DLX5, FGF8 and the Pin1 isomerase control ΔNp63α protein stability during limb development: a regulatory loop at the basis of the SHFM and EEC congenital malformations

Hum Mol Genet. 2014 Jul 15;23(14):3830-42. doi: 10.1093/hmg/ddu096. Epub 2014 Feb 25.

Abstract

Ectrodactyly, or Split-Hand/Foot Malformation (SHFM), is a congenital condition characterized by the loss of central rays of hands and feet. The p63 and the DLX5;DLX6 transcription factors, expressed in the embryonic limb buds and ectoderm, are disease genes for these conditions. Mutations of p63 also cause the ectodermal dysplasia-ectrodactyly-cleft lip/palate (EEC) syndrome, comprising SHFM. Ectrodactyly is linked to defects of the apical ectodermal ridge (AER) of the developing limb buds. FGF8 is the key signaling molecule in this process, able to direct proximo-distal growth and patterning of the skeletal primordial of the limbs. In the limb buds of both p63 and Dlx5;Dlx6 murine models of SHFM, the AER is poorly stratified and FGF8 expression is severely reduced. We show here that the FGF8 locus is a downstream target of DLX5 and that FGF8 counteracts Pin1-ΔNp63α interaction. In vivo, lack of Pin1 leads to accumulation of the p63 protein in the embryonic limbs and ectoderm. We show also that ΔNp63α protein stability is negatively regulated by the interaction with the prolyl-isomerase Pin1, via proteasome-mediated degradation; p63 mutant proteins associated with SHFM or EEC syndromes are resistant to Pin1 action. Thus, DLX5, p63, Pin1 and FGF8 participate to the same time- and location-restricted regulatory loop essential for AER stratification, hence for normal patterning and skeletal morphogenesis of the limb buds. These results shed new light on the molecular mechanisms at the basis of the SHFM and EEC limb malformations.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Body Patterning
  • Cell Line
  • Disease Models, Animal
  • Ectoderm / embryology*
  • Ectoderm / metabolism
  • Fibroblast Growth Factor 8 / metabolism*
  • Gene Knockout Techniques
  • Homeodomain Proteins / genetics
  • Homeodomain Proteins / metabolism*
  • Humans
  • Limb Buds / embryology
  • Limb Deformities, Congenital / metabolism*
  • Limb Deformities, Congenital / pathology
  • Mice
  • NIMA-Interacting Peptidylprolyl Isomerase
  • Peptidylprolyl Isomerase / metabolism*
  • Phosphoproteins / genetics
  • Phosphoproteins / metabolism*
  • Protein Stability
  • Trans-Activators / genetics
  • Trans-Activators / metabolism*

Substances

  • Dlx5 protein, mouse
  • Homeodomain Proteins
  • NIMA-Interacting Peptidylprolyl Isomerase
  • Phosphoproteins
  • Trans-Activators
  • Trp63 protein, mouse
  • Fibroblast Growth Factor 8
  • PIN1 protein, human
  • Peptidylprolyl Isomerase
  • Pin1 protein, mouse