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Published on: February 17, 2023
CXCR4 modulates contractility in adult cardiac myocytes
Robert T Pyo1, Jinliang Sui, Ashwini Dhume
1Zena and Michael A. Wiener Cardiovascular Institute, The Mount Sinai School of Medicine, New York, NY 10029, USA.
Insights
The chemokine CXCL12 (stromal cell-derived factor) and its receptor CXCR4 directly impair heart muscle cell function. This discovery reveals CXCR4 as a potential new target for treating heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Immunology
Background:
- Inflammation is key in heart failure development.
- Chemokines and receptors modulate inflammation and may affect heart function.
- Elevated CXCL12 and CXCR4 levels are observed in heart failure patients.
Purpose of the Study:
- To investigate the direct impact of the CXCL12/CXCR4 system on cardiac function, independent of leukocytes.
- To elucidate the mechanism by which CXCL12 affects myocardial cells.
Main Methods:
- Experiments using murine papillary muscles and adult rat cardiac myocytes.
- Treatment with CXCL12 and the CXCR4 inhibitor AMD3100.
- Adenoviral overexpression of CXCR4.
- Electrophysiologic studies on calcium channel activity.
Main Results:
- CXCL12 treatment blunted inotropic responses and diminished calcium transients in cardiac myocytes.
- These negative inotropic effects were reversed by AMD3100.
- CXCR4 overexpression exacerbated CXCL12's negative effects.
- CXCL12 attenuated beta-adrenergic responses and reduced L-type calcium channel activation.
Conclusions:
- CXCR4 activation directly causes negative inotropic effects on cardiac myocytes.
- The mechanism involves altered cardiac membrane calcium channel activity.
- CXCR4 on cardiac myocytes presents a novel therapeutic target for cardiac dysfunction.
Abstract:
The inflammatory response is critical to the development and progression of heart failure. Chemokines and their receptors are a distinct class of inflammatory modulators that may play a role in mediating myocardial dysfunction in heart failure. Levels of the chemokine CXCL12, also known as stromal cell-derived factor (SDF), and its receptor, CXCR4, are elevated in patients with heart failure, and we undertook this study to determine whether this chemokine system can directly affect cardiac function in the absence of leukocytes. Murine papillary muscles and adult rat cardiac myocytes treated with CXCL12, the only identified ligand of CXCR4, demonstrate blunted inotropic responses to physiologic concentrations of calcium. The negative inotropic effects on cardiac myocytes are accompanied by a proportional diminution of calcium transients. The effects are abrogated by AMD3100, a specific CXCR4 inhibitor. Overexpression of the receptor through adenoviral infection with a CXCR4 construct accentuates the negative inotropic effects of CXCL12 on cardiac myocytes during calcium stimulation. CXCR4 activation also attenuates beta-adrenergic-mediated increases in calcium mobilization and fractional shortening in cardiac myocytes. In electrophysiologic studies, CXCL12 decreases forskolin- and isoproterenol-induced voltage-gated L-type calcium channel activation. These studies demonstrate that activation of CXCR4 results in a direct negative inotropic modulation of cardiac myocyte function. The specific mechanism of action involves alterations of calcium channel activity on the membrane. The presence of functional CXCR4 on cardiac myocytes introduces a new target for treating cardiac dysfunction.
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