Immunolocalization of chloride-transporting membrane vesicles in tracheal epithelial cells

W P Dubinsky1, C L Preston, M A Calenzo

  • 1Department of Physiology and Cell Biology, University of Texas Medical School, Houston 77225.

Insights

Researchers identified a 200-kDa epithelial membrane protein specific to a Cl- channel fraction. This protein is enriched in epithelial tissues and localized to the apical domain of tracheal cells.

Area of Science:

  • Cell Biology
  • Biochemistry
  • Physiology

Background:

  • A specific chloride channel (Cl-) enriched membrane fraction (MPS) was isolated from renal cortex and bovine tracheal epithelia.
  • A 200-kDa membrane protein was found to copurify with and be specific to this MPS fraction.

Purpose of the Study:

  • To immunologically characterize the isolated membrane fraction and identify the specific 200-kDa protein.
  • To determine the tissue distribution and subcellular localization of the 200-kDa protein.

Main Methods:

  • Purification of a 200-kDa membrane protein from MPS.
  • Raising antisera against the purified protein.
  • Immunoblot analysis of various tissue homogenates.
  • Immunohistochemical analysis of frozen tissue sections.

Main Results:

  • Antisera reacted with a 200-kDa protein in bovine trachea, kidney, pancreas, lung, and intestine.
  • Cross-reactivity was observed in rat stomach, pancreas, and lung, but not in muscle or aorta.
  • The 200-kDa protein was significantly enriched in MPS purified by hydrophobic chromatography and localized to the apical domain of tracheal epithelial cells.

Conclusions:

  • The 200-kDa protein is preferentially enriched in epithelial tissues.
  • This protein is a component of the apical membrane in tracheal epithelial cells, likely associated with the identified Cl- channel.

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