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Published on: May 15, 2015
Relationship of Iron Deposition to Calcium Deposition in Human Aortic Valve Leaflets
Marion Morvan1, Dimitri Arangalage2, Grégory Franck1
1National Institute of Health and Medical Research U1148, Paris, France.
Insights
Intraleaflet hematomas, caused by red blood cell entry into aortic valves, promote an osteoblastic phenotype in valvular interstitial cells (VICs), initiating calcification. This finding clarifies a key mechanism in aortic valve disease progression.
Area of Science:
- Cardiovascular Biology
- Valvular Heart Disease
- Cellular Pathophysiology
Background:
- Intraleaflet hematomas are linked to advanced aortic valve calcification and disease progression.
- The precise mechanism by which blood cells influence valvular interstitial cells (VICs) in this context is unclear.
Purpose of the Study:
- To investigate the relationship between intraleaflet hematoma and aortic valve calcification.
- To determine the pathophysiological impact of intraleaflet hematomas on VICs.
Main Methods:
- Analysis of human aortic valves using whole-mount staining and microscopy to assess spatial relationships between hematomas and calcium.
- Evaluation of endothelial microfissuring via immunofluorescence and scanning electron microscopy.
- In vitro studies using red blood cell (RBC) preparations to assess VIC phenotypic changes.
Main Results:
- Intraleaflet hematomas, identified by iron and RBCs in the fibrosa secondary to endothelial microfissuring, were present in noncalcified valves.
- Contact between VICs and RBCs induced a global inflammatory and osteoblastic phenotype in VICs.
- This phenotype included upregulation of key inflammatory and bone-related markers and calcium deposition.
Conclusions:
- VICs interacting with senescent RBCs from intraleaflet hematomas acquire an osteoblastic phenotype.
- This cellular transformation is a critical factor in initiating aortic valve calcification.
Background:
Intraleaflet hematomas are associated with advanced stages of aortic valve calcification and suspected to be involved in disease progression. However, the mechanism by which the entry of blood cells into the valves affects the biology of aortic valvular interstitial cells (VICs) remains to be elucidated.
Objectives:
This study sought to evaluate the putative link between intraleaflet hematoma and aortic valve calcification and to assess its pathophysiological implications.
Methods:
The spatial relationship between calcium deposits and intraleaflet hematomas was analyzed by whole-mount staining of calcified and noncalcified human aortic valves, obtained in the context of heart transplantation and from patients who underwent surgical valve replacement. Endothelial microfissuring was evaluated by en face immunofluorescence and scanning electron microscopic analyses of the fibrosa surface. Red blood cell (RBC) preparations were used in vitro to assess, by immunofluorescence microscopy and Alizarin red staining, the potential impact of intraleaflet hematomas on phenotypic changes in VICs.
Results:
Intraleaflet hematomas, revealed by iron deposits and RBCs into the fibrosa, secondary to endothelial microfissuring, were consistently found in noncalcified valves. The contact of primary VICs derived from these valves with RBCs resulted in a global inflammatory and osteoblastic phenotype, reflected by the up-regulation of interleukin-6, interleukin-1β, bone sialoprotein, osteoprotegerin, receptor activator of nuclear factor kappa B, bone morphogenic protein 2, and muscle segment homeobox 2, the production of osteocalcin, and the formation of calcium deposits.
Conclusions:
The acquisition of an osteoblastic phenotype in VICs that come into contact with the senescent RBCs of intraleaflet hematomas may play a critical role in the initiation of calcium deposition into the fibrosa of human aortic valves.
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