4.6 Article

Fluid flow induces mechanosensitive ATP release, calcium signalling and Cl- transport in biliary epithelial cells through a PKC zeta-dependent pathway

Journal

JOURNAL OF PHYSIOLOGY-LONDON
Volume 586, Issue 11, Pages 2779-2798

Publisher

WILEY
DOI: 10.1113/jphysiol.2008.153015

Keywords

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Funding

  1. NIDDK NIH HHS [R01 DK078587, P30 DK079328, P30DK079328] Funding Source: Medline
  2. NATIONAL INSTITUTE OF DIABETES AND DIGESTIVE AND KIDNEY DISEASES [R01DK078587, P30DK079328] Funding Source: NIH RePORTER

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ATP in bile is a potent secretogogue, stimulating cholangiocyte Cl- and fluid secretion via binding to membrane P2 receptors, though the physiological stimuli involved in biliary ATP release are unknown. The goal of the present studies was to determine the potential role of fluid flow in biliary ATP release and secretion. In both human Mz-Cha-1 biliary cells and normal rat cholangiocyte monolayers, exposure to flow increased relative ATP release which was proportional to the shear stress. In parallel studies, shear was associated with an increase in [Ca2+](i) and membrane Cl- permeability, which were both dependent on extracellular ATP and P2 receptor stimulation. Flow-stimulated ATP release was dependent on [Ca2+](i), exhibited desensitization with repetitive stimulation, and was regulated by PKC zeta. In conclusion, both human and rat biliary cells exhibit flow-stimulated, PKC zeta-dependent, ATP release, increases in [Ca2+](i) and Cl- secretion. The finding that fluid flow can regulate membrane transport suggests that mechanosensitive ATP release may be a key regulator of biliary secretion and an important target to modulate bile flow in the treatment of cholestatic liver diseases.

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