Selective Na(+) /Ca(2+) exchanger inhibition prevents Ca(2+) overload-induced triggered arrhythmias
Norbert Nagy1, Anita Kormos, Zsófia Kohajda
1MTA-SZTE Research Group of Cardiovascular Pharmacology, Hungarian Academy of Sciences, Szeged, Hungary.
Background And Purpose:
Augmented Na(+) /Ca(2+) exchanger (NCX) activity may play a crucial role in cardiac arrhythmogenesis; however, data regarding the anti-arrhythmic efficacy of NCX inhibition are debatable. Feasible explanations could be the unsatisfactory selectivity of NCX inhibitors and/or the dependence of the experimental model on the degree of Ca(2+) i overload. Hence, we used NCX inhibitors SEA0400 and the more selective ORM10103 to evaluate the efficacy of NCX inhibition against arrhythmogenic Ca(2+) i rise in conditions when [Ca(2+) ]i was augmented via activation of the late sodium current (INaL ) or inhibition of the Na(+) /K(+) pump.
Experimental Approach:
Action potentials (APs) were recorded from canine papillary muscles and Purkinje fibres by microelectrodes. NCX current (INCX ) was determined in ventricular cardiomyocytes utilizing the whole-cell patch clamp technique. Ca(2+) i transients (CaTs) were monitored with a Ca(2+) -sensitive fluorescent dye, Fluo-4.
Key Results:
Enhanced INaL increased the Ca(2+) load and AP duration (APD). SEA0400 and ORM10103 suppressed INCX and prevented/reversed the anemone toxin II (ATX-II)-induced [Ca(2+) ]i rise without influencing APD, CaT or cell shortening, or affecting the ATX-II-induced increased APD. ORM10103 significantly decreased the number of strophanthidin-induced spontaneous diastolic Ca(2+) release events; however, SEA0400 failed to restrict the veratridine-induced augmentation in Purkinje-ventricle APD dispersion.
Conclusions And Implications:
Selective NCX inhibition - presumably by blocking rev INCX (reverse mode NCX current) - is effective against arrhythmogenesis caused by [Na(+) ]i -induced [Ca(2+) ]i elevation, without influencing the AP waveform. Therefore, selective INCX inhibition, by significantly reducing the arrhythmogenic trigger activity caused by the perturbed Ca(2+) i handling, should be considered as a promising anti-arrhythmic therapeutic strategy.
Insights
Selective inhibition of the sodium-calcium exchanger (NCX) effectively combats cardiac arrhythmias caused by elevated intracellular calcium. This targeted approach offers a promising therapeutic strategy for treating heart rhythm disorders.
Area of Science:
- Cardiology
- Electrophysiology
- Pharmacology
Background:
- Augmented sodium-calcium exchanger (NCX) activity is implicated in cardiac arrhythmias.
- Previous studies on NCX inhibitors for anti-arrhythmic effects yielded debatable results, possibly due to inhibitor selectivity and experimental models.
Purpose of the Study:
- To evaluate the efficacy of NCX inhibition against arrhythmogenic intracellular calcium ([Ca(2+)]i) rise.
- To compare the effects of non-selective (SEA0400) and selective (ORM10103) NCX inhibitors.
Main Methods:
- Action potentials (APs) recorded from canine cardiac tissues.
- NCX current (INCX) measured in cardiomyocytes using whole-cell patch clamp.
- Intracellular calcium transients (CaTs) monitored using a fluorescent dye.
Main Results:
- Both SEA0400 and ORM10103 suppressed INCX and reversed calcium overload without altering AP duration or calcium transients.
- ORM10103 reduced spontaneous calcium release events, while SEA0400 did not prevent APD dispersion.
Conclusions:
- Selective NCX inhibition, likely via blocking reverse mode NCX current, effectively prevents NCX-mediated arrhythmogenesis.
- Selective NCX inhibition is a promising anti-arrhythmic strategy by mitigating arrhythmogenic triggers from perturbed calcium handling.
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