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Tissue-specific miRNA Expression Profiling in Mouse Heart Sections Using In Situ Hybridization
Published on: September 15, 2018
MicroRNA-574 regulates FAM210A expression and influences pathological cardiac remodeling
Jiangbin Wu1, Kadiam C Venkata Subbaiah1, Feng Jiang1,2
1Department of Medicine, Aab Cardiovascular Research Institute, University of Rochester School of Medicine & Dentistry, Rochester, New York, NY, USA.
Abstract:
Aberrant expression of mitochondrial proteins impairs cardiac function and causes heart disease. The mechanism of regulation of mitochondria encoded protein expression during cardiac disease, however, remains underexplored. Here, we show that multiple pathogenic cardiac stressors induce the expression of miR-574 guide and passenger strands (miR-574-5p/3p) in both humans and mice. miR-574 knockout mice exhibit severe cardiac disorder under different pathogenic cardiac stresses while miR-574-5p/3p mimics that are delivered systematically using nanoparticles reduce cardiac pathogenesis under disease insults. Transcriptomic analysis of miR-574-null hearts uncovers family with sequence similarity 210 member A (FAM210A) as a common target mRNA of miR-574-5p and miR-574-3p. The interactome capture analysis suggests that FAM210A interacts with mitochondrial translation elongation factor EF-Tu. Manipulating miR-574-5p/3p or FAM210A expression changes the protein expression of mitochondrial-encoded electron transport chain (ETC) genes but not nuclear-encoded mitochondrial ETC genes in both human AC16 cardiomyocyte cells and miR-574-null murine hearts. Together, we discovered that miR-574 regulates FAM210A expression and modulates mitochondrial-encoded protein expression, which may influence cardiac remodeling in heart failure.
Insights
MicroRNA-574 (miR-574) regulates mitochondrial protein expression and cardiac function. This study reveals miR-574
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Genetics
Background:
- Aberrant mitochondrial protein expression contributes to heart disease.
- Mechanisms regulating mitochondrial protein expression in cardiac disease are not fully understood.
Purpose of the Study:
- To investigate the role of microRNA-574 (miR-574) in regulating mitochondrial protein expression during cardiac stress.
- To identify the downstream targets and functions of miR-574 in the heart.
Main Methods:
- Utilized miR-574 knockout and mimic mouse models.
- Performed transcriptomic and interactome capture analyses.
- Assessed mitochondrial-encoded electron transport chain (ETC) gene expression in human cardiomyocytes and mouse hearts.
Main Results:
- Pathogenic cardiac stressors increased miR-574 expression in humans and mice.
- miR-574 deficiency caused severe cardiac disorder, while miR-574 mimics ameliorated disease.
- Identified FAM210A as a direct target of miR-574, interacting with EF-Tu and modulating mitochondrial-encoded ETC gene expression.
Conclusions:
- miR-574 regulates FAM210A expression, impacting mitochondrial-encoded protein synthesis.
- This pathway influences cardiac remodeling and may be a therapeutic target for heart failure.
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