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.

Journal of Molecular Medicine (Berlin, Germany)
|June 9, 2017
PubMed

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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