Cargando…

Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease

Airway mucociliary clearance (MCC) is the main mechanism of lung defense keeping airways free of infection and mucus obstruction. Airway surface liquid volume, ciliary beating, and mucus are central for proper MCC and critically regulated by sodium absorption and anion secretion. Impaired MCC is a k...

Descripción completa

Detalles Bibliográficos
Autores principales: Vega, Génesis, Guequén, Anita, Philp, Amber R., Gianotti, Ambra, Arzola, Llilian, Villalón, Manuel, Zegarra-Moran, Olga, Galietta, Luis J.V., Mall, Marcus A., Flores, Carlos A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7455130/
https://www.ncbi.nlm.nih.gov/pubmed/32814712
http://dx.doi.org/10.1172/jci.insight.140076
_version_ 1783575569405837312
author Vega, Génesis
Guequén, Anita
Philp, Amber R.
Gianotti, Ambra
Arzola, Llilian
Villalón, Manuel
Zegarra-Moran, Olga
Galietta, Luis J.V.
Mall, Marcus A.
Flores, Carlos A.
author_facet Vega, Génesis
Guequén, Anita
Philp, Amber R.
Gianotti, Ambra
Arzola, Llilian
Villalón, Manuel
Zegarra-Moran, Olga
Galietta, Luis J.V.
Mall, Marcus A.
Flores, Carlos A.
author_sort Vega, Génesis
collection PubMed
description Airway mucociliary clearance (MCC) is the main mechanism of lung defense keeping airways free of infection and mucus obstruction. Airway surface liquid volume, ciliary beating, and mucus are central for proper MCC and critically regulated by sodium absorption and anion secretion. Impaired MCC is a key feature of muco-obstructive diseases. The calcium-activated potassium channel KCa.3.1, encoded by Kcnn4, participates in ion secretion, and studies showed that its activation increases Na(+) absorption in airway epithelia, suggesting that KCa3.1-induced hyperpolarization was sufficient to drive Na(+) absorption. However, its role in airway epithelium is not fully understood. We aimed to elucidate the role of KCa3.1 in MCC using a genetically engineered mouse. KCa3.1 inhibition reduced Na(+) absorption in mouse and human airway epithelium. Furthermore, the genetic deletion of Kcnn4 enhanced cilia beating frequency and MCC ex vivo and in vivo. Kcnn4 silencing in the Scnn1b-transgenic mouse (Scnn1b(tg/+)), a model of muco-obstructive lung disease triggered by increased epithelial Na(+) absorption, improved MCC, reduced Na(+) absorption, and did not change the amount of mucus but did reduce mucus adhesion, neutrophil infiltration, and emphysema. Our data support that KCa3.1 inhibition attenuated muco-obstructive disease in the Scnn1b(tg/+) mice. K(+) channel modulation may be a therapeutic strategy to treat muco-obstructive lung diseases.
format Online
Article
Text
id pubmed-7455130
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Society for Clinical Investigation
record_format MEDLINE/PubMed
spelling pubmed-74551302020-09-01 Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease Vega, Génesis Guequén, Anita Philp, Amber R. Gianotti, Ambra Arzola, Llilian Villalón, Manuel Zegarra-Moran, Olga Galietta, Luis J.V. Mall, Marcus A. Flores, Carlos A. JCI Insight Research Article Airway mucociliary clearance (MCC) is the main mechanism of lung defense keeping airways free of infection and mucus obstruction. Airway surface liquid volume, ciliary beating, and mucus are central for proper MCC and critically regulated by sodium absorption and anion secretion. Impaired MCC is a key feature of muco-obstructive diseases. The calcium-activated potassium channel KCa.3.1, encoded by Kcnn4, participates in ion secretion, and studies showed that its activation increases Na(+) absorption in airway epithelia, suggesting that KCa3.1-induced hyperpolarization was sufficient to drive Na(+) absorption. However, its role in airway epithelium is not fully understood. We aimed to elucidate the role of KCa3.1 in MCC using a genetically engineered mouse. KCa3.1 inhibition reduced Na(+) absorption in mouse and human airway epithelium. Furthermore, the genetic deletion of Kcnn4 enhanced cilia beating frequency and MCC ex vivo and in vivo. Kcnn4 silencing in the Scnn1b-transgenic mouse (Scnn1b(tg/+)), a model of muco-obstructive lung disease triggered by increased epithelial Na(+) absorption, improved MCC, reduced Na(+) absorption, and did not change the amount of mucus but did reduce mucus adhesion, neutrophil infiltration, and emphysema. Our data support that KCa3.1 inhibition attenuated muco-obstructive disease in the Scnn1b(tg/+) mice. K(+) channel modulation may be a therapeutic strategy to treat muco-obstructive lung diseases. American Society for Clinical Investigation 2020-08-20 /pmc/articles/PMC7455130/ /pubmed/32814712 http://dx.doi.org/10.1172/jci.insight.140076 Text en © 2020 Vega et al. http://creativecommons.org/licenses/by/4.0/ This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Research Article
Vega, Génesis
Guequén, Anita
Philp, Amber R.
Gianotti, Ambra
Arzola, Llilian
Villalón, Manuel
Zegarra-Moran, Olga
Galietta, Luis J.V.
Mall, Marcus A.
Flores, Carlos A.
Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease
title Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease
title_full Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease
title_fullStr Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease
title_full_unstemmed Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease
title_short Lack of Kcnn4 improves mucociliary clearance in muco-obstructive lung disease
title_sort lack of kcnn4 improves mucociliary clearance in muco-obstructive lung disease
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7455130/
https://www.ncbi.nlm.nih.gov/pubmed/32814712
http://dx.doi.org/10.1172/jci.insight.140076
work_keys_str_mv AT vegagenesis lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT guequenanita lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT philpamberr lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT gianottiambra lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT arzolallilian lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT villalonmanuel lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT zegarramoranolga lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT galiettaluisjv lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT mallmarcusa lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease
AT florescarlosa lackofkcnn4improvesmucociliaryclearanceinmucoobstructivelungdisease