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Tissue-specific miRNA Expression Profiling in Mouse Heart Sections Using In Situ Hybridization
Published on: September 15, 2018
Thyroid Hormone-Regulated Cardiac microRNAs are Predicted to Suppress Pathological Hypertrophic Signaling
Rob Janssen1, Marian J Zuidwijk1, Diederik W D Kuster1
1Department of Physiology, VU University Medical Center, Institute for Cardiovascular Research , Amsterdam , Netherlands.
Insights
Thyroid hormone (TH) regulates heart size. This study found TH-dependent microRNAs (miRNAs) suppress pathological cardiac hypertrophy, offering new insights into heart remodeling.
Area of Science:
- Cardiovascular Biology
- Molecular Endocrinology
- Genomics
Background:
- Thyroid hormone (TH) influences cardiomyocyte size and cardiac function.
- Physiological cardiac hypertrophy, induced by TH, maintains normal function, unlike pathological hypertrophy which leads to dysfunction.
- MicroRNAs (miRNAs) are key regulators of signaling pathways involved in cardiac remodeling.
Purpose of the Study:
- To investigate the role of miRNAs in thyroid hormone-induced cardiac hypertrophy.
- To identify specific miRNAs regulated by TH in the left ventricle (LV).
- To elucidate how these miRNAs modulate hypertrophic signaling pathways.
Main Methods:
- A mouse model of TH-induced cardiac hypertrophy was established using C57Bl/6J mice treated with propylthiouracil and TH (T3).
- RNA was isolated from the left ventricle (LV) for miRNA expression profiling using Taqman Megaplex arrays.
- Ingenuity Pathway Analysis was employed to predict target mRNAs and their involvement in hypertrophic signaling.
Main Results:
- T3 treatment significantly increased LV weight by 38%.
- A total of 52 T3-regulated miRNAs (>2-fold change, p<0.05) were identified.
- Analysis revealed 27 bona fide mRNA targets, with 56% predicted to suppress pathological remodeling and 19% to enhance physiological hypertrophy.
Conclusions:
- Thyroid hormone action in the heart involves regulation by a unique set of TH-dependent miRNAs.
- These miRNAs primarily act to suppress pathological hypertrophic signaling pathways.
- This finding provides novel insights into the progression of adverse cardiac remodeling, especially in conditions with decreased TH levels.
Abstract:
Cardiomyocyte size in the healthy heart is in part determined by the level of circulating thyroid hormone (TH). Higher levels of TH induce ventricular hypertrophy, primarily in response to an increase in hemodynamic load. Normal cardiac function is maintained in this form of hypertrophy, whereas progressive contractile dysfunction is a hallmark of pathological hypertrophy. MicroRNAs (miRNAs) are important modulators of signal-transduction pathways driving adverse remodeling. Because little is known about the involvement of miRNAs in cardiac TH action and hypertrophy, we examined the miRNA expression profile of the hypertrophied left ventricle (LV) using a mouse model of TH-induced cardiac hypertrophy. C57Bl/6J mice were rendered hypothyroid by treatment with propylthiouracil and were subsequently treated for 3 days with TH (T3) or saline. T3 treatment increased LV weight by 38% (p < 0.05). RNA was isolated from the LV and expression of 641 mouse miRNAs was determined using Taqman Megaplex arrays. Data were analyzed using RQ-manager and DataAssist. A total of 52 T3-regulated miRNAs showing a >2-fold change (p < 0.05) were included in Ingenuity Pathway Analysis to predict target mRNAs involved in cardiac hypertrophy. The analysis was further restricted to proteins that have been validated as key factors in hypertrophic signal transduction in mouse models of ventricular remodeling. A total of 27 mRNAs were identified as bona fide targets. The predicted regulation of 19% of these targets indicates enhancement of physiological hypertrophy, while 56% indicates suppression of pathological remodeling. Our data suggest that cardiac TH action includes a novel level of regulation in which a unique set of TH-dependent miRNAs primarily suppresses pathological hypertrophic signaling. This may be relevant for our understanding of the progression of adverse remodeling, since cardiac TH levels are known to decrease substantially in various forms of pathological hypertrophy.
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