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Expression and function of Anoctamin 1/TMEM16A calcium-activated chloride channels in airways of in vivo mouse models for cystic fibrosis research
- Source :
- Pflugers Archiv : European journal of physiology. 470(9)
- Publication Year :
- 2018
-
Abstract
- Physiological processes of vital importance are often safeguarded by compensatory systems that substitute for primary processes in case these are damaged by gene mutation. Ca2+-dependent Cl- secretion in airway epithelial cells may provide such a compensatory mechanism for impaired Cl- secretion via cystic fibrosis transmembrane conductance regulator (CFTR) channels in cystic fibrosis (CF). Anoctamin 1 (ANO1) Ca2+-gated Cl- channels are known to contribute to calcium-dependent Cl- secretion in tracheal and bronchial epithelia. In the present study, two mouse models of CF were examined to assess a potential protective function of Ca2+-dependent Cl- secretion, a CFTR deletion model (cftr-/-), and a CF pathology model that overexpresses the epithelial Na+ channel β-subunit (βENaC), which is encoded by the Scnn1b gene, specifically in airway epithelia (Scnn1b-Tg). The expression levels of ANO1 were examined by mRNA and protein content, and the channel protein distribution between ciliated and non-ciliated epithelial cells was analyzed. Moreover, Ussing chamber experiments were conducted to compare Ca2+-dependent Cl- secretion between wild-type animals and the two mouse models. Our results demonstrate that CFTR and ANO1 channels were co-expressed with ENaC in non-ciliated cells of mouse tracheal and bronchial epithelia. Ciliated cells did not express these proteins. Despite co-localization of CFTR and ANO1 in the same cell type, cells in cftr-/- mice displayed no altered expression of ANO1. Similarly, ANO1 expression was unaffected by βENaC overexpression in the Scnn1b-Tg line. These results suggest that the CF-related environment in the two mouse models did not induce ANO1 overexpression as a compensatory system.
- Subjects :
- 0301 basic medicine
Epithelial sodium channel
Male
Cystic Fibrosis
Physiology
Clinical Biochemistry
Cystic Fibrosis Transmembrane Conductance Regulator
Bronchi
Respiratory Mucosa
Gene mutation
Cystic fibrosis
Epithelium
ANO1
03 medical and health sciences
Mice
Chlorides
Chloride Channels
Physiology (medical)
medicine
Animals
Secretion
Epithelial Sodium Channels
Anoctamin-1
Ion Transport
biology
Ussing chamber
Chemistry
Epithelial Cells
respiratory system
medicine.disease
Cystic fibrosis transmembrane conductance regulator
Cell biology
Mice, Inbred C57BL
Trachea
Disease Models, Animal
030104 developmental biology
biology.protein
Respiratory epithelium
Calcium
Female
Signal Transduction
Subjects
Details
- ISSN :
- 14322013
- Volume :
- 470
- Issue :
- 9
- Database :
- OpenAIRE
- Journal :
- Pflugers Archiv : European journal of physiology
- Accession number :
- edsair.doi.dedup.....2d553fa97bd71105f42ac30342de6c3a