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Published on: June 14, 2016
Fibroblast Primary Cilia Are Required for Cardiac Fibrosis
Elisa Villalobos1,2, Alfredo Criollo1,2,3, Gabriele G Schiattarella1
1Departments of Internal Medicine (Cardiology) (E.V., A.C., G.G.S., F.A., K.M.F., H.I.M., N.J., N.U.N.N., A.F., H.A.S., T.G.G., S.L., J.A.H.), University of Texas Southwestern Medical Center, Dallas.
Insights
Primary cilia in adult heart fibroblasts are crucial for cardiac repair. Their absence impairs fibrogenesis and remodeling, linking polycystic kidney disease to heart abnormalities.
Area of Science:
- Cardiovascular Biology
- Cell Biology
- Regenerative Medicine
Background:
- Primary cilia are vital in vertebrate development, particularly the heart.
- Their presence and function in adult cardiac cells remained largely uncharacterized.
- Polycystic kidney disease, linked to ciliary gene mutations, has cardiovascular implications.
Purpose of the Study:
- To identify primary cilia in adult heart cells.
- To investigate the role of primary cilia in cardiac remodeling after injury.
- To explore the connection between ciliary function and cardiovascular manifestations of genetic disorders.
Main Methods:
- Histological analysis of cardiac tissues from mice and humans.
- Utilized specific antibodies to identify primary cilia, fibroblasts, and cardiomyocytes.
- Employed injury models (myocardial infarction, ischemia/reperfusion) and gene silencing techniques (PC1 in myofibroblasts).
Main Results:
- Primary cilia were exclusively identified in cardiac fibroblasts in mouse, rat, and human hearts.
- Ciliated fibroblasts were concentrated in areas of myocardial injury.
- Depletion of primary cilia or PC1 in fibroblasts impaired TGF-β1/SMAD3 signaling, ECM production, and contractile function, hindering cardiac remodeling.
Conclusions:
- Adult cardiac fibroblasts possess primary cilia, essential for fibrogenesis and cardiac repair.
- The primary cilium and PC1 are critical for transforming growth factor β-1 signaling, ECM synthesis, and fibroblast contractility.
- These findings highlight the primary cilium's role in pathological cardiac remodeling and suggest a direct link to cardiovascular issues in polycystic kidney disease.
Background:
The primary cilium is a singular cellular structure that extends from the surface of many cell types and plays crucial roles in vertebrate development, including that of the heart. Whereas ciliated cells have been described in developing heart, a role for primary cilia in adult heart has not been reported. This, coupled with the fact that mutations in genes coding for multiple ciliary proteins underlie polycystic kidney disease, a disorder with numerous cardiovascular manifestations, prompted us to identify cells in adult heart harboring a primary cilium and to determine whether primary cilia play a role in disease-related remodeling.
Methods:
Histological analysis of cardiac tissues from C57BL/6 mouse embryos, neonatal mice, and adult mice was performed to evaluate for primary cilia. Three injury models (apical resection, ischemia/reperfusion, and myocardial infarction) were used to identify the location and cell type of ciliated cells with the use of antibodies specific for cilia (acetylated tubulin, γ-tubulin, polycystin [PC] 1, PC2, and KIF3A), fibroblasts (vimentin, α-smooth muscle actin, and fibroblast-specific protein-1), and cardiomyocytes (α-actinin and troponin I). A similar approach was used to assess for primary cilia in infarcted human myocardial tissue. We studied mice silenced exclusively in myofibroblasts for PC1 and evaluated the role of PC1 in fibrogenesis in adult rat fibroblasts and myofibroblasts.
Results:
We identified primary cilia in mouse, rat, and human heart, specifically and exclusively in cardiac fibroblasts. Ciliated fibroblasts are enriched in areas of myocardial injury. Transforming growth factor β-1 signaling and SMAD3 activation were impaired in fibroblasts depleted of the primary cilium. Extracellular matrix protein levels and contractile function were also impaired. In vivo, depletion of PC1 in activated fibroblasts after myocardial infarction impaired the remodeling response.
Conclusions:
Fibroblasts in the neonatal and adult heart harbor a primary cilium. This organelle and its requisite signaling protein, PC1, are required for critical elements of fibrogenesis, including transforming growth factor β-1-SMAD3 activation, production of extracellular matrix proteins, and cell contractility. Together, these findings point to a pivotal role of this organelle, and PC1, in disease-related pathological cardiac remodeling and suggest that some of the cardiovascular manifestations of autosomal dominant polycystic kidney disease derive directly from myocardium-autonomous abnormalities.
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