Influence of miR-221/222 on cardiomyocyte calcium handling and function

Maria Knyrim1, Sindy Rabe2, Claudia Grossmann2

  • 1Julius-Bernstein-Institute of Physiology, Martin Luther University Halle-Wittenberg, Magdeburger Str. 6, 06110, Halle (Saale), Germany. maria.knyrim@medizin.uni-halle.de.

Cell & Bioscience
|August 18, 2021
PubMed

Insights

MicroRNAs miR-221/222 impact cardiac electrical remodeling by altering L-type calcium channel function and calcium handling. This affects cardiomyocyte contractility and heart rate, potentially leading to systolic dysfunction.

Area of Science:

  • Cardiology
  • Molecular Biology
  • Ion Channel Physiology

Background:

  • Cardiovascular disease is a leading global cause of mortality.
  • Cardiac electrical remodeling, involving ion channels and calcium homeostasis, impairs heart function.
  • The role of miR-221/222 in cardiac electrical remodeling was previously unexplored.

Purpose of the Study:

  • To investigate the influence of miR-221/222 on cardiomyocyte calcium handling and function.
  • To determine the impact of miR-221/222 on L-type calcium channel (LTCC) activity.
  • To evaluate the role of miR-221/222 in cardiac electrical remodeling.

Main Methods:

  • HL-1 cells and neonatal cardiomyocytes were used.
  • Transfection with miR-221/222 mimics was performed.
  • Calcium entry, calcium release from the sarcoplasmic reticulum, and cellular electrophysiology were measured.

Main Results:

  • miR-221/222 mimics reduced depolarization-dependent calcium entry and increased non-responding cells.
  • Angiotensin II-induced calcium release was unaffected.
  • Isoprenaline-induced positive inotropic and chronotropic effects were diminished in miR-222-transfected cells.

Conclusions:

  • miR-221/222 play a significant role in cardiac electrical remodeling.
  • These microRNAs impact beta-adrenergic regulation of LTCC function, calcium handling, and beating frequency.
  • The findings expand understanding of miR-221/222 in cardiac ion channel regulation and potential for reduced contractility.
Abstract

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