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Spontaneous calcium oscillations during diastole in the whole heart: the influence of ryanodine reception function
Bradley N Plummer1, Michael J Cutler, Xiaoping Wan
1Heart and Vascular Research Center, Department of Medicine, MetroHealth Campus, Case Western Reserve Univ, Cleveland, OH 44109-1997, USA.
Insights
Spontaneous calcium oscillations in the heart, linked to arrhythmias, are driven by calcium release from the sarcoplasmic reticulum. Surprisingly, reduced cell-to-cell coupling enhances these calcium events in heart tissue.
Area of Science:
- Cardiology
- Cellular Physiology
- Biophysics
Background:
- Spontaneous cytoplasmic calcium oscillations trigger arrhythmias in various diseases.
- The precise cellular mechanisms underlying these oscillations in heart tissue remain unclear.
- This study investigates the role of calcium release and diffusion in whole-heart calcium oscillations.
Purpose of the Study:
- To elucidate the mechanisms of spontaneous calcium oscillations in the whole heart.
- To test the hypothesis that calcium release from the sarcoplasmic reticulum and gap junction diffusion facilitate these oscillations.
- To investigate the effects of pharmacological agents on pacing-induced multicellular calcium oscillations.
Main Methods:
- Optical mapping of cytoplasmic calcium in Langendorff-perfused guinea pig hearts.
- Induction of diastolic calcium oscillations via rapid pacing.
- Application of ryanodine, caffeine, and carbenoxolone to assess their effects on calcium oscillations.
- Experiments in isolated myocytes to evaluate tissue-specific effects.
Main Results:
- Pacing-induced multicellular spontaneous calcium release (m-SCR) occurred across the heart tissue.
- Ryanodine abolished m-SCR activity, confirming sarcoplasmic reticulum involvement.
- Caffeine and carbenoxolone increased m-SCR amplitude and improved temporal synchronization.
- Carbenoxolone did not affect aftercontractions in isolated myocytes, indicating a tissue-specific effect.
Conclusions:
- Spontaneous calcium release from the sarcoplasmic reticulum is a key driver of m-SCR in the whole heart.
- Enhanced ryanodine receptor activity and, unexpectedly, decreased cell-to-cell coupling increase the amplitude and synchronization of these calcium events in tissue.
Abstract:
Triggered arrhythmias due to spontaneous cytoplasmic calcium oscillations occur in a variety of disease conditions; however, their cellular mechanisms in tissue are not clear. We hypothesize that spontaneous calcium oscillations in the whole heart are due to calcium release from the sarcoplasmic reticulum and are facilitated by calcium diffusion through gap junctions. Optical mapping of cytoplasmic calcium from Langendorff perfused guinea pig hearts (n = 10) was performed using oxygenated Tyrode's solution (in mM): 140 NaCl, 0.7 MgCl, 4.5 KCl, 5.5 dextrose, 5 HEPES, and 5.5 CaCl₂ (pH 7.45, 34°C). Rapid pacing was used to induce diastolic calcium oscillations. In all preparations, pacing-induced multicellular diastolic calcium oscillations (m-SCR) occurred across most of the mapping field, at all pacing rates tested. Ryanodine (1 μM) eliminated all m-SCR activity. Low-dose caffeine (1 mM) increased m-SCR amplitude (+10.4 ± 4.4%, P < 0.05) and decreased m-SCR time-to-peak (-17.4 ± 6.7%, P < 0.05) and its temporal synchronization (i.e., range) across the mapping field (-26.9 ± 17.1%, P < 0.05). Surprisingly, carbenoxolone increased the amplitude of m-SCR activity (+14.8 ± 4.1%, P < 0.05) and decreased m-SCR time-to-peak (-11.3 ± 9.6%, P < 0.01) and its synchronization (-37.0 ± 19.1%, P < 0.05), similar to caffeine. In isolated myocytes, carbenoxolone (50 μM) had no effect on the frequency of aftercontractions, suggesting the effect of cell-to-cell uncoupling on m-SCR activity is tissue specific. Therefore, in the whole heart, overt m-SCR activity caused by calcium release from the SR can be induced over a broad range of pacing rates. Enhanced ryanodine receptor open probability and, surprisingly, decreased cell-to-cell coupling increased the amplitude and temporal synchronization of spontaneous calcium release in tissue.
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