Bendayan, M., Carlemalm, E., Villiger, W. &Garavito, M. (1981) The enhancement of structural preservation and immunocytochemical staining in low temperature embedded pancreatic tissue.J. Histochem. Cytochem.,29, 663–71.

    Google Scholar 

  • Sandborn, E., Szeberenji, A., Messier, P. E. &Bois, P. (1965) A new membrane model derived from a study of filaments, microtubules and membranes.Rev. Can. Biol. 24, 243–76.

    Google Scholar 

  • Somlyo, A. C., Ashton, F. T., Lemanski, L. F., Vallieres, J. &Somlyo, A. P. (1976) Filament organization and dense bodies in vertebrate smooth muscle. InBiochemistry of Smooth Muscle (edited byStephens, N. L.), pp. 445–471. Baltimore: University Park Press.

    Google Scholar 

  • Stossel, T. P. (1978) Contractile proteins in cell structure and function.Ann. Rev. Med. 29, 427–57.

    Google Scholar 

  • Swanston-Flatt, S. K., Carlson, L. &Gylfe, E. (1980) Actin filament formation in pancreatic B-cells during glucose stimulation of insulin secretion.FEBS Lett. 117, 299–302.

    Google Scholar 

  • Willingham, M. C., Yamada, S. S., Davies, P. J. A., Reitherford, A. V., Gallo, M. G. &Pastan, I. (1981) Intracellular localization of actin in cultured fibroblasts by electron microscopic immunocytochemistry.J. Histochem. Cytochem. 29, 17–37.

    Google Scholar 

  • Yokota, S. &Fahimi, D. (1981) Immunocytochemical localization of catalase in rat liver.J. Histochem. Cytochem. 29, 805–12.

    Google Scholar 

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Bendayan, M. Ultrastructural localization of actin in muscle, epithelial and secretory cells by applying the protein A-gold immunocytochemical technique. Histochem J 15, 39–58 (1983). https://doi.org/10.1007/BF01006070

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