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In Vivo Nanovector Delivery of a Heart-specific MicroRNA-sponge
Published on: June 15, 2018
MiR-125a regulates mitochondrial homeostasis through targeting mitofusin 1 to control hypoxic pulmonary vascular
Cui Ma1, Chen Zhang2, Mingfei Ma2
1College of Medical Laboratory Science and Technology, Harbin Medical University, Daqing, China.
Abstract:
Abnormal pulmonary arterial smooth muscle cells (PASMCs) proliferation is an important pathological process in hypoxic pulmonary arterial hypertension. Mitochondrial dynamics and quality control have a central role in the maintenance of the cell proliferation-apoptosis balance. However, the molecular mechanism is still unknown. We used hypoxic animal models, cell biology, and molecular biology to determine the effect of mitofusin 1 (Mfn1) on hypoxia-mediated PASMCs mitochondrial homeostasis. We found that Mfn1 expression was increased in hypoxia, which was crucial for hypoxia-induced mitochondrial dysfunction and smooth muscle cell proliferation as well as hypoxia-stimulated cell-cycle transition from the G0/G1 phase to S phase. Subsequently, we studied the role of microRNAs in mitochondrial function associated with PASMC proliferation under hypoxic conditions. The promotive effect of Mfn1 on pulmonary vascular remodeling was alleviated in the presence of miR-125a agomir, and miR-125a antagomir mimicked the hypoxic damage effects to mitochondrial homeostasis. Moreover, in vivo and in vitro treatment with miR-125a agomir protected the pulmonary vessels from mitochondrial dysfunction and abnormal remodeling. In the present study, we determined that mitochondrial homeostasis, particularly Mfn1, played an important role in PASMCs proliferation. MiR-125a, an important underlying factor, which inhibited Mfn1 expression and decreased PASMCs disordered growth during hypoxia. These results provide a theoretical basis for the prevention and treatment of pulmonary vascular remodeling.
Key Messages:
Hypoxia leads to upregulation of mitofusin 1 (Mfn1) both in vivo and in vitro. Mfn1 is involved in hypoxia-induced PASMCs proliferation. Mfn1-mediated mitochondrial homeostasis is regulated by miR-125a. MiR-125a plays a role in PASMCs oxidative phosphorylation and glycolysis.
Insights
Mitofusin 1 (Mfn1) drives abnormal pulmonary arterial smooth muscle cell proliferation during hypoxia. MicroRNA-125a (miR-125a) inhibits Mfn1, protecting against hypoxia-induced mitochondrial dysfunction and vascular remodeling.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Pulmonary Hypertension Pathophysiology
Background:
- Abnormal proliferation of pulmonary arterial smooth muscle cells (PASMCs) is key in hypoxic pulmonary arterial hypertension.
- Mitochondrial dynamics and quality control are vital for cell proliferation-apoptosis balance, but mechanisms remain unclear.
Purpose of the Study:
- To investigate the role of mitofusin 1 (Mfn1) in hypoxia-induced PASMC mitochondrial homeostasis and proliferation.
- To explore the involvement of microRNAs in regulating Mfn1 and mitochondrial function under hypoxia.
Main Methods:
- Utilized hypoxic animal models, cell biology, and molecular biology techniques.
- Assessed Mfn1 expression, mitochondrial function, and cell-cycle progression.
- Investigated the effects of miR-125a agomir and antagomir on PASMCs and pulmonary vessels.
Main Results:
- Hypoxia upregulated Mfn1 expression in PASMCs, promoting mitochondrial dysfunction and proliferation.
- Mfn1 facilitated hypoxia-induced cell-cycle transition from G0/G1 to S phase.
- miR-125a agomir alleviated Mfn1's effects, protecting against mitochondrial dysfunction and vascular remodeling, while antagomir mimicked hypoxic damage.
Conclusions:
- Hypoxia upregulates Mfn1, contributing to PASMC proliferation and mitochondrial dysfunction.
- miR-125a regulates Mfn1-mediated mitochondrial homeostasis and plays a role in PASMC oxidative phosphorylation and glycolysis.
- Targeting Mfn1 and miR-125a offers a potential therapeutic strategy for pulmonary vascular remodeling.
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