» Articles » PMID: 11815668

Acetylcholine-induced Calcium Signaling and Contraction of Airway Smooth Muscle Cells in Lung Slices

Overview
Journal J Gen Physiol
Specialty Physiology
Date 2002 Jan 30
PMID 11815668
Citations 72
Authors
Affiliations
Soon will be listed here.
Abstract

The Ca(2+) signaling and contractility of airway smooth muscle cells (SMCs) were investigated with confocal microscopy in murine lung slices (approximately 75-microm thick) that maintained the in situ organization of the airways and the contractility of the SMCs for at least 5 d. 10--500 nM acetylcholine (ACH) induced a contraction of the airway lumen and a transient increase in [Ca(2+)](i) in individual SMCs that subsequently declined to initiate multiple intracellular Ca(2+) oscillations. These Ca(2+) oscillations spread as Ca(2+) waves through the SMCs at approximately 48 microm/s. The magnitude of the airway contraction, the initial Ca(2+) transient, and the frequency of the subsequent Ca(2+) oscillations were all concentration-dependent. In a Ca(2+)-free solution, ACH induced a similar Ca(2+) response, except that the Ca(2+) oscillations ceased after 1--1.5 min. Incubation with thapsigargin, xestospongin, or ryanodine inhibited the ACH-induced Ca(2+) signaling. A comparison of airway contraction with the ACH-induced Ca(2+) response of the SMCs revealed that the onset of airway contraction correlated with the initial Ca(2+) transient, and that sustained airway contraction correlated with the occurrence of the Ca(2+) oscillations. Buffering intracellular Ca(2+) with BAPTA prohibited Ca(2+) signaling and airway contraction, indicating a Ca(2+)-dependent pathway. Cessation of the Ca(2+) oscillations, induced by ACH-esterase, halothane, or the absence of extracellular Ca(2+) resulted in a relaxation of the airway. The concentration dependence of the airway contraction matched the concentration dependence of the increased frequency of the Ca(2+) oscillations. These results indicate that Ca(2+) oscillations, induced by ACH in murine bronchial SMCs, are generated by Ca(2+) release from the SR involving IP(3)- and ryanodine receptors, and are required to maintain airway contraction.

Citing Articles

Precision cut lung slices: an innovative tool for lung transplant research.

Kollareth D, Sharma A Front Immunol. 2024; 15():1504421.

PMID: 39669559 PMC: 11634892. DOI: 10.3389/fimmu.2024.1504421.


High throughput screening of airway constriction in mouse lung slices.

Boucher M, Henry C, Gelinas L, Packwood R, Rojas-Ruiz A, Fereydoonzad L Sci Rep. 2024; 14(1):20133.

PMID: 39210022 PMC: 11362152. DOI: 10.1038/s41598-024-71170-3.


Precision cut lung slices: an integrated ex vivo model for studying lung physiology, pharmacology, disease pathogenesis and drug discovery.

Koziol-White C, Gebski E, Cao G, Panettieri Jr R Respir Res. 2024; 25(1):231.

PMID: 38824592 PMC: 11144351. DOI: 10.1186/s12931-024-02855-6.


Innovative three-dimensional models for understanding mechanisms underlying lung diseases: powerful tools for translational research.

Nizamoglu M, Joglekar M, Almeida C, Callerfelt A, Dupin I, Guenat O Eur Respir Rev. 2023; 32(169).

PMID: 37495250 PMC: 10369168. DOI: 10.1183/16000617.0042-2023.


Perspectives on precision cut lung slices-powerful tools for investigation of mechanisms and therapeutic targets in lung diseases.

Lam M, Lamanna E, Organ L, Donovan C, Bourke J Front Pharmacol. 2023; 14:1162889.

PMID: 37261291 PMC: 10228656. DOI: 10.3389/fphar.2023.1162889.


References
1.
Wohlsen A, Uhlig S, Martin C . Immediate allergic response in small airways. Am J Respir Crit Care Med. 2001; 163(6):1462-9. DOI: 10.1164/ajrccm.163.6.2007138. View

2.
Tulic M, Wale J, Petak F, Sly P . Muscarinic blockade of methacholine induced airway and parenchymal lung responses in anaesthetised rats. Thorax. 1999; 54(6):531-7. PMC: 1745489. DOI: 10.1136/thx.54.6.531. View

3.
Shieh C, Petrini M, Dwyer T, Farley J . Concentration-dependence of acetylcholine-induced changes in calcium and tension in swine trachealis. J Pharmacol Exp Ther. 1991; 256(1):141-8. View

4.
Di Virgilio F, Steinberg T, Silverstein S . Inhibition of Fura-2 sequestration and secretion with organic anion transport blockers. Cell Calcium. 1990; 11(2-3):57-62. DOI: 10.1016/0143-4160(90)90059-4. View

5.
Dandurand R, Wang C, Laberge S, Martin J, Eidelman D . In vitro allergic bronchoconstriction in the brown Norway rat. Am J Respir Crit Care Med. 1994; 149(6):1499-505. DOI: 10.1164/ajrccm.149.6.8004305. View