Multiple congenital malformations arise from somatic mosaicism for constitutively active Pik3ca signaling

Elise Marechal1, Anne Poliard2,3, Kilian Henry3

  • 1INSERM, MMG, U1251, MarMaRa Institute, Aix Marseille University, Marseille, France.

Insights

Mutations in PIK3CA cause overgrowth disorders. This study investigated PIK3CA

Area of Science:

  • Developmental Biology
  • Oncology
  • Genetics

Background:

  • Recurrent PIK3CA mutations drive human cancers and PIK3CA-related disorders (PRDs), characterized by tissue overgrowth.
  • PIK3CA activation in endothelial cells causes vascular malformations in PRDs.
  • PRDs affect neuroectodermal derivatives, but their developmental origins are not fully understood.

Purpose of the Study:

  • To investigate the developmental impact of PIK3CA mutations in neural crest and related embryonic lineages.
  • To examine the role of PIK3CA in cephalic and body vascular connective tissues.
  • To identify novel PRDs and understand signaling mechanisms in craniofacial and vascular development.

Main Methods:

  • Expressed the common H1047R PIK3CA mutation in neural crest and embryonic lineages in mice.
  • Utilized Egr2 (Krox20) Cre driver to study PIK3CA activity in body vascular connective tissues.
  • Employed lineage tracing and analyzed Schwann cell precursors expressing Krox20 or Sox10.

Main Results:

  • PIK3CA activation in neural crest led to macrocephaly, cleft palate, skull anomalies, and cephalic vascular anomalies.
  • PIK3CA activity in Krox20-expressing lineages revealed new lineages, including vascular pericytes and fibroblasts, involved in pathogenesis.
  • Mutant PI3K in Schwann cell precursors was associated with vascular and other tumors.

Conclusions:

  • Constitutive PIK3CA activation in neural crest and related cells contributes to craniofacial and vascular abnormalities.
  • PIK3CA signaling influences vascular pericytes and fibroblasts derived from Krox20-expressing lineages.
  • These findings may help identify new human PRDs and elucidate signaling pathways in tissue overgrowth.

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