Effects of muscarinic receptor stimulation on Ca2+ transient, cAMP production and pacemaker frequency of rabbit sinoatrial node cells

被引:48
作者
van Borren, Marcel M. G. J. [1 ,2 ]
Verkerk, Arie O. [2 ]
Wilders, Ronald [2 ]
Hajji, Najat [3 ]
Zegers, Jan G. [2 ]
Bourier, Jan [2 ]
Tan, Hanno L. [2 ]
Verheijck, Etienne E. [2 ]
Peters, Stephan L. M. [3 ]
Alewijnse, Astrid E. [3 ]
Ravesloot, Jan-Hindrik [2 ]
机构
[1] Univ Amsterdam, Acad Med Ctr, Dept Physiol, NL-1105 AZ Amsterdam, Netherlands
[2] Univ Amsterdam, Acad Med Ctr, Heart Failure Res Ctr, NL-1105 AZ Amsterdam, Netherlands
[3] Univ Amsterdam, Acad Med Ctr, Dept Pharmacol & Pharmacotherapy, NL-1105 AZ Amsterdam, Netherlands
关键词
Acetylcholine; Ca2+ transient; cAMP; Pacemaker cells; Sinoatrial node; SUSTAINED INWARD CURRENT; RECTIFIER POTASSIUM CURRENT; PIG VENTRICULAR MYOCYTES; I-F; DIASTOLIC DEPOLARIZATION; SARCOPLASMIC-RETICULUM; AUTONOMIC AGONISTS; CALCIUM-CHANNELS; FUNNY CURRENT; MODULATION;
D O I
10.1007/s00395-009-0048-9
中图分类号
R5 [内科学];
学科分类号
100201 [内科学];
摘要
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(A (R))). 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 mu M 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 mu M) or BAPTA-AM (5 mu M) facilitated ACh-mediated pacemaker slowing. Furthermore, ACh depressed the Ca (i) (2+) transient and reduced the sarcoplasmic reticulum (SR) Ca2+ content, all in a concentration-dependent fashion. At 1 mu M ACh, the spontaneous activity and Ca (i) (2+) transient were abolished, but completely recovered when cAMP production was stimulated by forskolin (10 mu M) and I (K,ACh) was inhibited by tertiapin (100 nM). Also, inhibition of the Ca (i) (2+) transient by ryanodine (3 mu M) or BAPTA-AM (25 mu M) 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.
引用
收藏
页码:73 / 87
页数:15
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