Human G109E-inhibitor-1 impairs cardiac function and promotes arrhythmias

Kobra Haghighi1, Tracy J Pritchard1, Guan-Sheng Liu1

  • 1Department of Pharmacology and Cell Biophysics, University of Cincinnati, College of Medicine, Cincinnati, OH 45267, United States.

Insights

A common human variant of inhibitor-1 (G109E) impairs heart muscle function by disrupting calcium handling. This genetic change increases arrhythmia risk in heart failure patients, especially under stress.

Area of Science:

  • Cardiovascular Physiology
  • Molecular Cardiology
  • Genetics of Heart Disease

Background:

  • Heart failure is characterized by impaired sarcoplasmic reticulum (SR) calcium uptake and reduced contractile function.
  • Increased protein phosphatase 1 (PP1) activity contributes to phospholamban dephosphorylation, exacerbating heart failure.
  • Inhibitor-1, a PP1 inhibitor, has shown therapeutic potential in animal models of heart failure.

Purpose of the Study:

  • To investigate the functional consequences of a novel human G109E inhibitor-1 polymorphism.
  • To determine the impact of G109E inhibitor-1 on cardiac calcium handling and arrhythmogenesis.
  • To elucidate the underlying molecular mechanisms of G109E inhibitor-1 effects in the heart.

Main Methods:

  • Generation of transgenic mice with cardiac-specific expression of G109E inhibitor-1.
  • Assessment of cardiomyocyte contractility, calcium kinetics, and SR calcium load.
  • Electrophysiological studies in isolated cardiomyocytes and in vivo arrhythmia monitoring.
  • Biochemical analysis of phospholamban and ryanodine receptor phosphorylation, and PP1 activity.

Main Results:

  • G109E inhibitor-1 expression reduced cardiac contractility, slowed calcium kinetics, and decreased SR calcium load.
  • Mutant cardiomyocytes exhibited increased calcium sparks, waves, and aftercontractions under stress.
  • G109E inhibitor-1 impaired PP1 binding, increased PP1 activity, and altered phospholamban phosphorylation.
  • Increased ryanodine receptor phosphorylation at Ser2814 and CaMKII activation were observed.
  • G109E mutant mice showed increased susceptibility to ventricular arrhythmias, preventable by CaMKII inhibition.

Conclusions:

  • The human G109E inhibitor-1 variant impairs SR calcium cycling and promotes arrhythmogenesis.
  • These effects are mediated by reduced PP1 inhibition, altered phospholamban and ryanodine receptor phosphorylation, and CaMKII activation.
  • G109E inhibitor-1 may represent an additional risk factor for arrhythmias in heart failure patients.

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