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Influence of pH on Ca²⁺ current and its control of electrical and Ca²⁺ signaling in ventricular myocytes
Noriko Saegusa1, Emma Moorhouse, Richard D Vaughan-Jones
1Department of Physiology, Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, Salt Lake City, UT 84112, USA.
Insights
Extracellular H+ ions inhibit, while intracellular H+ ions stimulate cardiac L-type Ca2+ current (I(Ca,L)). These opposing effects influence cardiac action potential duration and Ca2+ signaling during acid-base disturbances.
Area of Science:
- Cardiovascular Physiology
- Cellular Electrophysiology
- Ion Channel Modulation
Background:
- The effect of pH on cardiac L-type Ca2+ current (I(Ca,L)) is controversial.
- Discrepant findings necessitate further investigation into the specific roles of extracellular and intracellular pH.
Purpose of the Study:
- To investigate the pH sensitivity of I(Ca,L) in cardiac myocytes.
- To elucidate the distinct effects of extracellular (pH(o)) and intracellular (pH(i)) acidity on I(Ca,L) gating and function.
- To determine the impact of these pH-dependent modulations on cardiac action potential duration (APD) and Ca2+ signaling.
Main Methods:
- Whole-cell voltage clamp recordings in rabbit and guinea pig ventricular myocytes.
- Simultaneous measurement of intracellular Ca2+ ([Ca2+](i)) and intracellular pH (pH(i)) using epifluorescence microscopy.
- Kinetic analysis of channel gating and whole-cell modeling.
Main Results:
- Reduced pH(o) inhibited I(Ca,L) by shifting activation and inactivation curves rightward.
- Reduced pH(i) stimulated I(Ca,L) (especially when intracellular Ca2+ was buffered) by shifting curves leftward.
- pH(i) and pH(o) effects were additive, influencing APD and Ca2+ signaling, consistent with charge screening and channel block mechanisms.
Conclusions:
- Extracellular H+ ions inhibit cardiac I(Ca,L), while intracellular H+ ions can stimulate it.
- Differential pH sensitivity of I(Ca,L) significantly impacts cardiac electrical and Ca2+-dependent signaling.
- Understanding these mechanisms is crucial for managing cardiac function during acid-base disturbances.
Abstract:
Modulation of L-type Ca(2+) current (I(Ca,L)) by H(+) ions in cardiac myocytes is controversial, with widely discrepant responses reported. The pH sensitivity of I(Ca,L) was investigated (whole cell voltage clamp) while measuring intracellular Ca(2+) (Ca(2+)(i)) or pH(i) (epifluorescence microscopy) in rabbit and guinea pig ventricular myocytes. Selectively reducing extracellular or intracellular pH (pH(o) 6.5 and pH(i) 6.7) had opposite effects on I(Ca,L) gating, shifting the steady-state activation and inactivation curves to the right and left, respectively, along the voltage axis. At low pH(o), this decreased I(Ca,L), whereas at low pH(i), it increased I(Ca,L) at clamp potentials negative to 0 mV, although the current decreased at more positive potentials. When Ca(2+)(i) was buffered with BAPTA, the stimulatory effect of low pH(i) was even more marked, with essentially no inhibition. We conclude that extracellular H(+) ions inhibit whereas intracellular H(+) ions can stimulate I(Ca,L). Low pH(i) and pH(o) effects on I(Ca,L) were additive, tending to cancel when appropriately combined. They persisted after inhibition of calmodulin kinase II (with KN-93). Effects are consistent with H(+) ion screening of fixed negative charge at the sarcolemma, with additional channel block by H(+)(o) and Ca(2+)(i). Action potential duration (APD) was also strongly H(+) sensitive, being shortened by low pH(o), but lengthened by low pH(i), caused mainly by H(+)-induced changes in late Ca(2+) entry through the L-type Ca(2+) channel. Kinetic analyses of pH-sensitive channel gating, when combined with whole cell modeling, successfully predicted the APD changes, plus many of the accompanying changes in Ca(2+) signaling. We conclude that the pH(i)-versus-pH(o) control of I(Ca,L) will exert a major influence on electrical and Ca(2+)-dependent signaling during acid-base disturbances in the heart.
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