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Updated: Dec 26, 2025

In Vivo Nanovector Delivery of a Heart-specific MicroRNA-sponge
Published on: June 15, 2018
Pharmacological Silencing of MicroRNA-152 Prevents Pressure Overload-Induced Heart Failure
Thomas J LaRocca1, Timon Seeger2, Maricela Prado3
1Division of Critical Care Medicine, Department of Pediatrics, Lucile Packard Children's Hospital (T.J.L.), Stanford University School of Medicine, CA.
Background:
MicroRNAs are small, noncoding RNAs that play a key role in gene expression. Accumulating evidence suggests that aberrant microRNA expression contributes to the heart failure (HF) phenotype; however, the underlying molecular mechanisms are not well understood. A better understanding of the mechanisms of action of microRNAs could potentially lead to targeted therapies that could halt the progression or even reverse HF.
Methods And Results:
We found that microRNA-152 (miR-152) expression was upregulated in the failing human heart and experimental animal models of HF. Transgenic mice with cardiomyocyte-specific miR-152 overexpression developed systolic dysfunction (mean difference, -38.74% [95% CI, -45.73% to -31.74%]; P<0.001) and dilated cardiomyopathy. At the cellular level, miR-152 overexpression perturbed mitochondrial ultrastructure and dysregulated key genes involved in cardiomyocyte metabolism and inflammation. Mechanistically, we identified Glrx5 (glutaredoxin 5), a critical regulator of mitochondrial iron homeostasis and iron-sulfur cluster synthesis, as a direct miR-152 target. Finally, a proof-of-concept of the therapeutic efficacy of targeting miR-152 in vivo was obtained by utilizing a locked nucleic acid-based inhibitor of miR-152 (LNA 152) in a murine model of HF subjected to transverse aortic constriction. We demonstrated that animals treated with LNA-152 (n=10) showed preservation of systolic function when compared with locked nucleic acid-control treated animals (n=9; mean difference, 18.25% [95% CI, 25.10% to 11.39%]; P<0.001).
Conclusions:
The upregulation of miR-152 expression in the failing myocardium contributes to HF pathophysiology. Preclinical evidence suggests that miR-152 inhibition preserves cardiac function in a model of pressure overload-induced HF. These findings offer new insights into the pathophysiology of HF and point to miR-152-Glrx5 axis as a potential novel therapeutic target.
Insights
Upregulated microRNA-152 (miR-152) in heart failure (HF) disrupts cardiac function and metabolism. Inhibiting miR-152 with LNA-152 shows therapeutic potential by preserving heart function in HF models.
Area of Science:
- Molecular Biology
- Cardiovascular Research
- Gene Regulation
Background:
- MicroRNAs regulate gene expression; aberrant expression is linked to heart failure (HF).
- Understanding microRNA mechanisms is crucial for developing targeted HF therapies.
Purpose of the Study:
- Investigate the role of microRNA-152 (miR-152) in HF pathophysiology.
- Identify miR-152's molecular targets and therapeutic potential in HF.
Main Methods:
- Measured miR-152 levels in failing human hearts and animal models.
- Overexpressed miR-152 in transgenic mice to assess cardiac function and cellular changes.
- Identified miR-152 targets using molecular assays.
- Administered miR-152 inhibitors (LNA-152) in a murine HF model.
Main Results:
- miR-152 was upregulated in failing hearts.
- miR-152 overexpression induced systolic dysfunction and dilated cardiomyopathy in mice.
- miR-152 dysregulated mitochondrial function, metabolism, and inflammation.
- Glrx5 was identified as a direct miR-152 target.
- LNA-152 treatment preserved cardiac function in a HF mouse model.
Conclusions:
- miR-152 upregulation contributes to HF pathophysiology.
- Targeting the miR-152-Glrx5 axis offers a potential therapeutic strategy for HF.
- Inhibiting miR-152 demonstrates therapeutic efficacy in preclinical HF models.
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MicroRNAs

