ANO1 contributes to Angiotensin-II-activated Ca2+-dependent Cl− current in human atrial fibroblasts

Cardiac fibroblasts are an integral part of the myocardial tissue and contribute to its remodelling. This study characterises for the first time the calcium-dependent chloride channels (CaCC) in the plasma membrane of primary human atrial cardiac fibroblasts by means of the iodide efflux and the pat...

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Veröffentlicht in:Journal of molecular and cellular cardiology 2014-03, Vol.68, p.12-19
Hauptverfasser: El Chemaly, Antoun, Norez, Caroline, Magaud, Christophe, Bescond, Jocelyn, Chatelier, Aurelien, Fares, Nassim, Findlay, Ian, Jayle, Christophe, Becq, Frederic, Faivre, Jean-François, Bois, Patrick
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Sprache:eng
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Zusammenfassung:Cardiac fibroblasts are an integral part of the myocardial tissue and contribute to its remodelling. This study characterises for the first time the calcium-dependent chloride channels (CaCC) in the plasma membrane of primary human atrial cardiac fibroblasts by means of the iodide efflux and the patch clamp methods. The calcium ionophore A23187 and Angiotensin II (Ang II) activate a chloride conductance in cardiac fibroblasts that shares pharmacological similarities with calcium-dependent chloride channels. This chloride conductance is depressed by RNAi-mediated selective Anoctamine 1 (ANO1) but not by Anoctamine 2 (ANO2) which has been revealed as CaCC and is inhibited by the selective ANO1 inhibitor, T16inh-A01. The effect of Ang II on anion efflux is mediated through AT1 receptors (with an EC50=13.8±1.3nM). The decrease of anion efflux by calphostin C and bisindolylmaleimide I (BIM I) suggests that chloride conductance activation is dependent on PKC. We conclude that ANO1 contributes to CaCC current in human cardiac fibroblasts and that this is regulated by Ang II acting via the AT1 receptor pathway. •ANO1 carries CaCC current in human cardiac fibroblasts.•ANO1 is regulated by Ang II via the AT1 receptor pathway.•ANO1 may influence cardiac fibroblast proliferation and secretion of collagen.•ANO1 may regulate hypertrophy and fibrosis resulting from ischemia.
ISSN:0022-2828
1095-8584
DOI:10.1016/j.yjmcc.2013.12.027