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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.
Abstract:
A hallmark of human and experimental heart failure is deficient sarcoplasmic reticulum (SR) Ca-uptake reflecting impaired contractile function. This is at least partially attributed to dephosphorylation of phospholamban by increased protein phosphatase 1 (PP1) activity. Indeed inhibition of PP1 by transgenic overexpression or gene-transfer of constitutively active inhibitor-1 improved Ca-cycling, preserved function and decreased fibrosis in small and large animal models of heart failure, suggesting that inhibitor-1 may represent a potential therapeutic target. We recently identified a novel human polymorphism (G109E) in the inhibitor-1 gene with a frequency of 7% in either normal or heart failure patients. Transgenic mice, harboring cardiac-specific expression of G109E inhibitor-1, exhibited decreases in contractility, Ca-kinetics and SR Ca-load. These depressive effects were relieved by isoproterenol stimulation. Furthermore, stress conditions (2Hz +/- Iso) induced increases in Ca-sparks, Ca-waves (60% of G109E versus 20% in wild types) and after-contractions (76% of G109E versus 23% of wild types) in mutant cardiomyocytes. Similar findings were obtained by acute expression of the G109E variant in adult cardiomyocytes in the absence or presence of endogenous inhibitor-1. The underlying mechanisms included reduced binding of mutant inhibitor-1 to PP1, increased PP1 activity, and dephosphorylation of phospholamban at Ser16 and Thr17. However, phosphorylation of the ryanodine receptor at Ser2808 was not altered while phosphorylation at Ser2814 was increased, consistent with increased activation of Ca/calmodulin-dependent protein kinase II (CaMKII), promoting aberrant SR Ca-release. Parallel in vivo studies revealed that mutant mice developed ventricular ectopy and complex ventricular arrhythmias (including bigeminy, trigeminy and ventricular tachycardia), when challenged with isoproterenol. Inhibition of CaMKII activity by KN-93 prevented the increased propensity to arrhythmias. These findings suggest that the human G109E inhibitor-1 variant impairs SR Ca-cycling and promotes arrhythmogenesis under stress conditions, which may present an additional insult in the compromised function of heart failure carriers.
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