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.

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