Integrin-linked kinase, a novel component of the cardiac mechanical stretch sensor, controls contractility in the zebrafish heart

  1. Garnet Bendig1,4,
  2. Matthias Grimmler2,4,
  3. Inken G. Huttner1,
  4. Georgia Wessels1,
  5. Tillman Dahme1,
  6. Steffen Just1,
  7. Nicole Trano1,
  8. Hugo A. Katus1,
  9. Mark C. Fishman3, and
  10. Wolfgang Rottbauer1,5
  1. 1Department of Medicine III, University of Heidelberg, D-69120 Heidelberg, Germany;
  2. 2Department of Biochemistry, Biocenter at the University of Würzburg, D-97074 Würzburg, Germany;
  3. 3Cardiovascular Research Center, Massachusetts General Hospital and Department of Medicine, Harvard Medical School, Boston, Massachusetts 02114, USA
    1. 4 These authors contributed equally to this work.

    Abstract

    The vertebrate heart possesses autoregulatory mechanisms enabling it first to sense and then to adapt its force of contraction to continually changing demands. The molecular components of the cardiac mechanical stretch sensor are mostly unknown but of immense medical importance, since dysfunction of this sensing machinery is suspected to be responsible for a significant proportion of human heart failure. In the hearts of the ethylnitros-urea (ENU)-induced, recessive embryonic lethal zebrafish heart failure mutant main squeeze (msq), we find stretch-responsive genes such as atrial natriuretic factor (anf) and vascular endothelial growth factor (vegf) severely down-regulated. We demonstrate through positional cloning that heart failure in msq mutants is due to a mutation in the integrin-linked kinase (ilk) gene. ILK specifically localizes to costameres and sarcomeric Z-discs. The msq mutation (L308P) reduces ILK kinase activity and disrupts binding of ILK to the Z-disc adaptor protein β-parvin (Affixin). Accordingly, in msq mutant embryos, heart failure can be suppressed by expression of ILK, and also of a constitutively active form of Protein Kinase B (PKB), and VEGF. Furthermore, antisense-mediated abrogation of zebrafish β-parvin phenocopies the msq phenotype. Thus, we provide evidence that the heart uses the Integrin–ILK–β-parvin network to sense mechanical stretch and respond with increased expression of ANF and VEGF, the latter of which was recently shown to augment cardiac force by increasing the heart's calcium transients.

    Keywords

    Footnotes

    • 5 Corresponding author.

      5 E-MAIL wolfgang.rottbauer{at}med.uni-heidelberg.de; FAX 49-6221-564866.

    • Supplemental material is available at http://www.genesdev.org.

    • Article published online ahead of print. Article and publication date are online at http://www.genesdev.org/cgi/doi/10.1101/gad.1448306.

      • Received May 9, 2006.
      • Accepted July 7, 2006.

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