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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Regional acidosis locally inhibits but remotely stimulates Ca2+ waves in ventricular myocytes
Kerrie L Ford1, Emma L Moorhouse1, Mario Bortolozzi1,2
1Burdon Sanderson Cardiac Science Centre, Department of Physiology, Anatomy and Genetics, Oxford, OX1 3PT, UK.
Insights
Intracellular acidosis influences cardiac calcium waves through both inhibitory and stimulatory effects. Local acidosis inhibits waves, while remote sodium signals stimulate them, potentially driving arrhythmias.
Area of Science:
- Cardiology
- Cell Physiology
- Ion Transport
Background:
- Spontaneous Ca2+ waves in cardiomyocytes can trigger arrhythmias.
- Cytoplasmic H+ concentration ([H+]i) is a key regulator of Ca2+ waves, but its precise control mechanisms are unclear.
- Myocardial ischemia/reperfusion involves significant fluctuations in [H+]i.
Purpose of the Study:
- To investigate how intracellular pH ([H+]i) coordinates the initiation and frequency of spontaneous Ca2+ waves.
- To elucidate the mechanisms by which acidosis influences Ca2+ wave dynamics in cardiomyocytes.
Main Methods:
- Imaging of spontaneous Ca2+ waves in isolated rat ventricular myocytes using fluo-3.
- Induction of whole-cell intracellular acidosis using acetate-superfusion.
- Pharmacological inhibition of sarcolemmal Na+/H+ exchange (NHE1).
- Application of localized acidosis using a microfluidic device.
Main Results:
- Intracellular acidosis stimulated Ca2+ wave frequency and velocity.
- Inhibition of NHE1 prevented the stimulatory effect of acidosis, revealing an inhibitory role of H+.
- Localized acidosis inhibited Ca2+ waves in the acidic zone but stimulated them remotely.
- Remote stimulation was dependent on a locally evoked, NHE1-driven rise in intracellular Na+ ([Na+]i) that spread downstream.
Conclusions:
- Acidosis exerts dual control over Ca2+ waves via inhibitory H+ and stimulatory Na+ signals.
- Spatial heterogeneity in [H+]i leads to inhibition in acidic regions and stimulation in adjacent non-acidic regions.
- This localized inhibition and remote stimulation of arrhythmogenic Ca2+ signaling has implications for understanding arrhythmias in conditions like myocardial ischemia.
Aims:
Spontaneous Ca2+ waves in cardiomyocytes are potentially arrhythmogenic. A powerful controller of Ca2+ waves is the cytoplasmic H+ concentration ([H+]i), which fluctuates spatially and temporally in conditions such as myocardial ischaemia/reperfusion. H+-control of Ca2+ waves is poorly understood. We have therefore investigated how [H+]i co-ordinates their initiation and frequency.
Methods And Results:
Spontaneous Ca2+ waves were imaged (fluo-3) in rat isolated ventricular myocytes, subjected to modest Ca2+-overload. Whole-cell intracellular acidosis (induced by acetate-superfusion) stimulated wave frequency. Pharmacologically blocking sarcolemmal Na+/H+ exchange (NHE1) prevented this stimulation, unveiling inhibition by H+. Acidosis also increased Ca2+ wave velocity. Restricting acidosis to one end of a myocyte, using a microfluidic device, inhibited Ca2+ waves in the acidic zone (consistent with ryanodine receptor inhibition), but stimulated wave emergence elsewhere in the cell. This remote stimulation was absent when NHE1 was selectively inhibited in the acidic zone. Remote stimulation depended on a locally evoked, NHE1-driven rise of [Na+]i that spread rapidly downstream.
Conclusion:
Acidosis influences Ca2+ waves via inhibitory Hi+ and stimulatory Nai+ signals (the latter facilitating intracellular Ca2+-loading through modulation of sarcolemmal Na+/Ca2+ exchange activity). During spatial [H+]i-heterogeneity, Hi+-inhibition dominates in acidic regions, while rapid Nai+ diffusion stimulates waves in downstream, non-acidic regions. Local acidosis thus simultaneously inhibits and stimulates arrhythmogenic Ca2+-signalling in the same myocyte. If the principle of remote H+-stimulation of Ca2+ waves also applies in multicellular myocardium, it raises the possibility of electrical disturbances being driven remotely by adjacent ischaemic areas, which are known to be intensely acidic.
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