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Updated: May 28, 2026

Isolation, Culture, and Functional Characterization of Adult Mouse Cardiomyoctyes
Published on: September 24, 2013
Enhanced cardiac PI3Kα signalling mitigates arrhythmogenic electrical remodelling in pathological hypertrophy and
Kai-Chien Yang1, Patrick Y Jay, Julie R McMullen
1Department of Developmental Biology, Washington University Medical School, 660 South Euclid Avenue Box 8103, St Louis, MO 63110-1093, USA.
Insights
Enhanced phosphoinositide-3-kinase-α (PI3Kα) signaling counteracts adverse cardiac remodeling. This pathway upregulates potassium channels, normalizing repolarization and preserving heart function in hypertrophy and heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Electrophysiology
Background:
- Cardiac hypertrophy and heart failure often lead to QT prolongation and dangerous ventricular arrhythmias due to reduced potassium (K+) currents and impaired repolarization.
- Physiological cardiac hypertrophy in mice shows that increased phosphoinositide-3-kinase-α (PI3Kα) signaling upregulates K+ channels, normalizing repolarization.
Purpose of the Study:
- To investigate if enhanced PI3Kα signaling can counteract the detrimental electrophysiological changes associated with pathological cardiac hypertrophy and heart failure.
Main Methods:
- Studied mice with cardiac-specific expression of constitutively active PI3Kα (caPI3Kα) subjected to transverse aortic constriction (TAC) to induce hypertrophy.
- Examined a transgenic dilated cardiomyopathy model with and without enhanced PI3Kα signaling.
- Measured ventricular action potentials, QT intervals, K+ currents, and K+ channel transcripts.
Main Results:
- In TAC-induced hypertrophy, caPI3Kα expression prevented QT prolongation and action potential duration increase.
- caPI3Kα-expressing myocytes showed increased K+ currents and K+ channel transcripts, proportional to hypertrophy.
- In dilated cardiomyopathy, enhanced PI3Kα signaling, unlike renin-angiotensin system blockade, increased K+ currents and improved repolarization.
Conclusions:
- Enhanced PI3Kα signaling upregulates K+ channel subunits in pathological hypertrophy and heart failure.
- This leads to normalized K+ current densities and preserved ventricular function.
- Augmenting PI3Kα signaling is a potential strategy to prevent arrhythmias and sudden death in cardiomyopathy.
Aims:
Cardiac hypertrophy and heart failure are associated with QT prolongation and lethal ventricular arrhythmias resulting from decreased K(+) current densities and impaired repolarization. Recent studies in mouse models of physiological cardiac hypertrophy revealed that increased phosphoinositide-3-kinase-α (PI3Kα) signalling results in the up-regulation of K(+) channels and the normalization of ventricular repolarization. The experiments here were undertaken to test the hypothesis that increased PI3Kα signalling will counteract the adverse electrophysiological remodelling associated with pathological hypertrophy and heart failure.
Methods And Results:
In contrast to wild-type mice, left ventricular (LV) hypertrophy, induced by transverse aortic constriction (TAC), did not result in prolongation of ventricular action potentials or QT intervals in mice with cardiac-specific expression of constitutively active PI3Kα (caPI3Kα). Indeed, repolarizing K(+) currents and K(+) channel subunit transcripts were increased in caPI3Kα + TAC LV myocytes in proportion to the TAC-induced cellular hypertrophy. Congestive heart failure in a transgenic model of dilated cardiomyopathy model is accompanied by prolonged QT intervals and ventricular action potentials, reduced K(+) currents and K(+) channel transcripts. Increased PI3Kα signalling, but not renin-angiotensin system blockade, in this model also results in increased K(+) currents and improved ventricular repolarization.
Conclusion:
In the setting of pathological hypertrophy or heart failure, enhanced PI3Kα signalling results in the up-regulation of K(+) channel subunits, normalization of K(+) current densities and preserved ventricular function. Augmentation of PI3Kα signalling, therefore, may be a useful and unique strategy to protect against the increased risk of ventricular arrhythmias and sudden death associated with cardiomyopathy.
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