Mechanosensitive Cl− secretion in biliary epithelium mediated through TMEM16A
Author(s) -
Amal K. Dutta,
Kangmee Woo,
Al-karim Khimji,
Charles Kresge,
Andrew P. Feranchak
Publication year - 2012
Publication title -
ajp gastrointestinal and liver physiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.644
H-Index - 169
eISSN - 1522-1547
pISSN - 0193-1857
DOI - 10.1152/ajpgi.00154.2012
Subject(s) - cholangiocyte , mechanosensitive channels , extracellular , hepatocyte , intracellular , chemistry , microbiology and biotechnology , secretion , biophysics , bone canaliculus , apical membrane , epithelium , receptor , biology , endocrinology , biochemistry , ion channel , membrane , anatomy , in vitro , genetics
Bile formation by the liver is initiated by canalicular transport at the hepatocyte membrane, leading to an increase in ductular bile flow. Thus, bile duct epithelial cells (cholangiocytes), which contribute to the volume and dilution of bile through regulated Cl(-) transport, are exposed to changes in flow and shear force at the apical membrane. The aim of the present study was to determine if fluid flow, or shear stress, is a signal regulating cholangiocyte transport. The results demonstrate that, in human and mouse biliary cells, fluid flow, or shear, increases Cl(-) currents and identify TMEM16A, a Ca(2+)-activated Cl(-) channel, as the operative channel. Furthermore, activation of TMEM16A by flow is dependent on PKCα through a process involving extracellular ATP, binding purinergic P2 receptors, and increases in intracellular Ca(2+) concentration. These studies represent the initial characterization of mechanosensitive Cl(-) currents mediated by TMEM16A. Identification of this novel mechanosensitive secretory pathway provides new insight into bile formation and suggests new therapeutic targets to enhance bile formation in the treatment of cholestatic liver disorders.
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