VOLTAGE CLAMP MEASUREMENTS OF THE HYPERPOLARIZATION-ACTIVATED INWARD CURRENT IF IN SINGLE CELLS FROM RABBIT SINOATRIAL NODE

被引:115
作者
VANGINNEKEN, ACG
GILES, W
机构
[1] UNIV CALGARY,HLTH SCI CTR,DEPT MED PHYSIOL,3330 HOSP DR NW,CALGARY T2N 4N1,ALBERTA,CANADA
[2] UNIV CALGARY,HLTH SCI CTR,DEPT MED,CALGARY T2N 4N1,ALBERTA,CANADA
来源
JOURNAL OF PHYSIOLOGY-LONDON | 1991年 / 434卷
关键词
D O I
10.1113/jphysiol.1991.sp018459
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
1. The kinetics and ion transfer characteristics of the hyperpolarization-activated inward current, I(f), have been studied in single cells obtained by enzymatic dispersion from the rabbit sino-atrial (S-A) node. These experiments were done to assess the role of I(f) in the generation of the pacemaker depolarization in the S-A node. 2. The activation and the deactivation of I(f) in these single cells are accompanied by significant conductance increases and decreases respectively, confirming earlier findings from multicellular man-made strips of rabbit S-A node, and from mammalian Purkinje fibres. 3. The steady-state activation of I(f) lies between -40 and -120 mV, and its voltage dependence can be described by a Boltzmann relation with the half-activation point at approximately -70 mV. 4. The delay or sigmoidicity in both the onset of I(f) and the deactivation of the tail currents can be accounted for semi-quantitatively by using a second-order Hodgkin-Huxley kinetic scheme. 5. The reversal potential for I(f) is -24 +/- 2 mV (mean +/- S.E.M., n = 6). It does not change significantly as a function of the amount of I(f) which is activated, indicating that ion accumulation or depletion phenomena are not important variables controlling the time course of I(f), or its selectivity. 6. The fully-activated current-voltage relationship for I(f) is approximately linear with a slope conductance of 12.0 +/- 0.88 nS per cell (mean +/- S.E.M., n = 6). 7. A simple mathematical model based on the measured values of maximum conductance, reversal potential, and kinetics of I(f) has been developed to simulate the size and time course of I(f) during typical spontaneous pacemaker activity in rabbit sino-atrial node cells. The calculations show that I(f) can change significantly during pacing and suggest that this current change is, at least in part, responsible for the pacemaker depolarization. 8. Addition of CsCl (1 mM) provided further evidence for a functional role of I(f) in the generation of the pacemaker depolarization. Caesium blocked I(f), slowed the beating rate, and produced a small hyperpolarization. 9. These results indicate that I(f) can contribute a significant net inward current during the diastolic depolarization, and therefore may be a physiologically important determinant of heart rate.
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页码:57 / 83
页数:27
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