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Published on: July 10, 2019
Dual-specificity Phosphatase 9 protects against Cardiac Hypertrophy by targeting ASK1
Lang Jiang1, Lingyun Ren2, Xin Guo3
1Department of Cardiovascular Surgery, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.
Insights
Dual-specificity phosphatase 9 (DUSP9) alleviates cardiac hypertrophy by inhibiting ASK1 signaling. This study reveals DUSP9
Area of Science:
- Molecular Biology
- Cardiovascular Research
- Biochemistry
Background:
- Previous research explored dual-specificity phosphatase 9 (DUSP9) in hepatic steatosis.
- The role of DUSP9 in pressure overload-induced cardiac hypertrophy was previously uncharacterized.
- Understanding DUSP9's function is crucial for developing novel therapeutic strategies for cardiac hypertrophy.
Purpose of the Study:
- To investigate the role and underlying mechanisms of DUSP9 in cardiac hypertrophy.
- To determine if DUSP9 can be a therapeutic target for cardiac hypertrophy.
Main Methods:
- Utilized gain-and-loss-of-function approaches for DUSP9 in cardiac-specific conditional knockout and transgenic mouse models.
- Performed pathological, echocardiographic, and molecular analyses to quantify cardiac phenotypes.
- Investigated molecular mechanisms through protein interaction studies and signaling pathway analysis (ASK1, p38, JNK).
Main Results:
- DUSP9 levels were elevated in hypertrophic mouse hearts and angiotensin II-treated cardiomyocytes.
- DUSP9 deficiency exacerbated cardiac hypertrophy, fibrosis, and malfunction under pressure overload.
- DUSP9 overexpression ameliorated cardiac hypertrophy, and DUSP9 directly interacted with ASK1, inhibiting p38 and JNK pathways.
Conclusions:
- DUSP9 plays a protective role against cardiac hypertrophy.
- DUSP9 alleviates cardiac hypertrophy, at least partially, by repressing the ASK1 signaling pathway.
- DUSP9 represents a promising therapeutic target for mitigating cardiac hypertrophy.
Abstract:
The functions of dual-specificity phosphatase 9 (DUSP9) in hepatic steatosis and metabolic disturbance during nonalcoholic fatty liver disease were discussed in our prior study. However, its roles in the pathophysiology of pressure overload-induced cardiac hypertrophy remain to be illustrated. This study attempted to uncover the potential contributions and underpinning mechanisms of DUSP9 in cardiac hypertrophy. Utilizing the gain-and-loss-of-functional approaches of DUSP9 the cardiac phenotypes arising from the pathological, echocardiographic, and molecular analysis were quantified. The results showed increased levels of DUSP9 in hypertrophic mice heart and angiotensin II treated cardiomyocytes. In accordance with the results of cellular hypertrophy in response to angiotensin II, cardiac hypertrophy exaggeration, fibrosis, and malfunction triggered by pressure overload was evident in the case of cardiac-specific conditional knockout of DUSP9. In contrast, transgenic mice hearts with DUSP9 overexpression portrayed restoration of the hypertrophic phenotypes. Further explorations of molecular mechanisms indicated the direct interaction of DUSP9 with ASK1, which further repressed p38 and JNK signaling pathways. Moreover, blocking ASK1 with ASK1-specific inhibitor compensated the pro-hypertrophic effects induced by DUSP9 deficiency in cardiomyocytes. The main findings of this study suggest the potential of DUSP9 in alleviating cardiac hypertrophy at least partially by repressing ASK1, thereby looks promising as a prospective target against cardiac hypertrophy.
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