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Published on: June 3, 2018
Interferon regulatory factor 9 protects against cardiac hypertrophy by targeting myocardin
Ding-Sheng Jiang1, Yu-Xuan Luo, Ran Zhang
1Department of Cardiology, Renmin Hospital of Wuhan University; Cardiovascular Research Institute, Wuhan University, Jiefang Rd 238, Wuhan 430060, PR China. lihl@whu.edu.cn.
Insights
Interferon regulatory factor 9 (IRF9) acts as a novel negative regulator of pathological cardiac hypertrophy. IRF9 suppresses key molecular pathways, offering a potential therapeutic target for heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Gene Regulation
Background:
- Pathological cardiac hypertrophy is a significant risk factor for heart failure.
- Identifying novel regulators of cardiac hypertrophy is crucial for developing effective treatments.
Purpose of the Study:
- To identify novel regulators of pathological cardiac hypertrophy.
- To elucidate the molecular mechanisms by which interferon regulatory factor 9 (IRF9) impacts cardiac hypertrophy.
Main Methods:
- Utilized a mouse model of aortic banding-induced cardiac hypertrophy.
- Investigated the effects of IRF9 deficiency and overexpression on cardiac structure and function.
- Examined the interaction between IRF9, p300, and myocardin using molecular assays.
Main Results:
- IRF9 expression is upregulated in cardiac hypertrophy.
- IRF9-deficient mice show exacerbated hypertrophy, while IRF9 overexpression protects against it.
- IRF9 inhibits myocardin's transcriptional activity by competing with p300 for binding.
Conclusions:
- IRF9 is a previously unrecognized negative regulator of cardiac hypertrophy.
- IRF9 suppresses cardiac hypertrophy by inhibiting myocardin-SRF transcriptional activity.
- Targeting IRF9 may offer a therapeutic strategy for heart failure associated with cardiac hypertrophy.
Abstract:
Pathological cardiac hypertrophy is a major risk factor for heart failure. In this study, we identified interferon regulatory factor 9 (IRF9), a member of the IRF family, as a previously unidentified negative regulator of cardiac hypertrophy. The level of IRF9 expression was remarkably elevated in the hearts from animals with aortic banding-induced cardiac hypertrophy. IRF9-deficient mice exhibited pronounced cardiac hypertrophy after pressure overload, as demonstrated by increased cardiomyocyte size, extensive fibrosis, reduced cardiac function, and enhanced expression of hypertrophy markers, whereas transgenic mice with cardiac-specific overexpression of murine IRF9 exhibited a significant reduction in the hypertrophic response. Mechanistically, IRF9 competes with p300 for binding to the transcription activation domain of myocardin, a coactivator of serum response factor (SRF). This interaction markedly suppresses the transcriptional activity of myocardin because IRF9 overexpression strongly inhibits the ability of myocardin to activate CArG box-dependent reporters. These results provide compelling evidence that IRF9 inhibits the development of cardiac hypertrophy by suppressing the transcriptional activity of myocardin in the heart.
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