PDF
Abstract
Transmembrane potentials of single pacemaker cells in the sinus venosus of toad have been recorded with floating microelectrode, and it was found that the action potential amplitudes were not identical in different pacemaker cells. In the recorded potential range of maximum diastolic potential (MDP) 40 – 75 mv, there was a linear correlation between MDP and maximum upstroke velocity (Vmax) (r = 0.80, n = 16), and cells with different MDP reacted differently to tetrodotoxin (TTX). When MDP was equal to or less than 56 mv, the transmembrane potential did not show any significant change after TTX; when the MDP was higher than 56 mv, the transmembrane potential exhibited significant changes, mainly in reduction of APA and Vmax after TTX. The experimental results indicate that, when MDP is below 56 mv, the fast sodium channels are totally inactivated, whereas with MDP higher than 56 mv some of the fast sodium channels are available and contribute to the rising phase of the action potential.
Keywords
sinus venosus
/
transmembrane potential
/
pacemaker cell
/
tetrodotoxin
Cite this article
Download citation ▾
Qin Wen-ning, Li Shao-ru.
Effect of tetrodotoxin on the transmembrane potential of the pacemaker cell in the sinus venosus of toad.
Current Medical Science, 1988, 8(2): 101-105 DOI:10.1007/BF02887804
| [1] |
WeidmannS. The effect of cardiac membrane potential on the rapid availability of the sodium-carrying system. J Physiol, 1955, 127: 213-24
|
| [2] |
NomaA, IrisawaH.. The effect of sodium ion on the initial phase of the sinoatrial pacemaker action potentials in rabbits. Jap J Physiol, 1974, 24: 617-32
|
| [3] |
NakayamaT, et al.. Action potential and membrane currents of single pacemaker cells of the rabbit heart. Pflügers Arch, 1984, 402: 248-57
|
| [4] |
HoffmanBF, CranefieldPF. Electrophysiology of the Heart, 1960WuhanMcGraw-Hill
|
| [6] |
IrisawaH. Comparative physiology of the cardiac pacemaker mechanism. Physiol Rev, 1978, 58: 461-98
|
| [7] |
BrownHF. Electrophysiology of the sinoatrial node. Physiol Rev, 1982, 62: 505-30
|
| [8] |
KeungECH, ArousonRS. Physiology of calcium current in cardiac muscle. Prog Cardiovasc Dis, 1983, 25: 279-96
|
| [9] |
ReuterH. Ion channels in cardiac cell membrane. Ann Rev Physiol, 1984, 46: 473-84
|
| [10] |
LipsiusSL, VassalleM. Action of tetrodotoxin on the upstroke of the sinus node action potential. Physiologist, 1977, 19: 273-273
|
| [11] |
NomaA, et al.. Inward membrane currents in the rabbit sinoatrial node cell. Pflügers Arch, 1977, 372: 43-51
|
| [12] |
NomaA, et al.. BonkeFIM, et al.. Ionic currents in rabbit sinoatrial node cells. The Sinus Node, Structure, Function and Clinical Relevance, 1980The HagueNijhoff
|
| [13] |
HoffmanBF. ResenbaumMB, ElizatiMB. Cardiac electrogenesis. Frontiers of Cardiac Electrophysiology, 1983The HagueNijhoff
|
| [14] |
TaylorJJ, et al.. The pacemaker cell of the sinoatrial node of the rabbit. Am J Physiol, 1978, 235: H407-12
|
| [15] |
OpthofT, et al.. Functional and morphological organization of the guinea-pig sinoatrial node compared with the rabbit sinoatrial node. J Mol Cell Cardiol, 1985, 17: 539-64
|
| [16] |
JamesTN. The sinus node. Am J Cardiol, 1977, 40: 965-8
|
| [17] |
KodamaI, BoyettMR. Regional differences in the electrical activity of the rabbit sinus node. Pflügers Arch, 1985, 404: 214-26
|