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Updated: Mar 24, 2026

Isolation of Mouse Interstitial Valve Cells to Study the Calcification of the Aortic Valve In Vitro
Published on: May 10, 2021
A novel role of extracellular nucleotides in valve calcification: a potential target for atorvastatin
Lana Osman1, Adrian H Chester, Mohamed Amrani
1Imperial College, Royal Brompton and Harefield National Health Service Trust, Harefield, Middlesex, UK.
Background:
Calcific aortic valve disease is a common condition and is associated with inflammatory changes and expression of osteoblast-like cell phenotypes, but the cellular mechanisms are unclear. Recent studies identified extracellular ATP and P2Y receptor cascade as important regulators of bone remodeling, whereas its breakdown product, adenosine, is known to have anti-inflammatory properties. We hypothesize that extracellular ATP and adenosine have important roles in regulating osteoblast differentiation in human valve interstitial cells, and that this can be a potential target for therapy. Method and Results- Primary cultures of human valve interstitial cells (ICs) treated for 21 days with osteogenic media, ATP, and ATP-gamma-S (a stable agonist of the P2Y receptor) revealed a significant increase in alkaline phosphatase (ALP) (an osteoblast marker) activity and expression as measured using spectrophotometric assay and immunocytochemistry staining. Valve ICs treated with adenosine alone did not cause an increase in ALP activity; however, adenosine treatment decreased the ALP activity and expression induced by osteogenic media after 21 days of incubation. In addition, atorvastatin inhibited the activity of ALP induced by ATP in human valve ICs, and enzyme studies revealed that atorvastatin upregulated the breakdown of extracellular ATP into adenosine in human valve ICs after 24-hour treatment.
Conclusions:
These findings identify a novel role for extracellular nucleotides in inducing osteoblast differentiation in human valve ICs in vitro and provide a potential therapeutic target for preventing the disease progression.
Insights
Extracellular ATP promotes osteoblast differentiation in human valve cells, while adenosine has an inhibitory effect. This suggests novel therapeutic targets for calcific aortic valve disease.
Area of Science:
- Cardiovascular Biology
- Biochemistry
- Cell Biology
Background:
- Calcific aortic valve disease involves inflammation and osteoblast-like cells.
- Extracellular ATP and adenosine are implicated in bone remodeling and inflammation.
- Cellular mechanisms in aortic valve disease remain unclear.
Purpose of the Study:
- To investigate the roles of extracellular ATP and adenosine in osteoblast differentiation of human valve interstitial cells.
- To explore potential therapeutic targets for calcific aortic valve disease.
Main Methods:
- Primary human valve interstitial cells (ICs) were cultured and treated with osteogenic media, ATP, ATP-gamma-S, and adenosine for 21 days.
- Alkaline phosphatase (ALP) activity and expression were measured using spectrophotometry and immunocytochemistry.
- Atorvastatin treatment effects on ALP activity and ATP breakdown were assessed.
Main Results:
- ATP and ATP-gamma-S significantly increased ALP activity and expression in valve ICs.
- Adenosine alone did not affect ALP activity but reduced osteogenic media-induced ALP.
- Atorvastatin inhibited ATP-induced ALP activity and increased ATP breakdown to adenosine.
Conclusions:
- Extracellular nucleotides play a novel role in inducing osteoblast differentiation in human valve ICs.
- These findings offer potential therapeutic strategies for preventing calcific aortic valve disease progression.
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