Related Experiment Video
Updated: May 16, 2026

Preclinical Cardiac Electrophysiology Assessment by Dual Voltage and Calcium Optical Mapping of Human Organotypic Cardiac Slices
Published on: June 16, 2020
Cardiac sodium-calcium exchange and efficient excitation-contraction coupling: implications for heart disease
Joshua I Goldhaber1, Kenneth D Philipson
1Cedars-Sinai Heart Institute, Los Angeles, CA 90048, USA. goldhaberj@cshs.org
Insights
Sodium-calcium exchange (NCX) regulates cardiac contractility independently of calcium stores. This mechanism is crucial for heart function, suggesting NCX manipulation could treat heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- Cardiovascular disease is a leading global cause of death.
- Heart failure and arrhythmias are major contributors to cardiac mortality.
- Sodium-calcium exchange (NCX) is the primary calcium efflux pathway in cardiac cells.
Purpose of the Study:
- To investigate the role of NCX in cardiac contractility.
- To determine if NCX regulates contractility independently of sarcoplasmic reticulum calcium load.
Main Methods:
- Utilized ventricular-specific NCX knockout mice.
- Analyzed excitation-contraction coupling mechanisms in these mice.
Main Results:
- NCX was found to be essential for cardiac contractility.
- NCX regulates contractility independently of sarcoplasmic reticulum calcium load.
- NCX knockout mice exhibit altered excitation-contraction coupling.
Conclusions:
- NCX is a critical regulator of cardiac contractility.
- Targeting NCX may offer a therapeutic strategy for heart failure.
Abstract:
Cardiovascular disease is a leading cause of death worldwide, with ischemic heart disease alone accounting for >12% of all deaths, more than HIV/AIDS, tuberculosis, lung, and breast cancer combined. Heart disease has been the leading cause of death in the United States for the past 85 years and is a major cause of disability and health-care expenditures. The cardiac conditions most likely to result in death include heart failure and arrhythmias, both a consequence of ischemic coronary disease and myocardial infarction, though chronic hypertension and valvular diseases are also important causes of heart failure. Sodium-calcium exchange (NCX) is the dominant calcium (Ca2+) efflux mechanism in cardiac cells. Using ventricular-specific NCX knockout mice, we have found that NCX is also an essential regulator of cardiac contractility independent of sarcoplasmic reticulum Ca2+ load. During the upstroke of the action potential, sodium (Na+) ions enter the diadic cleft space between the sarcolemma and the sarcoplasmic reticulum. The rise in cleft Na+, in conjunction with depolarization, causes NCX to transiently reverse. Ca2+ entry by this mechanism then "primes" the diadic cleft so that subsequent Ca2+ entry through Ca2+ channels can more efficiently trigger Ca2+ release from the sarcoplasmic reticulum. In NCX knockout mice, this mechanism is inoperative (Na+ current has no effect on the Ca2+ transient), and excitation-contraction coupling relies upon the elevated diadic cleft Ca2+ that arises from the slow extrusion of cytoplasmic Ca2+ by the ATP-dependent sarcolemmal Ca2+ pump. Thus, our data support the conclusion that NCX is an important regulator of cardiac contractility. These findings suggest that manipulation of NCX may be beneficial in the treatment of heart failure.
More Related Videos
Related Concept Videos
Electrophysiology of Normal Cardiac Rhythm
Cardiac Action Potential
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
Mechanism of Cardiac Arrhythmias
Antihypertensive Drugs: Action of Calcium Channel Blockers
Antianginal Drugs: Calcium Channel Blockers and Ranolazine
CCBs, a diverse class that includes dihydropyridines (nifedipine) and diphenylalkylamines (verapamil and diltiazem), exert their effect by blocking calcium channels in cardiac and smooth muscle cells. This...
Voltage-gated Ion Channels
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...

