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Published on: May 6, 2014
Interfering microRNA-410 attenuates atherosclerosis via the HDAC1/KLF5/IKBα/NF-κB axis
Shanji Nan1, Ying Wang2, Chengbi Xu3
1Department of Neurology, The Second Hospital of Jilin University, Changchun 130041, Jilin Province, PR China.
Abstract:
MicroRNA (miR)-410 plays a potential role in the pathogenesis of atherosclerosis. The current study mainly focuses on the underlying mechanism of miR-410/histone deacetylase 1 (HDAC1)/KLF5/nuclear factor κB (NF-κB) inhibitor α (IKBα)/NF-κB axis in atherosclerosis. miR-410 expression was determined using quantitative real-time PCR in both mouse models of atherosclerosis and human umbilical endothelial cells (HUVECs) treated with oxidized low-density lipoprotein (ox-LDL). The study subsequently predicted regulators associated with miR-410 through bioinformatics, and their binding relation was further verified through dual luciferase reporter gene and RNA immunoprecipitation (RIP) assays, and how HDAC1 regulated KLF5 was tested through coimmunoprecipitation (coIP). In HUVECs, miR-410 and HDAC1 mRNA expression; HDAC1, KLF5, IKBα, p65, p-p65, VCAM-1, ICAM-1, and MCP-1 protein expression; and inflammatory cytokine expressions were detected using quantitative real-time PCR, western blot, and ELISA. The present study further tested cell functions by Cell Counting Kit-8 (CCK-8), flow cytometry, and the colony-formation assay. It was revealed that miR-410 could target HDAC1, whereas HDAC1 could target transcription factor KLF5, increasing IKBα expression, thus suppressing NF-κB in atherosclerosis. Furthermore, silencing miR-410 or overexpressing HDAC1 increased cell viability and suppressed apoptosis and an inflammatory reaction in HUVECs in atherosclerosis. Blocking miR-410 promotes HDAC1 expression and increases IKBα levels through KLF5 to suppress NF-κB, thus preventing development of atherosclerosis.
Insights
MicroRNA-410 targets histone deacetylase 1, suppressing the NF-κB pathway to inhibit atherosclerosis development. Blocking miR-410 promotes this protective effect, offering a potential therapeutic strategy for atherosclerosis.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Atherosclerosis Research
Background:
- Atherosclerosis is a complex inflammatory disease.
- MicroRNA-410 (miR-410) is implicated in atherosclerosis pathogenesis.
- The precise molecular mechanisms of miR-410 in this process require elucidation.
Purpose of the Study:
- To investigate the underlying mechanism of the miR-410/histone deacetylase 1 (HDAC1)/KLF5/nuclear factor κB (NF-κB) axis in atherosclerosis.
- To determine the role of miR-410 in regulating endothelial cell function in the context of atherosclerosis.
Main Methods:
- Quantitative real-time PCR and western blot to measure gene and protein expression in mouse models and HUVECs.
- Bioinformatics prediction, dual luciferase reporter gene assays, and RNA immunoprecipitation (RIP) to confirm miR-410 and HDAC1 interactions.
- Coimmunoprecipitation (coIP) to assess HDAC1 and KLF5 interaction.
- Cell Counting Kit-8 (CCK-8), flow cytometry, and colony-formation assays to evaluate cell function.
Main Results:
- miR-410 directly targets HDAC1, and HDAC1 targets transcription factor KLF5.
- HDAC1 upregulates IKBα expression, subsequently suppressing NF-κB activation.
- Silencing miR-410 or overexpressing HDAC1 enhanced HUVEC viability, reduced apoptosis, and suppressed inflammatory responses.
Conclusions:
- The miR-410/HDAC1/KLF5/IKBα/NF-κB pathway is a critical regulator in atherosclerosis.
- Blocking miR-410 promotes HDAC1 expression, leading to increased IKBα and suppressed NF-κB, thereby preventing atherosclerosis development.
- Targeting the miR-410/HDAC1 axis presents a potential therapeutic avenue for atherosclerosis.
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