Back to results

Washington University in St. Louis

Cardiac PI3Kα Signaling and K+ Channel Regulation in Cardiac Hypertrophy and Heart Failure

Abstract

dc:description.abstract

Pathologic biomechanical stresses cause cardiac hypertrophy, which is associated with QT prolongation and increased risk of life-threatening ventricular arrhythmias. Previous studies demonstrated that repolarizing K<super>+</super> 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<super>+</super> currents are upregulated, in parallel with the increase in myocyte size, to maintain normal cardiac function. To explore this hypothesis directly, two mouse models of physiological hypertrophy, one produced by chronic exercise: swim-) training of wild type mice and the other by cardiac-specific expression of constitutively active phosphoinositide-3-kinase-p110&alpha;: caPI3K&alpha;), were utilized. Electrophysiological experiments revealed that repolarizing K<super>+</super> current amplitudes were increased and K<super>+</super> current densities were normalized in hypertrophied ventricular myocytes from swim-trained or caPI3K&alpha; animals. Molecular analyses revealed that increases in K<super>+</super>currents reflect the upregulation of the transcripts encoding the underlying K<super>+</super> channel subunits. Importantly, additional experiments demonstrated that the transcriptional upregulation of myocardial K<super>+</super> channel expression in response to exercise or augmented PI3K&alpha; signaling is independent of cellular hypertrophy and Akt signaling. The hypothesis that increased PI3K&alpha; signaling can counteract the adverse electrophysiological remodeling, including decreased K<super>+</super> current densities and impaired repolarization associated with pathological hypertrophy and heart failure was also explored. These experiments revealed that increased PI3K&alpha; signaling, but not renin-angiotensin system blockade, results in transcriptional upregulation of repolarizing K<super>+</super> channel subunits and normalization of K+ current densities in transverse aortic constriction: TAC)-induced pathological hypertrophy, as well as in a transgenic mouse model of dilated cardiomyopathy/heart failure. Increased PI3K&#945; signaling, therefore, normalizes ventricular action potential durations, QT intervals and cardiac electrical functioning in the hypertrophied and failing heart. Additional studies here applied a combined miRNA- and RNA-sequencing approach to define the impact of enhanced PI3K&alpha; signaling on myocardial transcriptome structure in the setting of pressure overload-induced pathological left ventricular hypertrophy. These analyses revealed that enhanced PI3K&alpha; signaling normalized miRNAs and mRNAs that were aberrantly expressed in pathological hypertrophy and that increased PI3K&alpha; signaling reduces cardiac fibrosis in pathological hypertrophy through the modulation of TGF-&beta; signaling and miR-21 expression. In conclusion, enhanced PI3K&alpha; signaling results in the transcriptional upregulation of K<super>+</super> channel subunits and the maintenance of cardiac excitability in physiological hypertrophy, and the impact of increased PI3K&alpha; signaling on K<super>+</super> channel regulation is independent of cellular hypertrophy and Akt. In addition, enhancing PI3K&alpha; signaling increases repolarizing K<super>+</super> currents and K<super>+</super> channel subunit expression in mouse models of pathological hypertrophy and heart failure, ameliorating arrhythmogenic electrical remodeling. Augmentation of PI3K&alpha; signaling, therefore, may be a useful and unique strategy to protect against the increased risk of ventricular arrhythmias and sudden death associated with cardiomyopathy. The results here also demonstrate the power and robustness of next-generation sequencing in efforts to define the cardiac transcriptome architecture and dynamics in physiological and pathological contexts, as well as to identify novel molecular mechanisms important in cardiovascular pathophysiology.

Degree

thesis:*
Name thesis:degree_name
Doctor of Philosophy (PhD)
Level thesis:degree_level
Dissertation
Discipline thesis:degree_discipline
Biology and Biomedical Sciences: Molecular Genetics and Genomics
Year dc:date.available
2012

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Yang, Kai-Chien
Contributors dc:contributor
  • Jeanne Nerbonne

Subjects

dc:subject × 9

Rights

Language dc:language
English (en)

Identifiers

dc:identifier.*
OAI identifier oai:identifier
oai:openscholarship.wustl.edu:etd-1668

Chain of custody

source
Harvested from
Washington University in St. Louis
Base URL
openscholarship.wustl.edu/do/oai/
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Yang, Kai-Chien. Cardiac PI3Kα Signaling and K+ Channel Regulation in Cardiac Hypertrophy and Heart Failure. Dissertation thesis, 2012. https://openscholarship.wustl.edu/etd/669