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April 1, 1991AJP Cell Physiology30 citations

External ATP-induced changes in Ca2+i and membrane currents in mammalian atrial myocytes

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YHYuji HiranoSAShinji AbeTST Sawanobori

Key Result

Externally applied ATP (100 microM) elicited a transient increase in intracellular calcium concentration and membrane depolarization in mammalian atrial myocytes via P2-receptors.

Key Points

  • The aim was to investigate how externally applied ATP affects intracellular calcium levels and membrane currents in atrial myocytes.
  • Fura-2 fluorescent digital-imaging microscopy was used to measure intracellular calcium concentration.
  • Whole cell patch-clamp recordings assessed membrane currents induced by ATP application.
  • Experiments involved various calcium channel blockers and removal of extracellular calcium to discern mechanisms.
  • Application of 100 µM ATP caused a transient increase in intracellular calcium concentration ([Ca2+]i).
  • Calcium influx was inhibited by Co2+, Ni2+, and verapamil, demonstrating the necessity of external calcium for the ATP effect.
  • ATP-induced depolarization was sustained despite interventions, indicating a persistent inward current linked to calcium influx.

Structured PICO

P
Population
Atrial myocytes isolated from rabbit and guinea pig hearts
I
Intervention
Externally applied ATP (100 microM)
C
Comparator
Adenosine, ADP, or baseline conditions
O
Outcome
Changes in intracellular calcium concentration ([Ca2+]i) and membrane currentssurrogate

In mammalian atrial myocytes, external ATP induces a transient increase in intracellular calcium via P2-receptors, driven by membrane depolarization and L-type calcium channel activation.

Abstract

Fura-2 fluorescent digital-imaging microscopy and whole cell patch-clamp recordings were used to study the effects of externally applied ATP on atrial myocytes isolated from rabbit and guinea pig hearts. Application of 100 microM ATP elicited a transient increase in intracellular calcium concentration (Ca2+i), which was not suppressed by theophylline, whereas adenosine and ADP failed to evoke the response. The Ca2+ transients were suppressed by the application of Co2+, Ni2+, or verapamil and by the removal of extracellular Ca2+, indicating that the inflow of external Ca2+ is necessary to evoke the response. The Ca2+ transient was suppressed also by ryanodine, suggesting that the mobilization of intracellular Ca2+ is another important factor. In the whole cell recordings, ATP induced a transient depolarization of the membrane potential due to the activation of a rapidly desensitizing inward current which persisted in the presence of Co2+, Ni2+, verapamil, or ryanodine. These results indicate that in mammalian atrial myocytes, ATP evoked transient increase in Ca2+i via P2-receptor, through the release of internally stored Ca2+ associated with the inflow of external Ca2+. This response seemed to be triggered mainly by the influx of Ca2+ through L-type Ca2+ channel activated by membrane depolarization, which was caused by the ATP-induced inward current.

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Cite This Study

Hirano et al. (1991) studied this question. Externally applied ATP was evaluated on Intracellular calcium concentration ([Ca2+]i) and membrane currents. Externally applied ATP (100 microM) elicited a transient increase in intracellular calcium concentration and membrane depolarization in mammalian atrial myocytes via P2-receptors.

synapsesocial.com/papers/6a22bb2665451dc9090e2886https://doi.org/10.1152/ajpcell.1991.260.4.c673
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