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Fibroblast circSamd4 promotes cardiac fibrosis via activating plasminogen activator inhibitor-1
Yan Chen1, Zhewei Zhang2, Yue Cheng1
1Department of Cardiology and Laboratory of Cardiovascular Diseases, Institute of Cardiovascular Diseases, West China Hospital, Sichuan University, Chengdu, Sichuan, 610041, China.
Abstract:
Cardiac fibrosis remains an unresolved clinical issue in patients with heart diseases. CircRNAs have emerged as potential targets for treatment of heart diseases. Exploring the functional circRNAs in fibroblast activation is one of the ways to develop innovative drugs for the treatment of cardiac fibrosis. This study aimed to screen for fibroblast-related circRNAs in cardiac fibrosis and elucidate their roles and underlying mechanisms. By screening for fibrosis-responsible circular RNAs (circRNAs), we identified a highly conserved circRNA, circular RNA Sterile alpha motif domain containing 4 (circSamd4), that drives cardiac fibrosis. circSamd4 is prominently expressed in cardiac fibroblasts (CFs) and is upregulated in the fibrotic hearts of humans and mice. Fibroblast-specific silencing of circSamd4 reduced cardiac fibroblast activation and alleviates cardiac fibrosis. Conversely, overexpression of circSamd4 in fibroblasts exacerbates cardiac fibrosis and rescues cardiac function. Bioinformatics and functional analyses revealed that circSamd4 regulates the plasminogen activation. Plasminogen activator inhibitor-1 (PAI-1, encoded by Serpine1) is a key effector of plasminogen activation and redox homeostasis and contributes to fibrotic diseases. Here, PAI-1 serves as a leading functional downstream factor of circSamd4 because PAI-1 is highly expressed in cardiac fibroblasts and contributes to circSamd4 functions in regulating fibroblast activation and cardiac fibrosis. Mechanistically, circSamd4 functions as a sponge for miR-1894-3p to trigger Serpine1 expression and subsequent fibroblast activation, and cardiac fibrosis. Therefore, we identified a fibroblast-specific circSamd4-miR-1894-3p-Serpine1 axis driving fibroblast activation and cardiac fibrosis. Adeno-associated virus (AAV)-mediated knockdown of circSamd4 or Serpine1 alleviated cardiac fibrosis and cardiac dysfunction. These findings suggest that circSamd4 and Serpine1 are promising therapeutic targets for inhibiting cardiac fibrosis.
Insights
Scientists identified a circular RNA, circSamd4, that drives cardiac fibrosis by activating fibroblasts. Silencing circSamd4 or its target Serpine1 alleviates fibrosis, offering new therapeutic targets for heart disease.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- RNA Biology
Background:
- Cardiac fibrosis is a major clinical problem in heart disease.
- Circular RNAs (circRNAs) are emerging as potential therapeutic targets for heart conditions.
- Understanding fibroblast activation is key to developing new cardiac fibrosis treatments.
Purpose of the Study:
- To screen for fibroblast-related circRNAs in cardiac fibrosis.
- To elucidate the roles and mechanisms of identified circRNAs.
- To identify novel therapeutic targets for cardiac fibrosis.
Main Methods:
- Screening for fibrosis-responsible circRNAs.
- Identifying circRNA circSamd4 and its role in cardiac fibroblasts (CFs).
- Investigating the circSamd4-miR-1894-3p-Serpine1 axis using bioinformatics and functional analyses.
- Utilizing Adeno-associated virus (AAV)-mediated knockdown for therapeutic validation.
Main Results:
- A conserved circRNA, circSamd4, was identified as a driver of cardiac fibrosis.
- circSamd4 is upregulated in fibrotic hearts and promotes cardiac fibroblast activation.
- circSamd4 acts as a sponge for miR-1894-3p, increasing Serpine1 expression and fibroblast activation.
- Knockdown of circSamd4 or Serpine1 using AAV alleviated cardiac fibrosis and dysfunction.
Conclusions:
- A novel circSamd4-miR-1894-3p-Serpine1 axis drives cardiac fibroblast activation and fibrosis.
- circSamd4 and Serpine1 represent promising therapeutic targets for cardiac fibrosis.
- Targeting this axis may offer innovative treatments for heart disease.
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