Sprouty2/4 deficiency disrupts early signaling centers impacting chondrogenesis in the mouse forelimb

Linda Dalecka1,2, Eva Hruba3,4, Marketa Andrasova1,5

  • 1First Faculty of Medicine, Institute of Histology and Embryology, Charles University, 128 00 Prague, Czech Republic.

JBMR Plus
|February 5, 2025
PubMed

Insights

Sprouty2 and Sprouty4 proteins are crucial for limb development, regulating FGF signaling. Their deficiency causes forelimb defects by disrupting key signaling centers like the apical ectodermal ridge and zone of polarizing activity.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Fibroblast Growth Factor (FGF) signaling is vital for limb development, controlling cell behaviors.
  • Sprouty proteins (Spry2, Spry4) negatively regulate FGF signaling, acting as feedback inhibitors.
  • Sprouty2/4 deficiency in mice leads to limb malformations, potentially linked to ciliopathies.

Purpose of the Study:

  • To investigate the mechanisms underlying limb defects in Sprouty2+/-;Sprouty4-/- mice.
  • To correlate limb pathologies with dynamic expression patterns of Sprouty2 and Sprouty4.
  • To assess the impact of Sprouty2/4 deficiency on limb bud signaling centers.

Main Methods:

  • Phenotypic characterization of limb defects in Sprouty2+/-;Sprouty4-/- mice.
  • Analysis of Sprouty2 and Sprouty4 expression patterns during limb development.
  • Assessment of signaling center integrity (apical ectodermal ridge, zone of polarizing activity) using techniques like lineage tracing and gene expression analysis.
  • Micro-computed tomography (micro-CT) for detailed bone structure analysis.

Main Results:

  • Sprouty2 and Sprouty4 exhibit dynamic expression during limb development, with hindlimbs unaffected but forelimbs showing variable defects.
  • Forelimb pathologies included digit abnormalities, fusions, and ectopic ossification, with left forelimbs more severely affected.
  • Limb buds displayed disrupted Fgf8 expression in the apical ectodermal ridge and altered Sonic hedgehog signaling in the zone of polarizing activity.

Conclusions:

  • Sprouty2 and Sprouty4 are essential for normal forelimb development, regulating critical signaling centers.
  • Disruption of Sprouty2/4 function impacts FGF and Hedgehog signaling crosstalk during limb patterning.
  • These findings highlight the role of Sproutys in maintaining signaling homeostasis for proper limb formation.

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