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Fendrr involves in the pathogenesis of cardiac fibrosis via regulating miR-106b/SMAD3 axis
Li Gong1, Lingyan Zhu2, Tianlun Yang1
1Department of Cardiology, Xiangya Hospital, Central South University, 87 Xiangya Road, Changsha, Hunan, PR China; National Clinical Research Center for Geriatric Disorders, Xiangya Hospital, Central South University, 87 Xiangya Road, Changsha, PR China.
Insights
Long non-coding RNA Fendrr promotes cardiac fibrosis by targeting miR-106b. Loss of Fendrr alleviates fibrosis, suggesting Fendrr/miR-106b is a potential therapeutic target for cardiovascular diseases.
Area of Science:
- Molecular Biology
- Cardiovascular Research
- RNA Biology
Background:
- Cardiovascular diseases (CVDs) are a leading cause of death globally, with cardiac fibrosis a key pathological mechanism.
- Current clinical interventions for cardiac fibrosis are limited due to unclear underlying mechanisms.
- Long non-coding RNAs (lncRNAs) are increasingly recognized for their roles in disease pathogenesis, including cardiac fibrosis.
Purpose of the Study:
- To investigate the role of the lncRNA Fendrr in the development of cardiac fibrosis.
- To elucidate the molecular mechanisms by which Fendrr influences cardiac fibrosis.
- To identify potential therapeutic targets for cardiac fibrosis.
Main Methods:
- Utilized a transverse aortic constriction (TAC) mouse model to induce cardiac fibrosis.
- Quantified Fendrr expression using RT-QPCR in cardiac tissues.
- Performed loss-of-function experiments to assess Fendrr's impact on fibrosis.
- Investigated the interaction between Fendrr and miR-106b.
Main Results:
- Fendrr expression was significantly upregulated in TAC-induced cardiac fibrosis mouse models.
- Loss of Fendrr function markedly alleviated cardiac fibrosis phenotypes.
- Fendrr was demonstrated to directly target miR-106b, promoting cardiac fibrosis via miR-106b mediation.
- Key fibrosis markers (Col1a1, Col3a1, CTGF, ACTA2) were elevated in a miR-106b-dependent manner.
Conclusions:
- Fendrr plays a crucial role in the pathogenesis of cardiac fibrosis.
- The Fendrr/miR-106b axis is a key pathway promoting cardiac fibrosis.
- Targeting the Fendrr/miR-106b/Samd3 axis offers a promising therapeutic strategy for cardiac fibrosis.
Abstract:
Cardiovascular diseases (CVDs) is the first cause of death worldwide, generally exhibiting a high morbidity, high disability rate and high mortality especially in the elderly persons (>50 years old). Previously, extensive studies have demonstrated that cardiac fibrosis plays cardinal roles in the pathogenesis of CVDs. However, due to the unclear underlying mechanisms of cardiac fibrosis, its clinical intervention remains very lacking. Long non-coding RNAs (lncRNAs), a class of non-coding RNA but differing from microRNAs, are generally considered as transcripts with a length ranging 200 to 100 nucleotides. Recently, accumulating evidence showed that lncRNAs involve in the pathogenesis of cardiac fibrosis. Fendrr (FOXF1 adjacent non-coding developmental regulatory RNA), is a spliced long non-coding RNA transcribed bi-directionally with FOXF1 on the opposite strand. Fendrr has been demonstrated to be essential for normal development of the heart and body wall in mouse, and shows a good anti-fibrotic activity in pulmonary fibrosis. In this study, we aimed to explore the effects of Fendrr on cardiac fibrosis. Intriguingly, we first observed that lncRNA Fendrr was up-regulated in the heart tissues of transverse aortic constriction (TAC) induced cardiac fibrosis mouse models, determined by RT-QPCR. Loss-function of Fendrr significantly alleviated the cardiac fibrosis phenotypes induced by TAC, indicating that Fendrr is required for the pathogenesis of cardiac fibrosis. In mechanism, we demonstrated experimentally that Fendrr directly targeting miR-106b, by which the lncRNA promotes cardiac fibrosis (indicated by the elevation of Col1a1, Col3a1, CTGF and ACTA2 expression) in a miR-106b mediated manner. Collectively, our findings highlight the axis of Fendrr/miR-106b/Samd3 in the pathogenesis of cardiac fibrosis, which may be a promising target for clinical intervention target of cardiac fibrosis.
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