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Suppression of Pro-fibrotic Signaling Potentiates Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts into Induced Cardiomyocytes
Published on: June 3, 2018
Correcting dilated cardiomyopathy with fibroblast-targeted p38 deficiency
Abstract:
Inherited mutations in contractile and structural genes, which decrease cardiomyocyte tension generation, are principal drivers of dilated cardiomyopathy (DCM)- the leading cause of heart failure 1,2 . Progress towards developing precision therapeutics for and defining the underlying determinants of DCM has been cardiomyocyte centric with negligible attention directed towards fibroblasts despite their role in regulating the best predictor of DCM severity, cardiac fibrosis 3,4 . Given that failure to reverse fibrosis is a major limitation of both standard of care and first in class precision therapeutics for DCM, this study examined whether cardiac fibroblast-mediated regulation of the heart's material properties is essential for the DCM phenotype. Here we report in a mouse model of inherited DCM that prior to the onset of fibrosis and dilated myocardial remodeling both the myocardium and extracellular matrix (ECM) stiffen from switches in titin isoform expression, enhanced collagen fiber alignment, and expansion of the cardiac fibroblast population, which we blocked by genetically suppressing p38α in cardiac fibroblasts. This fibroblast-targeted intervention unexpectedly improved the primary cardiomyocyte defect in contractile function and reversed ECM and dilated myocardial remodeling. Together these findings challenge the long-standing paradigm that ECM remodeling is a secondary complication to inherited defects in cardiomyocyte contractile function and instead demonstrate cardiac fibroblasts are essential contributors to the DCM phenotype, thus suggesting DCM-specific therapeutics will require fibroblast-specific strategies.
Insights
Dilated cardiomyopathy (DCM) research overlooks cardiac fibroblasts. Targeting fibroblasts in DCM mice unexpectedly improved heart function and reversed cardiac remodeling, revealing fibroblasts as key disease contributors.
Area of Science:
- Cardiovascular Biology
- Fibrosis Research
- Genetic Medicine
Background:
- Dilated cardiomyopathy (DCM) is driven by cardiomyocyte mutations, leading to heart failure.
- Current DCM research and therapies focus on cardiomyocytes, neglecting fibroblasts' role in cardiac fibrosis.
- Cardiac fibrosis is a key determinant of DCM severity and limits therapeutic efficacy.
Approach:
- Investigated the role of cardiac fibroblasts in DCM pathogenesis using a mouse model.
- Examined early myocardial and extracellular matrix (ECM) stiffening preceding fibrosis and remodeling.
- Genetically suppressed p38α in cardiac fibroblasts to assess its impact on DCM progression.
Key Points:
- Inherited DCM involves early myocardial and ECM stiffening due to titin isoform switches, collagen alignment, and fibroblast expansion.
- Suppressing p38α in cardiac fibroblasts prevented these early changes.
- Fibroblast-targeted intervention unexpectedly improved cardiomyocyte contractile function and reversed ECM/myocardial remodeling.
Conclusions:
- Cardiac fibroblasts are essential contributors to the DCM phenotype, not just secondary responders.
- ECM remodeling is not solely a consequence of cardiomyocyte defects in DCM.
- Future DCM therapeutics must incorporate fibroblast-specific strategies for effective treatment.
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