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January 1, 1984The Japanese Journal of Physiology51 citationsOpen Access

Effects of various intracellular Ca ion concentrations on the calcium current of guinea-pig single ventricular cells.

SKShinichiro KokubunHIHiroshi Irisawa

Key Points

  • The study aims to investigate how varying intracellular calcium concentrations influence the calcium current in guinea-pig ventricular cells.
  • Isolated single ventricular cells from guinea-pigs were studied using an intracellular perfusion technique.
  • Calcium current was measured across different extracellular calcium concentrations (0.01 to 5.4 mM) and various intracellular calcium levels (pCa 6.8 to 9.0).
  • The steady state inactivation was assessed using a double-pulse method to analyze the amplitude of calcium current.
  • Increasing extracellular calcium from 1.8 to 5.4 mM significantly increased the amplitude of calcium current, while reducing it to 0.01 mM decreased the amplitude.
  • At higher intracellular calcium concentrations, a notable reduction in the amplitude of calcium current was observed, indicating decreased conductance.
  • The steady state inactivation curve revealed that higher intracellular calcium concentrations led to greater inactivation of the calcium current at positive membrane potentials.

Abstract

The effects of changing the intracellular Ca concentration (Cai) on the calcium current (iCa) were studied in isolated single ventricular cells of the guinea-pig. Cai was varied by an intracellular perfusion technique using a suction pipette. iCa measured from internally perfused cells at a pCa lower than 9.0 was dependent on the extracellular Ca concentration (Cao). Increasing Cao from 1.8 to 5.4 mM increased the amplitude of iCa, and reduction of Cao from 1.8 to 0.01 mM decreased the amplitude. The inactivation time course of iCa became faster as Cao was increased and slower as Cao was reduced. By decreasing the pCa of the internal perfusate from 9.0 to 6.8, the amplitude of iCa was decreased markedly, but no significant change was observed in its time course. Analysis of the I-V curve led to the conclusion that a change in the driving force was not a major factor in the reduction of iCa. The "steady state inactivation" of iCa was measured by a double-pulse method. The amplitude of iCa elicited by the test pulse was smaller at pCa 7.4 than at pCa 9.0 at potentials of between -27 and +33 mV. By normalizing the iCa amplitude, however, the "steady state inactivation" curve in the control and at high Cai overlapped. Similar results were obtained in Sr-Tyrode solution. The degree of "steady state inactivation" of iCa at the potentials positive to +10 mV was larger in Ca-Tyrode than in Sr-Tyrode solution. It is proposed that the reduction in amplitude of iCa at higher Cai is caused by a reduction of the maximum conductance of iCa (gCa) and that Ca ions passing through iCa channels have a remarkable effect on its inactivation.

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Cite This Study

Kokubun et al. (1984) studied this question.

synapsesocial.com/papers/6a70850eaf0c21e9392851afhttps://doi.org/10.2170/jjphysiol.34.599
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