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Updated: Nov 19, 2025

In Vitro Differentiation of Human Pluripotent Stem Cells into Trophoblastic Cells
Published on: March 16, 2017
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.
Abstract:
Activating PIK3CA mutations are known 'drivers' of human cancer and developmental overgrowth syndromes. We recently demonstrated that the 'hotspot' PIK3CAH1047R variant exerts unexpected allele dose-dependent effects on stemness in human pluripotent stem cells (hPSCs). In this study, we combine high-depth transcriptomics, total proteomics and reverse-phase protein arrays to reveal potentially disease-related alterations in heterozygous cells, and to assess the contribution of activated TGFβ signalling to the stemness phenotype of homozygous PIK3CAH1047R cells. We demonstrate signalling rewiring as a function of oncogenic PI3K signalling strength, and provide experimental evidence that self-sustained stemness is causally related to enhanced autocrine NODAL/TGFβ signalling. A significant transcriptomic signature of TGFβ pathway activation in heterozygous PIK3CAH1047R was observed but was modest and was not associated with the stemness phenotype seen in homozygous mutants. Notably, the stemness gene expression in homozygous PIK3CAH1047R hPSCs was reversed by pharmacological inhibition of NODAL/TGFβ signalling, but not by pharmacological PI3Kα pathway inhibition. Altogether, this provides the first in-depth analysis of PI3K signalling in hPSCs and directly links strong PI3K activation to developmental NODAL/TGFβ signalling. This work illustrates the importance of allele dosage and expression when artificial systems are used to model human genetic disease caused by activating PIK3CA mutations. This article has an associated First Person interview with the first author of the paper.
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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