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Cripto Is Targeted by miR-1a-3p in a Mouse Model of Heart Development
Tiziana Angrisano1, Francesca Varrone2, Elvira Ragozzino3
1Department of Biology, University of Naples Federico II, 80126 Naples, Italy.
Insights
Researchers found an inverse correlation between Cripto and miR-1 during heart development. This discovery in cardiac differentiation models suggests a new therapeutic target for cardiovascular diseases.
Area of Science:
- Cardiovascular Biology
- Developmental Biology
- Molecular Cardiology
Background:
- Cardiac development involves complex molecular mechanisms crucial for preventing cardiovascular disorders.
- Cripto and microRNAs (miRNAs), specifically miR-1, are key regulators in cardiac differentiation.
- Aberrant miR-1 expression is linked to various cardiac diseases.
Purpose of the Study:
- To investigate the inverse correlation between Cripto and miR-1 during in vitro heart development.
- To determine if Cripto is a direct target of miR-1.
- To explore the potential of the Cripto-miR-1 axis as a therapeutic target for cardiovascular conditions.
Main Methods:
- Utilized in vitro models: embryoid bodies (EBs) and P19 cells.
- Performed luciferase assays to confirm Cripto as a miR-1 target.
- Analyzed gene expression changes during differentiation and after miR-1 silencing.
- Induced cardiotoxin (CTX) damage to observe miR-1 and Cripto expression shifts.
- Examined Cripto and miR-1 distribution in mouse cardiac biopsies.
Main Results:
- Demonstrated that Cripto is a direct target of miR-1.
- Observed a decrease in Cripto expression and a simultaneous increase in miR-1 levels during cardiac differentiation.
- Showed that silencing miR-1 led to increased Cripto expression.
- Found that cardiotoxin-induced damage resulted in decreased miR-1 and increased Cripto expression.
- Confirmed an inverse correlation between Cripto and miR-1 in mouse cardiac ventricles.
Conclusions:
- Established a significant inverse correlation between Cripto and miR-1 during heart development.
- The Cripto-miR-1 regulatory axis presents a potential novel pharmacological target for cardiovascular therapies.
- Further research into this axis may yield new strategies for treating heart diseases.
Abstract:
During cardiac differentiation, numerous factors contribute to the development of the heart. Understanding the molecular mechanisms underlying cardiac development will help combat cardiovascular disorders, among the leading causes of morbidity and mortality worldwide. Among the main mechanisms, we indeed find Cripto. Cripto is found in both the syncytiotrophoblast of ampullary pregnancies and the inner cell mass along the primitive streak as the second epithelial-mesenchymal transformation event occurs to form the mesoderm and the developing myocardium. At the same time, it is now known that cardiac signaling pathways are intimately intertwined with the expression of myomiRNAs, including miR-1. This miR-1 is one of the muscle-specific miRs; aberrant expression of miR-1 plays an essential role in cardiac diseases. Given this scenario, our study aimed to evaluate the inverse correlation between Cripto and miR-1 during heart development. We used in vitro models of the heart, represented by embryoid bodies (EBs) and embryonic carcinoma cell lines derived from an embryo-derived teratocarcinoma in mice (P19 cells), respectively. First, through a luciferase assay, we demonstrated that Cripto is a target of miR-1. Following this result, we observed that as the days of differentiation increased, the Cripto gene expression decreased, while the level of miR-1 increased; furthermore, after silencing miR-1 in P19 cells, there was an increase in Cripto expression. Moreover, inducing damage with a cobra cardiotoxin (CTX) in post-differentiation cells, we noted a decreased miR-1 expression and increased Cripto. Finally, in mouse cardiac biopsies, we observed by monitoring gene expression the distribution of Cripto and miR-1 in the right and left ventricles. These results allowed us to detect an inverse correlation between miR-1 and Cripto that could represent a new pharmacological target for identifying new therapies.
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