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Updated: Jun 6, 2026

Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
Dyssynchrony of Ca2+ release from the sarcoplasmic reticulum as subcellular mechanism of cardiac contractile
Frank R Heinzel1, Niall MacQuaide, Liesbeth Biesmans
1Division of Cardiology, Medical University of Graz, Austria.
Insights
Electrical dyssynchrony in heart failure impairs cardiac contractility. Subcellular calcium release disruptions reduce the gain of calcium-induced calcium release, impacting myocyte function.
Area of Science:
- Cardiology
- Cellular Biology
- Biophysics
Background:
- Cardiac contractile function relies on coordinated electrical activation.
- Ventricular dyssynchrony contributes to heart failure and is a target for resynchronization therapy.
- Cellular excitation-contraction coupling involves organized intracellular structures coordinating calcium release.
Purpose of the Study:
- To investigate the role of subcellular calcium release synchronization in cardiac contractility.
- To understand how dyssynchrony at the cellular level impacts myocardial function in heart failure.
Main Methods:
- Analysis of calcium-induced calcium release (CICR) gain.
- Examination of structural and functional changes in calcium handling proteins (e.g., RyR).
- Investigation of the role of t-tubule loss in calcium release dyssynchrony.
Main Results:
- Lack of synchronization in localized calcium release events contributes to contractile dysfunction.
- Changes in sarcolemmal calcium channels and ryanodine receptors (RyR) are implicated.
- Loss of t-tubules disrupts the spatial organization of calcium release.
Conclusions:
- Subcellular dyssynchrony reduces the overall gain of CICR.
- This reduction in CICR gain is a key determinant of myocyte contractility in heart failure.
- Restoring subcellular calcium release synchrony may be a therapeutic strategy.
Abstract:
Cardiac contractile function depends on coordinated electrical activation throughout the heart. Dyssynchronous electrical activation of the ventricles has been shown to contribute to contractile dysfunction in heart failure, and resynchronization therapy has emerged as a therapeutic concept. At the cellular level, coupling of membrane excitation to myofilament contraction is facilitated by highly organized intracellular structures which coordinate Ca(2+) release. The cytosolic [Ca(2+)] transient triggered by depolarization-induced Ca(2+) influx is the result of a gradable and robust high gain process, Ca(2+)-induced Ca(2+) release (CICR), which integrates subcellular localized Ca(2+) release events. Lack of synchronization of these localized release events can contribute to contractile dysfunction in myocardial hypertrophy and heart failure. Different underlying mechanisms relate to functional and structural changes in sarcolemmal Ca(2+) channels, the sarcoplasmic Ca(2+) release channel or ryanodine receptor, RyR, their intracellular arrangement in close proximity in couplons and the loss of t-tubules. Dyssynchrony at the subcellular level translates in a reduction of the overall gain of CICR at the cellular level and forms an important determinant of myocyte contractility in heart failure.
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