Related Experiment Video
Updated: Jul 20, 2026

Isolation of Mouse Interstitial Valve Cells to Study the Calcification of the Aortic Valve In Vitro
Published on: May 10, 2021
p21WAF1/CIP1 and 14-3-3 sigma gene expression in degenerated aortic valves: a link between cell cycle checkpoints and
O Golubnitschaja1, K Yeghiazaryan, D Skowasch
1Department of Radiology, Rheinische Friedrich-Wilhelms-University of Bonn, Bonn, Germany.
Abstract:
The mechanisms underlying aortic valve degeneration are largely unknown. Cardiac tissue responds to a variety of stimuli by hypertrophic growth. Molecular mechanisms resulting in the hypertrophic response indicate similarity and overlap with those involved in both cell growth and death. We hypothesized cell cycle control to be the key event in progression regulation of heart valve degeneration followed by tissue mineralization. Human post-operative tissue samples of native non-rheumatic stenosed aortic valves were categorized according to absence (group 1) or presence of calcification (group 2). The samples were ex vivo examined for cell density and presence of macrophage (CD68), as well as expression of two checkpoint genes, p21WAF1/CIP1 and 14-3-3 sigma, arresting the G1 and G2 cell cycle phases, respectively. Expression rates were measured by "Real-Time"-PCR on transcriptional level. Target protein expression was measured and their co-localization in different kinds of valvular cells was tested using immunohistochemical analysis. Whereas macrophages were localized predominantly in sub-endothelial layer of valvular fibrosis, p21WAF1/CIP1 and 14-3-3 sigma expression was observed also in the valvular spongiosa co-localized with alpha-actin positive cells. Significantly higher cell density and inflammation grade were observed in group 2 versus group 1. Accordingly, p21WAF1/CIP1 and 14-3-3 sigma expression was several fold higher in group 1 versus group 2 on both transcription and translation levels. The present findings on degenerated aortic valves show that increased cell density accompanied with consequent calcification might be attributed to the down-regulation of both G1 and G2 checkpoint genes.
Insights
Cell cycle control is key in aortic valve degeneration. Down-regulation of G1 and G2 checkpoint genes (p21WAF1/CIP1, 14-3-3 sigma) correlates with increased cell density and calcification in stenosed aortic valves.
Area of Science:
- Cardiovascular Biology
- Cell Cycle Regulation
- Tissue Degeneration
Background:
- Aortic valve degeneration mechanisms remain largely unknown.
- Hypertrophic growth in cardiac tissue involves complex molecular pathways.
- Cell cycle control is implicated in both cell growth and death.
Purpose of the Study:
- To investigate the role of cell cycle control in aortic valve degeneration and mineralization.
- To examine the expression of G1 and G2 cell cycle checkpoint genes in stenosed aortic valves.
- To correlate gene expression with cell density, inflammation, and calcification.
Main Methods:
- Analysis of human post-operative stenosed aortic valve tissue samples.
- Quantification of cell density, macrophage presence (CD68), and expression of p21WAF1/CIP1 and 14-3-3 sigma.
- Real-Time PCR for gene transcription and immunohistochemistry for protein expression and co-localization.
Main Results:
- Group 2 (calcified valves) showed significantly higher cell density and inflammation compared to Group 1 (non-calcified).
- Expression of p21WAF1/CIP1 and 14-3-3 sigma was significantly higher in Group 1 than in Group 2 at both transcriptional and translational levels.
- Macrophages were mainly in the sub-endothelial layer, while checkpoint genes were found in the valvular spongiosa.
Conclusions:
- Increased cell density and calcification in degenerated aortic valves may result from down-regulation of G1 and G2 cell cycle checkpoint genes.
- Cell cycle dysregulation is a potential key event in the progression of aortic valve degeneration.
- Understanding these mechanisms could inform future therapeutic strategies for aortic valve disease.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Molecular Factors Affecting Cell Division
Several proteins function as internal regulators to ensure each cell cycle stage is completed faithfully before proceeding to the next. Regulator molecules may act directly or influence the activity or production of other...
Inhibition of Cdk Activity
Canonical Wnt Signaling Pathway
Negative Regulator Molecules

