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.

The Journal of Physiology
|October 27, 2010
PubMed

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.

Related Concept Videos

Electrophysiology of Normal Cardiac Rhythm01:19

Electrophysiology of Normal Cardiac Rhythm

The normal cardiac rhythm is a synchronized electrical activity that facilitates the regular and coordinated contraction of the heart muscle. This process is essential for efficient blood circulation throughout the body. The fundamental elements involved in establishing and maintaining this rhythm include the unique electrical properties of cardiac muscle cells, the sinoatrial (SA) node's pacemaker function, the specialized conducting system, and the ionic mechanisms underlying each phase of...
Heart Failure II: Pathophysiology01:29

Heart Failure II: Pathophysiology

Systolic Heart Failure and Compensatory MechanismsSystolic heart failure (also termed HFrEF, Heart Failure with Reduced Ejection Fraction) is the most prevalent type of heart filure. It results in a decreased volume of blood being pumped from the ventricle. The aortic arch and carotid sinuses have baroreceptors that detect reduced blood pressure, triggering the sympathetic nervous system (SNS) to release epinephrine and norepinephrine. Initially, this response aims to boost heart rate and...
Cellular Adaptation II: Hypertrophy01:26

Cellular Adaptation II: Hypertrophy

Hypertrophy is the increase in the size of individual cells, resulting in the enlargement of a tissue or organ. Unlike hyperplasia, which involves an increase in cell number, hypertrophy is characterized by an increase in cell volume. This process often occurs in response to higher functional demand or hormonal stimulation, leading to the production of more structural proteins and organelles, thereby enhancing the cells' work capacity.There are two primary types of hypertrophy: physiological...
Cardiac Action Potential01:30

Cardiac Action Potential

Cardiac action potentials are essential for proper heart function, enabling the rhythmic contractions needed for adequate blood circulation. Nodal cells and Purkinje fibers, specialized for electrical conduction, generate these action potentials.
The cardiac action potential process involves a series of phases characterized by the movement of ions across the cardiac cell membranes, leading to the depolarization and repolarization of the cardiac myocytes.
Ionic Basis of Cardiac Action Potentials
Regulation of Heart Rates01:31

Regulation of Heart Rates

The regulation of heart rate is a complex process controlled by the autonomic nervous system (ANS), hormonal influences, and intrinsic cardiac mechanisms. The ANS has two main components: the sympathetic nervous system (SNS) and the parasympathetic nervous system (PNS).
The SNS increases heart rate through the release of norepinephrine and epinephrine, which act on beta-1 adrenergic receptors in the heart. This action increases the rate of depolarization in the sinoatrial (SA) node, the heart's...
Pathophysiology of Cardiac Performance01:29

Pathophysiology of Cardiac Performance

Typical heart performance is influenced by heart rate, rhythm, myocardial contraction, and metabolism or blood flow. The cardiac muscle exhibits distinct electrophysiological features, including pacemaker activity and calcium channel control, which play a vital role in the heart's response to various drugs. The autonomic nervous system, comprising the sympathetic and parasympathetic branches, regulates heart rate. Sympathetic activation increases heart rate, while parasympathetic activation...