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The miRNA-212/132 family regulates both cardiac hypertrophy and cardiomyocyte autophagy

  • Ahmet Ucar
  • , Shashi K. Gupta
  • , Jan Fiedler
  • , Erdem Erikci
  • , Michal Kardasinski
  • , Sandor Batkai
  • , Seema Dangwal
  • , Regalla Kumarswamy
  • , Claudia Bang
  • , Angelika Holzmann
  • , Janet Remke
  • , Massimiliano Caprio
  • , Claudia Jentzsch
  • , Stefan Engelhardt
  • , Sabine Geisendorf
  • , Carolina Glas
  • , Thomas G. Hofmann
  • , Michelle Nessling
  • , Karsten Richter
  • , Mario Schiffer
  • Lucie Carrier, L. Christian Napp, Johann Bauersachs, Kamal Chowdhury, Thomas Thum
  • Max Planck Institute for Biophysical Chemistry
  • German Cancer Research Center
  • Medizinische Hochschule Hannover
  • IRCCS San Raffaele Pisana
  • Technical University of Munich
  • Munich Heart Alliance
  • Mount Desert Island Biological Laboratories
  • Universitätsklinikum Hamburg-Eppendorf

Research output: Contribution to journalArticlepeer-review

582 Scopus citations

Abstract

Pathological growth of cardiomyocytes (hypertrophy) is a major determinant for the development of heart failure, one of the leading medical causes of mortality worldwide. Here we show that the microRNA (miRNA)-212/132 family regulates cardiac hypertrophy and autophagy in cardiomyocytes. Hypertrophic stimuli upregulate cardiomyocyte expression of miR-212 and miR-132, which are both necessary and sufficient to drive the hypertrophic growth of cardiomyocytes. MiR-212/132 null mice are protected from pressure-overload- induced heart failure, whereas cardiomyocyte-specific overexpression of the miR-212/132 family leads to pathological cardiac hypertrophy, heart failure and death in mice. Both miR-212 and miR-132 directly target the anti-hypertrophic and pro-autophagic FoxO3 transcription factor and overexpression of these miRNAs leads to hyperactivation of pro-hypertrophic calcineurin/NFAT signalling and an impaired autophagic response upon starvation. Pharmacological inhibition of miR-132 by antagomir injection rescues cardiac hypertrophy and heart failure in mice, offering a possible therapeutic approach for cardiac failure.

Original languageEnglish
Article number1078
JournalNature Communications
Volume3
DOIs
StatePublished - 2012

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