Cargando…

Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells

We investigated the contribution of the intracellular calcium (Ca(i)(2+)) transient to acetylcholine (ACh)-mediated reduction of pacemaker frequency and cAMP content in rabbit sinoatrial nodal (SAN) cells. Action potentials (whole cell perforated patch clamp) and Ca(i)(2+) transients (Indo-1 fluores...

Descripción completa

Detalles Bibliográficos
Autores principales: van Borren, Marcel M. G. J., Verkerk, Arie O., Wilders, Ronald, Hajji, Najat, Zegers, Jan G., Bourier, Jan, Tan, Hanno L., Verheijck, Etienne E., Peters, Stephan L. M., Alewijnse, Astrid E., Ravesloot, Jan-Hindrik
Formato: Texto
Lenguaje:English
Publicado: D. Steinkopff-Verlag 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2789936/
https://www.ncbi.nlm.nih.gov/pubmed/19639379
http://dx.doi.org/10.1007/s00395-009-0048-9
_version_ 1782175075353493504
author van Borren, Marcel M. G. J.
Verkerk, Arie O.
Wilders, Ronald
Hajji, Najat
Zegers, Jan G.
Bourier, Jan
Tan, Hanno L.
Verheijck, Etienne E.
Peters, Stephan L. M.
Alewijnse, Astrid E.
Ravesloot, Jan-Hindrik
author_facet van Borren, Marcel M. G. J.
Verkerk, Arie O.
Wilders, Ronald
Hajji, Najat
Zegers, Jan G.
Bourier, Jan
Tan, Hanno L.
Verheijck, Etienne E.
Peters, Stephan L. M.
Alewijnse, Astrid E.
Ravesloot, Jan-Hindrik
author_sort van Borren, Marcel M. G. J.
collection PubMed
description We investigated the contribution of the intracellular calcium (Ca(i)(2+)) transient to acetylcholine (ACh)-mediated reduction of pacemaker frequency and cAMP content in rabbit sinoatrial nodal (SAN) cells. Action potentials (whole cell perforated patch clamp) and Ca(i)(2+) transients (Indo-1 fluorescence) were recorded from single isolated rabbit SAN cells, whereas intracellular cAMP content was measured in SAN cell suspensions using a cAMP assay (LANCE(®)). Our data show that the Ca(i)(2+) transient, like the hyperpolarization-activated “funny current” (I (f)) and the ACh-sensitive potassium current (I (K,ACh)), is an important determinant of ACh-mediated pacemaker slowing. When I (f) and I (K,ACh) were both inhibited, by cesium (2 mM) and tertiapin (100 nM), respectively, 1 μM ACh was still able to reduce pacemaker frequency by 72%. In these I (f) and I (K,ACh)-inhibited SAN cells, good correlations were found between the ACh-mediated change in interbeat interval and the ACh-mediated change in Ca(i)(2+) transient decay (r (2) = 0.98) and slow diastolic Ca(i)(2+) rise (r (2) = 0.73). Inhibition of the Ca(i)(2+) transient by ryanodine (3 μM) or BAPTA-AM (5 μM) facilitated ACh-mediated pacemaker slowing. Furthermore, ACh depressed the Ca(i)(2+) transient and reduced the sarcoplasmic reticulum (SR) Ca(2+) content, all in a concentration-dependent fashion. At 1 μM ACh, the spontaneous activity and Ca(i)(2+) transient were abolished, but completely recovered when cAMP production was stimulated by forskolin (10 μM) and I (K,ACh) was inhibited by tertiapin (100 nM). Also, inhibition of the Ca(i)(2+) transient by ryanodine (3 μM) or BAPTA-AM (25 μM) exaggerated the ACh-mediated inhibition of cAMP content, indicating that Ca(i)(2+) affects cAMP production in SAN cells. In conclusion, muscarinic receptor stimulation inhibits the Ca(i)(2+) transient via a cAMP-dependent signaling pathway. Inhibition of the Ca(i)(2+) transient contributes to pacemaker slowing and inhibits Ca(i)(2+)-stimulated cAMP production. Thus, we provide functional evidence for the contribution of the Ca(i)(2+) transient to ACh-induced inhibition of pacemaker activity and cAMP content in rabbit SAN cells.
format Text
id pubmed-2789936
institution National Center for Biotechnology Information
language English
publishDate 2009
publisher D. Steinkopff-Verlag
record_format MEDLINE/PubMed
spelling pubmed-27899362009-12-15 Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells van Borren, Marcel M. G. J. Verkerk, Arie O. Wilders, Ronald Hajji, Najat Zegers, Jan G. Bourier, Jan Tan, Hanno L. Verheijck, Etienne E. Peters, Stephan L. M. Alewijnse, Astrid E. Ravesloot, Jan-Hindrik Basic Res Cardiol Original Contribution We investigated the contribution of the intracellular calcium (Ca(i)(2+)) transient to acetylcholine (ACh)-mediated reduction of pacemaker frequency and cAMP content in rabbit sinoatrial nodal (SAN) cells. Action potentials (whole cell perforated patch clamp) and Ca(i)(2+) transients (Indo-1 fluorescence) were recorded from single isolated rabbit SAN cells, whereas intracellular cAMP content was measured in SAN cell suspensions using a cAMP assay (LANCE(®)). Our data show that the Ca(i)(2+) transient, like the hyperpolarization-activated “funny current” (I (f)) and the ACh-sensitive potassium current (I (K,ACh)), is an important determinant of ACh-mediated pacemaker slowing. When I (f) and I (K,ACh) were both inhibited, by cesium (2 mM) and tertiapin (100 nM), respectively, 1 μM ACh was still able to reduce pacemaker frequency by 72%. In these I (f) and I (K,ACh)-inhibited SAN cells, good correlations were found between the ACh-mediated change in interbeat interval and the ACh-mediated change in Ca(i)(2+) transient decay (r (2) = 0.98) and slow diastolic Ca(i)(2+) rise (r (2) = 0.73). Inhibition of the Ca(i)(2+) transient by ryanodine (3 μM) or BAPTA-AM (5 μM) facilitated ACh-mediated pacemaker slowing. Furthermore, ACh depressed the Ca(i)(2+) transient and reduced the sarcoplasmic reticulum (SR) Ca(2+) content, all in a concentration-dependent fashion. At 1 μM ACh, the spontaneous activity and Ca(i)(2+) transient were abolished, but completely recovered when cAMP production was stimulated by forskolin (10 μM) and I (K,ACh) was inhibited by tertiapin (100 nM). Also, inhibition of the Ca(i)(2+) transient by ryanodine (3 μM) or BAPTA-AM (25 μM) exaggerated the ACh-mediated inhibition of cAMP content, indicating that Ca(i)(2+) affects cAMP production in SAN cells. In conclusion, muscarinic receptor stimulation inhibits the Ca(i)(2+) transient via a cAMP-dependent signaling pathway. Inhibition of the Ca(i)(2+) transient contributes to pacemaker slowing and inhibits Ca(i)(2+)-stimulated cAMP production. Thus, we provide functional evidence for the contribution of the Ca(i)(2+) transient to ACh-induced inhibition of pacemaker activity and cAMP content in rabbit SAN cells. D. Steinkopff-Verlag 2009-07-29 2010 /pmc/articles/PMC2789936/ /pubmed/19639379 http://dx.doi.org/10.1007/s00395-009-0048-9 Text en © The Author(s) 2009 https://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution Noncommercial License which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
spellingShingle Original Contribution
van Borren, Marcel M. G. J.
Verkerk, Arie O.
Wilders, Ronald
Hajji, Najat
Zegers, Jan G.
Bourier, Jan
Tan, Hanno L.
Verheijck, Etienne E.
Peters, Stephan L. M.
Alewijnse, Astrid E.
Ravesloot, Jan-Hindrik
Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells
title Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells
title_full Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells
title_fullStr Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells
title_full_unstemmed Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells
title_short Effects of muscarinic receptor stimulation on Ca(2+) transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells
title_sort effects of muscarinic receptor stimulation on ca(2+) transient, camp production and pacemaker frequency of rabbit sinoatrial node cells
topic Original Contribution
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2789936/
https://www.ncbi.nlm.nih.gov/pubmed/19639379
http://dx.doi.org/10.1007/s00395-009-0048-9
work_keys_str_mv AT vanborrenmarcelmgj effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT verkerkarieo effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT wildersronald effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT hajjinajat effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT zegersjang effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT bourierjan effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT tanhannol effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT verheijcketiennee effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT petersstephanlm effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT alewijnseastride effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells
AT raveslootjanhindrik effectsofmuscarinicreceptorstimulationonca2transientcampproductionandpacemakerfrequencyofrabbitsinoatrialnodecells