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In Vivo Nanovector Delivery of a Heart-specific MicroRNA-sponge
Published on: June 15, 2018
MFN2-dependent mitochondrial dysfunction contributes to Relm-β-induced pulmonary arterial hypertension via
Yan Wang1, Dong Han2, Limin Chai1
1Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi, PR China.
Abstract:
Induction of resistin-like molecule β (Relm-β) and mitofusin 2 (MFN2) mediated aberrant mitochondrial fission have been found to be involved in the pathogenesis of pulmonary arterial hypertension (PAH). However, the molecular mechanisms underlying Relm-β regulation of MFN2 therefore mitochondrial fission remain unclear. This study aims to address these issues. Primary cultured PASMCs and monocrotaline (MCT)-induced PAH rats were applied in this study. The results showed that Relm-β promoted cells proliferation in PASMCs, this was accompanied with the upregulation of USP18, Twist1 and miR-214, and downregulation of MFN2. We found that Relm-β increased USP18 expression which in turn raised Twist1 by suppressing its proteasome degradation. Elevation of Twist1 increased miR-214 expression and then reduced MFN2 expression and mitochondrial fragmentation leading to PASMCs proliferation. In vivo study, we confirmed that Relm-β was elevated in MCT-induced PAH rat model, and USP18/Twist1/miR-214/MFN2 axis was altered similar as in vitro. Targeting this cascade by Relm-β receptor inhibitor Calhex231, proteasome inhibitor MG-132, Twist1 inhibitor Harmine or miR-214 antagomiR prevented the development of pulmonary vascular remodeling and therefore PAH in MCT-treated rats. In conclusion, we demonstrate that Relm-β promotes PASMCs proliferation and vascular remodeling by activating USP18/Twist1/miR-214 dependent MFN2 reduction and mitochondrial fission, suggesting that this signaling pathway might be a promising target for management of PAH.
Insights
Resistin-like molecule β (Relm-β) drives pulmonary arterial hypertension by promoting cell proliferation via the USP18/Twist1/miR-214 pathway, which reduces MFN2 and causes mitochondrial fission. Targeting this axis offers a potential therapeutic strategy for PAH.
Area of Science:
- Biomedical Science
- Molecular Biology
- Pathophysiology
Background:
- Pulmonary arterial hypertension (PAH) pathogenesis involves resistin-like molecule β (Relm-β) and mitochondrial fission.
- The precise molecular mechanisms linking Relm-β to MFN2 and mitochondrial dynamics in PAH remain elusive.
Purpose of the Study:
- To elucidate the molecular pathway through which Relm-β regulates MFN2 and mitochondrial fission in PAH.
- To investigate the role of USP18, Twist1, and miR-214 in Relm-β-mediated effects.
Main Methods:
- Primary pulmonary artery smooth muscle cells (PASMCs) and a monocrotaline (MCT)-induced rat PAH model were utilized.
- Investigated the expression of Relm-β, USP18, Twist1, miR-214, and MFN2 in vitro and in vivo.
- Assessed the impact of targeting components of the USP18/Twist1/miR-214/MFN2 axis on PAH development.
Main Results:
- Relm-β promoted PASMC proliferation, upregulating USP18, Twist1, and miR-214, while downregulating MFN2.
- Relm-β increased USP18, which stabilized Twist1 by inhibiting proteasome degradation, subsequently increasing miR-214 and decreasing MFN2.
- The USP18/Twist1/miR-214/MFN2 axis was dysregulated in MCT-induced PAH rats, and targeting this cascade ameliorated pulmonary vascular remodeling.
Conclusions:
- Relm-β promotes PASMC proliferation and vascular remodeling in PAH by activating the USP18/Twist1/miR-214 pathway, leading to MFN2 reduction and mitochondrial fission.
- This signaling cascade represents a potential therapeutic target for managing pulmonary arterial hypertension.
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