CXCR4 Antagonism Reduces Cardiac Fibrosis and Improves Cardiac Performance in Dilated Cardiomyopathy
Po-Yin Chu1, Mandar S Joshi1, Duncan Horlock1
1Heart Failure Research Group, Baker Heart and Diabetes Institute, Melbourne, VIC, Australia.
Insights
Blocking the CXCR4 pathway with AMD3100 significantly reduced cardiac fibrosis and improved heart function in a mouse model of dilated cardiomyopathy, offering a new therapeutic target for heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Immunology
Background:
- Myocardial fibrosis contributes to heart failure, ventricular stiffness, and arrhythmia.
- Aldosterone and angiotensin II are known profibrotic mediators, but clinical reversal evidence is limited.
- Inflammatory mediators and unclear mechanisms in dilated cardiomyopathy (DCM) prompt further investigation.
Purpose of the Study:
- To investigate the role of SDF-1/CXCR4 signaling in DCM-induced cardiac fibrosis.
- To evaluate the therapeutic potential of CXCR4 antagonism (AMD3100) in a Mst1-induced DCM mouse model.
Main Methods:
- Utilized a cardiac-specific Mst1 transgenic mouse model of dilated cardiomyopathy.
- Administered AMD3100, a selective CXCR4 signaling antagonist.
- Assessed cardiac fibrosis, cardiac function (Langendorff perfusion), and gene/cell expression.
Main Results:
- AMD3100 significantly attenuated myocardial fibrosis progression in Mst1-DCM mice.
- CXCR4 antagonism improved both diastolic and systolic performance in isolated hearts.
- AMD3100 reduced BNP mRNA and splenic CD4+ T cell abundance but not Ca2+ handling genes.
Conclusions:
- The CXCR4 pathway is implicated in the pathogenesis of cardiac fibrosis in dilated cardiomyopathy.
- Targeting CXCR4 with antagonists like AMD3100 represents a novel therapeutic strategy for heart failure.
- Anti-fibrotic interventions can enhance systolic performance in heart failure models.
Abstract:
Background: Myocardial fibrosis is a key pathologic finding in the failing heart and is implicated as a cause of increased ventricular stiffness and susceptibility to ventricular arrhythmia. Neurohormonal mediators such as aldosterone and angiotensin II are known to cause fibrosis in experimental models, however, clinical evidence for the reversal of fibrosis with relevant antagonists is limited. Recent studies suggest that inflammatory mediators may contribute to fibrosis. In dilated cardiomyopathy the mechanism for myocardial fibrosis is unclear and its implications on systolic function are not known. Methods and Results: We studied the effect of a highly selective antagonist of SDF-1/CXCR4 signaling, AMD3100, on the development of cardiac fibrosis and cardiac function in mice with dilated cardiomyopathy due to cardiac-specific transgenic overexpression of the stress-kinase, Mst1. AMD3100 significantly attenuated the progression of myocardial fibrosis and this was accompanied by significant improvements in diastolic and systolic performance as evaluated in isolated Langendorff perfused hearts. AMD3100 reduced BNP mRNA expression but did not alter the expression of Ca2+ handling genes. CXCR4 antagonism also reduced the abundance of splenic CD4+ T cells. Conclusion: This study demonstrates that CXCR4 pathway contributes to pathogenesis of cardiac fibrosis in dilated cardiomyopathy, and it represents a new potential therapeutic target in heart failure. The data also demonstrate that anti-fibrotic strategies can improve systolic performance.
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