NODAL/TGFβ signalling mediates the self-sustained stemness induced by PIK3CAH1047R homozygosity in pluripotent stem

Ralitsa R Madsen1,2,3, James Longden4,5, Rachel G Knox2,3

  • 1Centre for Cardiovascular Science, Queen's Medical Research Institute, University of Edinburgh, Edinburgh EH16 4TJ, UK.

Insights

Activating PIK3CA mutations drive cancer. Strong PI3K signaling in stem cells causes self-sustained stemness via NODAL/TGFβ, highlighting allele dose importance in disease modeling.

Area of Science:

  • Cell Biology
  • Cancer Biology
  • Developmental Biology

Background:

  • Activating PIK3CA mutations are key drivers of cancer and developmental disorders.
  • The PIK3CAH1047R variant shows allele dose-dependent effects on human pluripotent stem cell (hPSC) stemness.

Purpose of the Study:

  • Investigate disease-related alterations in heterozygous cells.
  • Assess TGFβ signaling's role in homozygous PIK3CAH1047R stemness.
  • Understand PI3K signaling impact on hPSC stemness.

Main Methods:

  • High-depth transcriptomics
  • Total proteomics
  • Reverse-phase protein arrays
  • Pharmacological inhibition assays

Main Results:

  • Signaling rewiring observed based on oncogenic PI3K strength.
  • Self-sustained stemness linked to enhanced autocrine NODAL/TGFβ signaling.
  • TGFβ pathway activation in heterozygous cells was modest and not linked to stemness.
  • Stemness in homozygous cells reversed by NODAL/TGFβ inhibition, not PI3Kα inhibition.

Conclusions:

  • First in-depth analysis of PI3K signaling in hPSCs.
  • Strong PI3K activation directly linked to developmental NODAL/TGFβ signaling.
  • Demonstrates importance of allele dosage in modeling genetic diseases.

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