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Published on: May 5, 2020
Homeostatic regulation of electrical excitability in physiological cardiac hypertrophy
Kai-Chien Yang1, Nicholas C Foeger, Céline Marionneau
1Department of Developmental Biology, Washington University Medical School, St Louis, MO 63110-1093, USA.
Insights
Physiological cardiac hypertrophy, unlike pathological hypertrophy, maintains normal heart electrical function. This is achieved by increasing repolarizing potassium (K+) currents and ion channel expression, preventing arrhythmias.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Electrophysiology
Background:
- Pathological cardiac hypertrophy, often caused by stress, leads to electrical instability, including QT prolongation and arrhythmias, due to decreased repolarizing potassium (K+) currents.
- Physiological hypertrophy, such as from exercise, typically does not cause electrical abnormalities, suggesting compensatory mechanisms maintain normal cardiac function.
Purpose of the Study:
- To investigate the hypothesis that physiological hypertrophy involves an upregulation of repolarizing K+ currents to maintain normal cardiac electrical function.
- To compare the electrophysiological and molecular characteristics of physiological hypertrophy induced by swim-training and PI3Kα activation with pathological hypertrophy.
Main Methods:
- Whole-cell voltage-clamp electrophysiology was used to measure ion channel currents in ventricular myocytes from swim-trained mice and mice with cardiac-specific expression of constitutively active phosphoinositide-3-kinase-p110α (caPI3Kα).
- Electrocardiography and action potential recordings were performed in swim-trained animals.
- Quantitative real-time PCR was used to assess the expression of ion channel subunit transcripts.
Main Results:
- Repolarizing K+ current amplitudes were significantly increased in ventricular myocytes from both swim-trained and caPI3Kα models, with current densities normalized or increased relative to cell size.
- Swim-trained animals showed preserved electrical function, with normal QT intervals and action potential waveforms.
- Expression of transcripts for K+, Ca2+, and other ion channel subunits was elevated in both physiological hypertrophy models, correlating with myocyte size and overall RNA expression.
Conclusions:
- Physiological cardiac hypertrophy, induced by exercise or PI3Kα signaling, functionally upregulates repolarizing K+ (and depolarizing Ca2+) channels, preserving normal myocardial electrical function.
- Increased expression of ion channel subunit transcripts underlies the enhanced current amplitudes and normalized current densities observed.
- Activation of PI3Kα signaling may protect against arrhythmias associated with pathological cardiac hypertrophy by maintaining electrical stability.
Abstract:
Pathological biomechanical stresses cause cardiac hypertrophy, which is associated with QT prolongation and arrhythmias. Previous studies have demonstrated that repolarizing K(+) current densities are decreased in pressure overload-induced left ventricular hypertrophy, resulting in action potential and QT prolongation. Cardiac hypertrophy also occurs with exercise training, but this physiological hypertrophy is not associated with electrical abnormalities or increased arrhythmia risk, suggesting that repolarizing K(+) currents are upregulated, in parallel with the increase in myocyte size, to maintain normal cardiac function. To explore this hypothesis directly, electrophysiological recordings were obtained from ventricular myocytes isolated from two mouse models of physiological hypertrophy, one produced by swim-training of wild-type mice and the other by cardiac-specific expression of constitutively active phosphoinositide-3-kinase-p110α (caPI3Kα). Whole-cell voltage-clamp recordings revealed that repolarizing K(+) current amplitudes were higher in ventricular myocytes isolated from swim-trained and caPI3Kα, compared with wild-type, animals. The increases in K(+) current amplitudes paralleled the observed cellular hypertrophy, resulting in normalized or increased K(+) current densities. Electrocardiographic parameters, including QT intervals, as well as ventricular action potential waveforms in swim-trained animals/myocytes were indistinguishable from controls, demonstrating preserved electrical function. Additional experiments revealed that inward Ca(2+) current amplitudes/densities were also increased in caPI3Kα, compared with WT, left ventricular myocytes. The expression of transcripts encoding K(+), Ca(2+) and other ion channel subunits was increased in swim-trained and caPI3Kα ventricles, in parallel with the increase in myocyte size and with the global increases in total cellular RNA expression. In contrast to pathological hypertrophy, therefore, the functional expression of repolarizing K(+) (and depolarizing Ca(2+)) channels is increased with physiological hypertrophy, reflecting upregulation of the underlying ion channel subunit transcripts and resulting in increased current amplitudes and the normalization of current densities and action potential waveforms. Taken together, these results suggest that activation of PI3Kα signalling preserves normal myocardial electrical functioning and could be protective against the increased risk of arrhythmias and sudden death that are prevalent in pathological cardiac hypertrophy.
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