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.
Abstract:
Recurrent missense mutations of the PIK3CA oncogene are among the most frequent drivers of human cancers. These often lead to constitutive activation of its product p110α, a phosphatidylinositol 3-kinase (PI3K) catalytic subunit. In addition to causing a broad range of cancers, the H1047R mutation is also found in affected tissues of a distinct set of congenital tumors and malformations. Collectively termed PIK3CA-related disorders (PRDs), these lead to overgrowth of brain, adipose, connective and musculoskeletal tissues and/or blood and lymphatic vessel components. Vascular malformations are frequently observed in PRD, due to cell-autonomous activation of PI3K signaling within endothelial cells. These, like most muscle, connective tissue and bone, are derived from the embryonic mesoderm. However, important organ systems affected in PRDs are neuroectodermal derivatives. To further examine their development, we drove the most common post-zygotic activating mutation of Pik3ca in neural crest and related embryonic lineages. Outcomes included macrocephaly, cleft secondary palate and more subtle skull anomalies. Surprisingly, Pik3ca-mutant subpopulations of neural crest origin were also associated with widespread cephalic vascular anomalies. Mesectodermal neural crest is a major source of non-endothelial connective tissue in the head, but not the body. To examine the response of vascular connective tissues of the body to constitutive Pik3ca activity during development, we expressed the mutation by way of an Egr2 (Krox20) Cre driver. Lineage tracing led us to observe new lineages that had normally once expressed Krox20 and that may be co-opted in pathogenesis, including vascular pericytes and perimysial fibroblasts. Finally, Schwann cell precursors having transcribed either Krox20 or Sox10 and induced to express constitutively active PI3K were associated with vascular and other tumors. These murine phenotypes may aid discovery of new candidate human PRDs affecting craniofacial and vascular smooth muscle development as well as the reciprocal paracrine signaling mechanisms leading to tissue overgrowth.
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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