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Updated: May 27, 2026

Defining Gene Functions in Tumorigenesis by Ex vivo Ablation of Floxed Alleles in Malignant Peripheral Nerve Sheath Tumor Cells
Published on: August 25, 2021
Igf2 ligand dependency of Pten(+/-) developmental and tumour phenotypes in the mouse
D N Church1, B R Phillips, D J Stuckey
1Sir William Dunn School of Pathology, University of Oxford, Oxford, UK.
Abstract:
The tumour suppressor PTEN is a key negative regulator of the PI3K-Akt pathway, and is frequently either reduced or lost in human tumours. Murine genetic studies have confirmed that reduction of Pten promotes tumourigenesis in multiple organs, and demonstrated dependency of tumour development on the activation of downstream components such as Akt. Insulin-like growth factors (IGFs) act via IGF1R to activate the PI3K-Akt pathway, and are commonly upregulated in cancer. A context-dependent interplay between IGFs and PTEN exists in normal tissue and tumours; increased IGF2 ligand supply induces Pten expression creating an autoregulatory negative feedback loop, whereas complete loss of PTEN may either cooperate with IGF overexpression in tumour promotion, or result in desensitisation to IGF ligand. However, it remains unknown whether neoplasia associated with Pten loss is dependent on upstream IGF ligand supply in vivo. We evaluated this by generation of Pten(+/-) mice with differing allelic dosage of Igf2, an imprinted gene encoding the potent embryonic and tumour growth factor Igf2. We show that biallelic Igf2 supply potentiates a previously unreported Pten(+/-) placental phenotype and results in strain-dependent cardiac hyperplasia and neonatal lethality. Importantly, we also show that the effects of Pten loss in vivo are modified by Igf2 supply, as lack of Igf2 results in extended survival and delayed tumour development while biallelic supply is associated with reduced lifespan and accelerated neoplasia in females. Furthermore, we demonstrate that reduction of PTEN protein to heterozygote levels in human MCF7 cells is associated with increased proliferation in response to IGF2, and does not result in desensitisation to IGF2 signalling. These data indicate that the effects of Pten loss at heterozygote levels commonly observed in human tumours are modified by Igf2 ligand, and emphasise the importance of the evaluation of upstream pathways in tumours with Pten loss.
Insights
Tumor suppressor PTEN loss accelerates cancer development, but this effect is influenced by Insulin-like Growth Factor 2 (IGF2) levels. Reduced IGF2 extends survival, while increased IGF2 shortens lifespan and speeds up neoplasia in females.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The tumor suppressor PTEN negatively regulates the PI3K-Akt pathway, crucial in cancer development.
- Insulin-like Growth Factors (IGFs) activate this pathway and are often upregulated in cancer.
- The interaction between IGFs and PTEN in tumors is complex and context-dependent.
Purpose of the Study:
- To investigate if PTEN loss-associated neoplasia depends on upstream IGF ligand supply in vivo.
- To elucidate the interplay between Pten loss and Igf2 dosage in a murine model.
- To assess the impact of Pten heterozygosity and IGF2 levels on proliferation and signaling.
Main Methods:
- Generation of Pten(+/-) mice with varying Igf2 allelic dosage.
- Analysis of placental phenotypes, cardiac hyperplasia, and neonatal lethality.
- Evaluation of lifespan, tumor development, and cellular proliferation in response to IGF2 in human cell lines.
Main Results:
- Biallelic Igf2 supply exacerbated Pten(+/-) placental defects and caused strain-dependent lethality.
- Igf2 deficiency extended survival and delayed tumor development in Pten(+/-) mice.
- Pten heterozygosity increased MCF7 cell proliferation in response to IGF2 without desensitization.
Conclusions:
- The impact of heterozygous PTEN loss in human cancers is modulated by IGF2 ligand availability.
- Reduced IGF2 can mitigate the oncogenic effects of PTEN loss.
- Targeting upstream pathways like IGF signaling is crucial for treating PTEN-deficient tumors.
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