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Updated: Jun 18, 2025

In Vivo Nanovector Delivery of a Heart-specific MicroRNA-sponge
Published on: June 15, 2018
MicroRNA-210 mediates hypoxia-induced pulmonary hypertension by targeting mitochondrial bioenergetics and mtROS flux
Abu Shufian Ishtiaq Ahmed1, Arlin B Blood1, Lubo Zhang1
1Lawrence D. Longo, MD Center for Perinatal Biology, Department of Basic Sciences, Loma Linda University School of Medicine, Loma Linda, California, USA.
Aim:
Chronic hypoxia is a common cause of pulmonary hypertension (PH). We test the hypothesis that microRNA-210 (miR-210) mediates hypoxia-induced PH by targeting mitochondrial metabolism and increasing reactive oxygen species (mtROS) production in the lungs.
Methods:
Adult wildtype (WT) or miR-210 knockout (KO) mice were exposed to hypoxia (10.5% O2) or normoxia for 4 weeks. We measured miR-210 levels, right ventricular systolic pressure (RVSP), and histological changes in heart and lung tissues. Mitochondrial bioenergetics and mtROS production were assessed in isolated lung mitochondria.
Results:
Hypoxia increased right ventricular wall thickness and pulmonary vessel wall muscularization in WT, but not miR-210 KO mice. No sex differences were observed. In male mice, hypoxia increased miR-210 levels in the lung and RVSP, which were abrogated by miR-210 deficiency. Hypoxia upregulated mitochondrial oxygen consumption rate and mtROS flux, which were negated in miR-210 KO animals. In addition, chronic hypoxia increased macrophage accumulation in lungs of WT, but not miR-210 KO mice. Moreover, miR-210 overexpression in lungs of WT animals recapitulated the effects of hypoxia and increased mitochondrial oxygen consumption rate, mtROS flux, right ventricular wall thickness, pulmonary vessel wall muscularization and RVSP. MitoQ revoked the effects of miR-210 on lung mitochondrial bioenergetics, right ventricular and pulmonary vessel remodeling and RVSP.
Conclusion:
Our findings with loss-of-function and gain-of-function approaches provide explicit evidence that miR-210 mediates hypoxia-induced PH by upregulating mitochondrial bioenergetics and mtROS production in a murine model, revealing new insights into the mechanisms and therapeutic targets for treatment of PH.
Insights
MicroRNA-210 (miR-210) drives pulmonary hypertension (PH) in mice exposed to chronic hypoxia. Inhibiting miR-210 may offer a therapeutic strategy for PH by targeting mitochondrial function.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Mitochondrial Medicine
Background:
- Chronic hypoxia is a significant cause of pulmonary hypertension (PH).
- The precise molecular mechanisms linking hypoxia to PH require further elucidation.
- MicroRNAs (miRNAs) are emerging as key regulators in cardiovascular diseases.
Purpose of the Study:
- To investigate the role of microRNA-210 (miR-210) in mediating hypoxia-induced pulmonary hypertension (PH).
- To determine if miR-210 targets mitochondrial metabolism and reactive oxygen species (mtROS) production in the lungs.
- To explore miR-210 as a potential therapeutic target for PH.
Main Methods:
- Adult wildtype (WT) and miR-210 knockout (KO) mice were subjected to chronic hypoxia or normoxia for 4 weeks.
- Measurements included miR-210 levels, right ventricular systolic pressure (RVSP), and lung/heart histology.
- Mitochondrial bioenergetics and mtROS production were assessed in isolated lung mitochondria.
Main Results:
- Hypoxia induced PH markers (RVSP, vascular remodeling) in WT mice, but not in miR-210 KO mice.
- miR-210 deficiency abrogated hypoxia-induced increases in mitochondrial oxygen consumption and mtROS production.
- miR-210 overexpression mimicked hypoxia effects, while MitoQ reversed them, confirming miR-210's central role.
Conclusions:
- miR-210 is a critical mediator of hypoxia-induced pulmonary hypertension in a murine model.
- The mechanism involves upregulation of mitochondrial bioenergetics and mtROS production.
- These findings highlight miR-210 and mitochondrial pathways as potential therapeutic targets for PH.
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