International audienceMembrane acid extrusion by Na(+)/H(+) exchange (NHE1) and Na(+)-HCO3(-) co-transport (NBC) is essential for maintaining a low cytoplasmic [H(+)] (∼60 nm, equivalent to an intracellular pH (pHi) of 7.2). This protects myocardial function from the high chemical reactivity of H(+) ions, universal end-products of metabolism. We show here that, in rat ventricular myocytes, fluorescent antibodies map the NBC isoforms NBCe1 and NBCn1 to lateral sarcolemma, intercalated discs and transverse tubules (t-tubules), while NHE1 is absent from t-tubules. This unexpected difference matches functional measurements of pHi regulation (using AM-loaded SNARF-1, a pH fluorophore). Thus, myocyte detubulation (by transient exposure to 1.5 m f...
At the same intracellular pH (pHi) Na+/H+ exchange (NHE-1) fluxes of ventricular myocytes of hypertr...
Aims In cardiomyocytes, acute disturbances to intracellular pH (pHi) are promptly corrected by a sys...
AIMS: Spontaneous Ca2+ waves in cardiomyocytes are potentially arrhythmogenic. A powerful controller...
Membrane acid extrusion by Na(+)/H(+) exchange (NHE1) and Na(+)-HCO3(-) co-transport (NBC) is essent...
AbstractPassive H+-ion mobility within eukaryotic cells is low, due to H+-ion binding to cytoplasmic...
AIMS: Intracellular pH (pHi), an important modulator of cardiac function, is normally regulated to w...
Passive H(+)-ion mobility within eukaryotic cells is low, due to H(+)-ion binding to cytoplasmic buf...
Acid extrusion on Na(+)-coupled pH-regulatory proteins (pH-transporters), Na(+)/H(+) exchange (NHE1)...
In the cardiac myocyte, an adequate intracellular proton mobility is necessary for coupling sarcolem...
Acid extrusion on Na+-coupled pH-regulatory proteins (pH-transporters), Na+/H+ exchange (NHE1) and N...
In the heart, intracellular Na(+) concentration (Na(+) (i)) is a controller of intracellular Ca(2+) ...
AIMS: Contraction of the heart is regulated by electrically evoked Ca(2+) transients (CaTs). H(+) io...
Abstract—H ions are powerful modulators of cardiac function, liberated during metabolic activity. A...
Intracellular pH (pH(i)) is an important modulator of cardiac function. The spatial regulation of pH...
H(+) ions are powerful modulators of cardiac function, liberated during metabolic activity. Among th...
At the same intracellular pH (pHi) Na+/H+ exchange (NHE-1) fluxes of ventricular myocytes of hypertr...
Aims In cardiomyocytes, acute disturbances to intracellular pH (pHi) are promptly corrected by a sys...
AIMS: Spontaneous Ca2+ waves in cardiomyocytes are potentially arrhythmogenic. A powerful controller...
Membrane acid extrusion by Na(+)/H(+) exchange (NHE1) and Na(+)-HCO3(-) co-transport (NBC) is essent...
AbstractPassive H+-ion mobility within eukaryotic cells is low, due to H+-ion binding to cytoplasmic...
AIMS: Intracellular pH (pHi), an important modulator of cardiac function, is normally regulated to w...
Passive H(+)-ion mobility within eukaryotic cells is low, due to H(+)-ion binding to cytoplasmic buf...
Acid extrusion on Na(+)-coupled pH-regulatory proteins (pH-transporters), Na(+)/H(+) exchange (NHE1)...
In the cardiac myocyte, an adequate intracellular proton mobility is necessary for coupling sarcolem...
Acid extrusion on Na+-coupled pH-regulatory proteins (pH-transporters), Na+/H+ exchange (NHE1) and N...
In the heart, intracellular Na(+) concentration (Na(+) (i)) is a controller of intracellular Ca(2+) ...
AIMS: Contraction of the heart is regulated by electrically evoked Ca(2+) transients (CaTs). H(+) io...
Abstract—H ions are powerful modulators of cardiac function, liberated during metabolic activity. A...
Intracellular pH (pH(i)) is an important modulator of cardiac function. The spatial regulation of pH...
H(+) ions are powerful modulators of cardiac function, liberated during metabolic activity. Among th...
At the same intracellular pH (pHi) Na+/H+ exchange (NHE-1) fluxes of ventricular myocytes of hypertr...
Aims In cardiomyocytes, acute disturbances to intracellular pH (pHi) are promptly corrected by a sys...
AIMS: Spontaneous Ca2+ waves in cardiomyocytes are potentially arrhythmogenic. A powerful controller...