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Updated: Jul 18, 2026

Real-time Bioluminescence Imaging of Notch Signaling Dynamics during Murine Neurogenesis
Published on: December 12, 2019
Stable expression of intracellular Notch suppresses v-Src-induced transformation in avian neural cells
S Mateos1, S Amarir, D Laugier
1UMR 146 du CNRS-Institut CURIE, Centre Universitaire, Orsay Cedex, France.
Abstract:
Understanding how disruption of differentiation contributes to the cancer cell phenotype is required to identify alterations essential for malignant transformation and provide experimental basis for their correction. We investigated whether primary quail neuroretina cells, transformed by a conditional v-Src mutant (QNR/v-src(ts)), could revert to a normal phenotype, in response to the stable expression of constitutively active Notch1 intracellular domain (ICN). This model system was chosen because Notch signaling plays an instructive role in cell fate determination during NR development, and because the intrinsic capacity of QNR cultures to differentiate is blocked by v-Src. We report that stable ICN expression results in suppression of QNR/v-src(ts) cell transformation in the presence of an active oncoprotein. This phenotypic reversion coincides with a major switch in cell identity, as these undifferentiated cells acquire glial differentiation traits. Both changes appear to be mediated by CBF, a transcription factor that binds to ICN and activates target genes. Cells restored to a normal and differentiated phenotype have undergone changes in the functioning of signaling effectors, essentially regulating cell morphology and cytoskeleton organization. This dominant interference may be partially mediated by an autocrine/paracrine mechanism, as revertant cells secrete a factor(s), which inhibits transformation properties of QNR/v-src(ts) cells.
Insights
Notch signaling can reverse cancer cell transformation. Constitutively active Notch1 intracellular domain (ICN) expression in quail neuroretina cells suppressed v-Src-induced transformation, promoting glial differentiation via CBF transcription factor.
Area of Science:
- Cell Biology
- Developmental Biology
- Cancer Research
Background:
- Disruption of cell differentiation is crucial for cancer development.
- Notch signaling is vital for cell fate determination in neuroretina development.
- v-Src oncoprotein blocks differentiation in quail neuroretina cells.
Purpose of the Study:
- To investigate if Notch signaling can reverse cancer cell phenotype.
- To determine if quail neuroretina cells transformed by v-Src can revert to normal.
- To explore the role of Notch1 intracellular domain (ICN) in this reversion.
Main Methods:
- Utilized a conditional v-Src mutant (QNR/v-src(ts)) in primary quail neuroretina cells.
- Introduced stable expression of constitutively active Notch1 intracellular domain (ICN).
- Analyzed phenotypic changes, cell identity, and gene expression mediated by CBF.
Main Results:
- Stable ICN expression suppressed v-Src-induced cell transformation.
- Undifferentiated cells acquired glial differentiation traits, indicating a switch in cell identity.
- Changes were mediated by the transcription factor CBF, affecting cell morphology and cytoskeleton.
- Revertant cells secreted factors that inhibited transformation properties.
Conclusions:
- Notch signaling can suppress cancer cell transformation and induce differentiation.
- CBF transcription factor is a key mediator of Notch-induced phenotypic reversion.
- Autocrine/paracrine mechanisms may contribute to the suppression of malignant transformation.
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