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In Situ Immunofluorescent Staining of Autophagy in Muscle Stem Cells
Published on: June 12, 2017
Synaptotagmin-7 mediates cardiac hypertrophy by targeting autophagy
Teng Sun1,2, Yu Han1,2, Jia-Lei Li1,2
1Key Laboratory of Cellular Physiology at Shanxi Medical University, Ministry of Education, Key Laboratory of Cellular Physiology of Shanxi Province, Taiyuan, China.
Insights
Synaptotagmin-7 (Syt7) drives cardiac hypertrophy by inhibiting autophagy. Targeting the miR-93/Syt7/autophagy pathway offers new hope for treating heart failure.
Area of Science:
- Cardiology
- Molecular Biology
- Cellular Biology
Background:
- Sustained cardiac hypertrophy impairs heart function, leading to heart failure.
- The role of autophagy in cardiac hypertrophy mechanisms remains unclear.
- Synaptotagmin-7 (Syt7), a calcium sensor, is known for its role in neurotransmission but its cardiac function is unexplored.
Purpose of the Study:
- Investigate the role of Synaptotagmin-7 (Syt7) in cardiac hypertrophy.
- Elucidate the molecular mechanisms linking Syt7 to cardiac dysfunction and autophagy.
- Identify potential therapeutic targets for cardiac hypertrophy and heart failure.
Main Methods:
- Utilized Ang II-treated hearts and cardiomyocytes to study Syt7 expression.
- Employed homozygous syt7 knockout (syt7-/-) mice to assess cardiac function and hypertrophy.
- Investigated the regulatory relationship between microRNA-93 (miR-93) and Syt7 in cardiac hypertrophy models.
Main Results:
- Syt7 expression was significantly upregulated in Ang II-induced cardiac hypertrophy.
- Syt7 knockout mice showed reduced cardiac hypertrophy, fibrosis, and improved cardiac function.
- Syt7 suppressed autophagy, promoting a pro-hypertrophic effect; miR-93 targeted Syt7 to protect against hypertrophy.
Conclusions:
- Synaptotagmin-7 (Syt7) acts as a novel regulator promoting cardiac hypertrophy by inhibiting autophagy.
- The miR-93/Syt7/autophagy pathway represents a new therapeutic target for cardiac hypertrophy and heart failure.
- This study reveals a novel regulatory model for cardiac hypertrophy involving miR-93, Syt7, and autophagy.
Abstract:
Sustained cardiac hypertrophy damages the heart and weakens cardiac function, often leading to heart failure and even death. Pathological cardiac hypertrophy has become a central therapeutic target for many heart diseases including heart failure. However, the underlying mechanisms of cardiac hypertrophy, especially the involvement of autophagy program, are still ill-understood. Synaptotagmin-7 (Syt7), a multifunctional and high-affinity calcium sensor, plays a pivotal role in asynchronous neurotransmitter release, synaptic facilitation, and vesicle pool regulation during synaptic transmission. However, little is known about whether Syt7 is expressed in the myocardium and involved in the pathogenesis of heart diseases. Here we showed that Syt7 was significantly upregulated in Ang II-treated hearts and cardiomyocytes. Homozygous syt7 knockout (syt7-/-) mice exhibited significantly attenuated cardiac hypertrophy and fibrosis and improved cardiac function. We further found that Syt7 exerted a pro-hypertrophic effect by suppressing the autophagy process. In exploring the upstream mechanisms, microRNA (miR)-93 was identified to participate in the regulation of Syt7 expression. miR-93 protected hearts against Ang II-induced hypertrophy through targeting Syt7-autophagy pathway. In summary, our data reveal a new cardiac hypertrophy regulator and a novel hypertrophy regulating model composed of miR-93, Syt7 and autophagy program. These molecules may serve as potential therapeutic targets in the treatment of cardiac hypertrophy and heart failure.
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