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In Vivo Nanovector Delivery of a Heart-specific MicroRNA-sponge
Published on: June 15, 2018
Nuclear-mitochondrial communication involving miR-181c plays an important role in cardiac dysfunction during obesity
Barbara Roman1, Pawandeep Kaur2, Deepthi Ashok3
1Department of Pathology, Johns Hopkins School of Medicine, Baltimore, MD, United States of America.
Aims:
In cardiomyocytes, there is microRNA (miR) in the mitochondria that originates from the nuclear genome and matures in the cytoplasm before translocating into the mitochondria. Overexpression of one such miR, miR-181c, can lead to heart failure by stimulating reactive oxygen species (ROS) production and increasing mitochondrial calcium level ([Ca2+]m). Mitochondrial calcium uptake 1 protein (MICU1), a regulatory protein in the mitochondrial calcium uniporter complex, plays an important role in regulating [Ca2+]m. Obesity results in miR-181c overexpression and a decrease in MICU1. We hypothesize that lowering miR-181c would protect against obesity-induced cardiac dysfunction.
Methods And Results:
We used an in vivo mouse model of high-fat diet (HFD) for 18 weeks and induced high lipid load in H9c2 cells with oleate-conjugated bovine serum albumin in vitro. We tested the cardioprotective role of lowering miR-181c by using miR-181c/d-/- mice (in vivo) and AntagomiR against miR-181c (in vitro). HFD significantly upregulated heart levels of miR-181c and led to cardiac hypertrophy in wild-type mice, but not in miR-181c/d-/- mice. HFD also increased ROS production and pyruvate dehydrogenase activity (a surrogate for [Ca2+]m), but the increases were alleviated in miR-181c/d-/- mice. Moreover, miR-181c/d-/- mice fed a HFD had higher levels of MICU1 than did wild-type mice fed a HFD, attenuating the rise in [Ca2+]m. Overexpression of miR-181c in neonatal ventricular cardiomyocytes (NMVM) caused increased ROS production, which oxidized transcription factor Sp1 and led to a loss of Sp1, thereby slowing MICU1 transcription. Hence, miR-181c increases [Ca2+]m through Sp1 oxidation and downregulation of MICU1, suggesting that the cardioprotective effect of miR-181c/d-/- results from inhibition of Sp1 oxidation.
Conclusion:
This study has identified a unique nuclear-mitochondrial communication mechanism in the heart orchestrated by miR-181c. Obesity-induced overexpression of miR-181c increases [Ca2+]m via downregulation of MICU1 and leads to cardiac injury. A strategy to inhibit miR-181c in cardiomyocytes can preserve cardiac function during obesity by improving mitochondrial function. Altering miR-181c expression may provide a pharmacologic approach to improve cardiomyopathy in individuals with obesity/type 2 diabetes.
Insights
Lowering microRNA-181c (miR-181c) protects against obesity-induced heart dysfunction by improving mitochondrial calcium levels and reducing reactive oxygen species. This suggests miR-181c inhibition as a potential therapy for obesity-related cardiomyopathy.
Area of Science:
- Molecular Cardiology
- Mitochondrial Biology
- MicroRNA Therapeutics
Background:
- Mitochondria contain microRNAs (miRs) originating from the nuclear genome.
- Overexpression of miR-181c in cardiomyocytes elevates reactive oxygen species (ROS) and mitochondrial calcium ([Ca2+]m), contributing to heart failure.
- Obesity is linked to increased miR-181c and decreased mitochondrial calcium uptake 1 protein (MICU1), a key regulator of [Ca2+]m.
Purpose of the Study:
- To investigate the cardioprotective role of lowering miR-181c in obesity-induced cardiac dysfunction.
- To elucidate the mechanism by which miR-181c influences mitochondrial function and cardiac health.
Main Methods:
- Utilized a high-fat diet (HFD) mouse model and in vitro H9c2 cells to simulate obesity-induced cardiac stress.
- Employed miR-181c/d knockout (KO) mice and AntagomiR treatment to inhibit miR-181c.
- Assessed cardiac hypertrophy, ROS production, [Ca2+]m surrogate (pyruvate dehydrogenase activity), and MICU1 levels.
Main Results:
- HFD induced cardiac hypertrophy and increased miR-181c in wild-type mice, but not in miR-181c/d KO mice.
- miR-181c/d KO mice showed alleviated ROS production and normalized [Ca2+]m levels under HFD conditions.
- miR-181c overexpression led to MICU1 downregulation via Sp1 oxidation, while inhibiting miR-181c preserved MICU1 levels and cardiac function.
Conclusions:
- miR-181c orchestrates nuclear-mitochondrial communication, with obesity-induced overexpression leading to cardiac injury via MICU1 downregulation.
- Inhibiting miR-181c preserves cardiac function in obesity by enhancing mitochondrial function and regulating [Ca2+]m.
- Targeting miR-181c presents a potential pharmacological strategy for managing obesity-related cardiomyopathy and type 2 diabetes.
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