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miR-133a-3p attenuates cardiomyocyte hypertrophy through inhibiting pyroptosis activation by targeting IKKε
Yi-Fan Zhu1, Rui Wang1, Wen Chen1
1Department of Cardiovascular Surgery, Nanjing First Hospital, Nanjing Medical University, Nanjing 210006, People's Republic of China.
Insights
MicroRNA-133a-3p inhibits pyroptosis and cardiac hypertrophy in cells treated with angiotensin II by targeting IKKε. Upregulating miR-133a-3p offers a potential therapeutic strategy for cardiac hypertrophy.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Cell Death Mechanisms
Background:
- Cardiac hypertrophy is a precursor to severe cardiovascular conditions like heart failure.
- Pyroptosis, a pro-inflammatory cell death, is increasingly implicated in cardiovascular disease progression.
- The precise molecular mechanisms linking pyroptosis to cardiac hypertrophy remain incompletely understood.
Purpose of the Study:
- To investigate the role of miR-133a-3p in pyroptosis during angiotensin II-induced cardiac hypertrophy in vitro.
- To elucidate the regulatory pathway involving miR-133a-3p, IKKε, and pyroptosis in cardiomyocytes.
Main Methods:
- Established an in vitro model of cardiac hypertrophy using angiotensin II stimulation.
- Assessed pyroptosis using CCK-8 assay and Hoechst33342/PI staining.
- Verified the direct interaction between miR-133a-3p and IKKε using a dual-luciferase reporter system.
- Quantified gene and protein expression of pyroptosis and hypertrophy markers via qPCR, ELISA, and Western blot.
Main Results:
- Angiotensin II induced cardiomyocyte hypertrophy and pyroptosis, accompanied by decreased miR-133a-3p and increased IKKε expression.
- Overexpression of miR-133a-3p attenuated both pyroptosis and cardiac hypertrophy.
- miR-133a-3p directly targeted and suppressed IKKε expression.
- IKKε overexpression counteracted the protective effects of miR-133a-3p.
Conclusions:
- miR-133a-3p mitigates angiotensin II-induced cardiac hypertrophy by inhibiting pyroptosis through targeting IKKε.
- Upregulation of miR-133a-3p presents a potential therapeutic avenue for treating cardiac hypertrophy.
Objective:
Cardiac hypertrophy is an adaptive response to physiological and pathological stimuli, the latter of which frequently progresses to valvulopathy, heart failure and sudden death. Recent reports revealed that pyroptosis is involved in regulating multiple cardiovascular diseases progression, including cardiac hypertrophy. However, the underlying mechanisms remain poorly understood. This study aims to extensively investigate the regulation of miR-133a-3p on pyroptosis in angiotensin II (Ang II)-induced cardiac hypertrophyin vitro.
Methods:
The in vitro model of cardiac hypertrophy was induced by Ang II, which was validated by qPCR combined with measurement of cell surface area by immunofluorescence assay. CCK-8 assay and Hochest33342/PI staining was performed to assess pyroptosis. Dual luciferase reporter system was used to verify the direct interaction between miR-133a-3p and IKKε. The effects of miR-133a-3p/IKKε on pyroptosis activation and cardiac hypertrophy markers (Caspase-1, NLRP3, IL-1β, IL-18, GSDMD, ASC, ANP, BNP and β-MHC) were evaluated by western blot, ELISA and qPCR.
Results:
Ang II treatment could induce cardiomyocyte hypertrophy and pyroptosis. The expression of miR-133a-3p was repressed in Ang II-treated HCM cells, and its overexpression could attenuate both pyroptosis and cardiac hypertrophyin vitro. Additionally, IKKε expression was significantly up-regulated in Ang II-induced HCM cells. Dual luciferase reporter system and qPCR validated that miR-133a-3p directly targeted the 3'-UTR of IKKε and suppressed its expression. Moreover, IKKε overexpression impaired the protective function of miR-133a-3p in cardiomyocyte hypertrophy.
Conclusion:
Collectively, miR-133a-3p attenuates Ang II induced cardiomyocyte hypertrophy via inhibition of pyroptosis by targeting IKKε. Therefore, miR-133a-3p up-regulation may be a promising strategy for cardiac hypertrophy treatment.
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