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Published on: July 10, 2018
MiR-182/Sestrin2 affects the function of asthmatic airway smooth muscle cells by the AMPK/mTOR pathway
Yali Xiao1, He Zhu1, Jiahui Lei1
1Department of Respiratory and Critical Care Medicine, Zhengzhou University People's Hospital, Henan Provincial People's Hospital, Zhengzhou 450003, Henan Province, China.
Background And Objectives:
Asthma is a chronic inflammatory airway disease and brings heavy economic and spiritual burdens to patients' families and the society. Airway smooth muscle cells (ASMCs) afect the development of asthma by secreting cytokines, growth factors, and prostates. The stress-inducing protein, Sestrin2, plays a vital role in antioxidant defense. The aim of this study is to investigate the role of Sestrin2 in asthma and its corresponding molecular mechanism.
Materials And Methods:
Airway remodeling was induced by construction of asthma rat model. Primary ASMCs were isolated through combining tissue block adherence and enzymatic digestion and identified by immunofluorescence staining. Gene expression was measured by quantitative real-time PCR (qPCR) and western blot (WB) experiments. Cell viability, proliferation, migration, and calcium flow of ASMCs were measured by Cell Counting Kit-8 (CCK-8), 5-ethynyl-deoxyuridine (EdU), Transwell, and Fluo-3AM, respectively. The binding of miR-182 and Sestrin2 3'-untranslated region (3'-UTR) was measured by luciferase reporter system and RNA-binding protein immunoprecipitation (RIP) analysis.
Results:
Sestrin2 expression was upregulated in asthma rat model and cell model. Overexpression of Sestrin2 enhanced the growth, migration, and calcium flow, and inversely, repression of Sestrin2 was reduced in ASMCs from the asthma group. MiR-182, one of the microRNAs (miRNAs) that possesses the potential to regulate Sestrin2, was downregulated in ASMCs from the asthma group. Further experiments revealed that Sestrin2 was inhibited by miR-182 and that overexpression of Sestrin2 reversed the miR-182-induced inhibition of the cellular progression of ASMCs from the asthma group. This study further investigated the downstream signaling pathway of Sestrin2 and found that increased expression of Sestrin2 activated 5'-adenosine monophosphate-activated protein kinase (AMPK), leading to the inactivation of mammalian target of rapamycin (mTOR) and thus promoting the growth, migration, and calcium flow of ASMCs from the asthma group.
Conclusion:
This study investigated the role of Sestrin2 for the first time and further dissected the regulatory factor of Sestrin2, ultimately elucidating the downstream signaling pathway of Sestrin2 in asthma, providing a novel pathway, and improving the understanding of the development and progression of asthma.
Insights
Sestrin2 is upregulated in asthma, promoting airway smooth muscle cell progression via the miR-182/AMPK/mTOR pathway. Targeting Sestrin2 offers a novel therapeutic strategy for asthma treatment.
Area of Science:
- Cell Biology
- Molecular Biology
- Immunology
Background:
- Asthma is a chronic airway inflammatory disease with significant patient and societal burdens.
- Airway smooth muscle cells (ASMCs) contribute to asthma development through cytokine and growth factor secretion.
- Sestrin2, a stress-induced protein, is crucial for antioxidant defense and its role in asthma requires investigation.
Purpose of the Study:
- To investigate the role of Sestrin2 in asthma.
- To elucidate the molecular mechanisms underlying Sestrin2's function in asthma pathogenesis.
- To identify potential therapeutic targets for asthma.
Main Methods:
- Asthma rat model and primary ASMC isolation.
- Quantitative real-time PCR (qPCR) and Western Blot (WB) for gene expression analysis.
- Cell viability, proliferation, migration, and calcium flux assays; luciferase reporter and RIP assays for miRNA-Sestrin2 interaction.
Main Results:
- Sestrin2 expression was upregulated in asthma models.
- Sestrin2 overexpression enhanced ASMC growth, migration, and calcium flow.
- MiR-182 was downregulated in asthma and inhibited Sestrin2; Sestrin2 activated AMPK/mTOR pathway.
Conclusions:
- Sestrin2 plays a key role in asthma pathogenesis by promoting ASMC progression.
- MiR-182 negatively regulates Sestrin2 in asthma.
- The Sestrin2/AMPK/mTOR pathway is a novel therapeutic target for asthma.
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