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Updated: Aug 24, 2025

Suppression of Pro-fibrotic Signaling Potentiates Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts into Induced Cardiomyocytes
Published on: June 3, 2018
miR-409-3p Regulated by GATA2 Promotes Cardiac Fibrosis through Targeting Gpd1
Chun Wang1, Shengxia Yin2, Qin Wang1
1Department of Geriatrics, Nanjing Drum Tower Hospital, The Affiliated Hospital of Nanjing University Medical School, Nanjing 210008, China.
Insights
MicroRNA-409-3p promotes cardiac fibrosis by targeting Gpd1. Inhibiting miR-409-3p may offer a novel therapeutic strategy for treating heart failure caused by fibrosis.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Fibrosis Research
Background:
- Cardiac fibrosis is a key factor in heart failure progression.
- Current therapies for cardiac fibrosis are limited.
- MicroRNA dysregulation is implicated in cardiac fibrosis.
Purpose of the Study:
- To investigate the role and molecular mechanism of miR-409-3p in cardiac fibrosis.
- To explore miR-409-3p as a potential therapeutic target for cardiac fibrosis.
Main Methods:
- Assessed miR-409-3p levels in three cardiac fibrosis models.
- Utilized miR-409-3p antagomir and mimics in vivo and in vitro.
- Identified miR-409-3p targets using molecular biology techniques.
- Investigated upstream regulatory factors of miR-409-3p.
Main Results:
- miR-409-3p expression was upregulated in cardiac fibrosis models.
- Systemic miR-409-3p inhibition attenuated fibrosis and improved cardiac function.
- miR-409-3p promoted fibroblast proliferation and differentiation via Gpd1.
- GATA2 was identified as an upstream regulator of miR-409-3p.
Conclusions:
- miR-409-3p plays a significant role in promoting cardiac fibrosis.
- Targeting miR-409-3p, potentially through Gpd1 modulation, offers a promising therapeutic avenue for cardiac fibrosis and heart failure.
Abstract:
Cardiac fibrosis is a hallmark of numerous chronic cardiovascular diseases that leads to heart failure. However, there is no validated therapy for it. Dysregulation of microRNAs has been confirmed to be involved in cardiac fibrosis development. However, the regulatory network was not well explored. This study was the first to highlight the role and molecular mechanism of miR-409-3p in cardiac fibrosis. We found that miR-409-3p was consistently increased in three fibrotic models, including heart tissues of postmyocardial infarction (MI) mice and neonatal rat cardiac fibroblasts treated with angiotensin II (Ang II) or transforming growth factor-β (TGF-β). Furthermore, myocardial infarction surgery-induced cardiac fibrosis and dysfunction were attenuated by systemic delivery of miR-409-3p antagomir. Notably, transfection with miR-409-3p mimics promoted the proliferation of cardiac fibroblasts and fibroblast-to-myofibroblast differentiation, accompanied by upregulated expression of Col1a1, Col3a1, and α-SMA. On the contrary, the miR-409-3p inhibitor exhibited the opposite effect. Following this, we verified Gpd1 as a direct target of miR-409-3p. Gpd1 siRNA abolished the antifibrotic effect of miR-409-3p inhibitor in neonatal rat cardiac fibroblasts, suggesting that miR-409-3p promotes cardiac fibrosis at least partially through Gpd1. Moreover, GATA2 was identified as a cardiac fibrosis-associated upstream positive transcription factor of miR-409-3p. Finally, these findings suggest that modulating miR-409-3p could be a potential therapeutic method for cardiac fibrosis.
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