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Updated: Jun 19, 2026

An Enzyme- and Serum-free Neural Stem Cell Culture Model for EMT Investigation Suited for Drug Discovery
Published on: August 23, 2016
Activated EGFR signaling increases proliferation, survival, and migration and blocks neuronal differentiation in
Angel Ayuso-Sacido1, Jennifer A Moliterno, Sebila Kratovac
1Department of Neurosurgery, Neurosurgical Laboratory for Translational Stem Cell Research, Weill Cornell Brain Tumor Center, Weill Cornell Medical College of Cornell University, New York, NY, USA. aayuso@cipf.es
Abstract:
Recent evidence supports the notion that transformation of undifferentiated neural stem cell (NSC) precursors may contribute to the development of glioblastoma multiforme (GBM). The over-expression and mutation of the epidermal growth factor receptor (EGFR), along with other cellular pathway mutations, plays a significant role in GBM maintenance progression. Though EGFR signaling is important in determining neural cell fate and conferring astrocyte differentiation, there is a limited understanding of its role in NSC and tumor stem cell (TSC) biology. We hypothesized that EGFR expression and mutation in post-natal NSCs may contribute to cellular aggressiveness including enhanced cellular proliferation, survival and migration. Stable subclones of C17.2 murine NSCs were transfected to over-express either the wild-type EGFR (wtEGFR) or its most common mutated variant EGFRvIII. Activated EGFR signaling in these cells induced behaviors characteristic of GBM TSCs, including enhanced proliferation, survival and migration, even in the absence of EGF ligand. wtEGFR activation was also found to block neuronal differentiation and was associated with a dramatic increase in chemotaxis in the presence of EGF. EGFRvIII expression lead to an increase in NSC proliferation and survival, while it simultaneously blocked neuronal differentiation and promoted glial fate. Our findings suggest that activated EGFR signaling enhances the aggressiveness of NSCs. Understanding the regulatory mechanisms of NSCs may lend insight into deregulated mechanisms of GBM TSC invasion, proliferation, survival and resistance to current treatment modalities.
Insights
Activated epidermal growth factor receptor (EGFR) signaling in neural stem cells (NSCs) promotes aggressive behaviors similar to glioblastoma stem cells. This suggests EGFR plays a key role in tumor development and progression.
Area of Science:
- Neuroscience
- Cancer Biology
- Molecular Biology
Background:
- Glioblastoma multiforme (GBM) development may involve transformation of neural stem cell (NSC) precursors.
- Epidermal growth factor receptor (EGFR) over-expression and mutation are implicated in GBM progression.
- The role of EGFR signaling in NSC and tumor stem cell (TSC) biology is not fully understood.
Purpose of the Study:
- To investigate the hypothesis that EGFR expression and mutation in post-natal NSCs contribute to cellular aggressiveness.
- To determine the effects of wild-type EGFR (wtEGFR) and EGFRvIII on NSC proliferation, survival, and migration.
- To elucidate the role of activated EGFR signaling in NSC differentiation and GBM TSC behavior.
Main Methods:
- Stable subclones of C17.2 murine NSCs were generated.
- NSCs were transfected to over-express either wtEGFR or EGFRvIII.
- Cellular proliferation, survival, migration, and differentiation were assessed.
Main Results:
- Activated EGFR signaling in NSCs induced GBM TSC-like behaviors: enhanced proliferation, survival, and migration, independent of EGF ligand.
- wtEGFR activation blocked neuronal differentiation and increased chemotaxis with EGF.
- EGFRvIII expression increased NSC proliferation and survival while blocking neuronal differentiation and promoting glial fate.
Conclusions:
- Activated EGFR signaling enhances NSC aggressiveness, mimicking GBM TSC characteristics.
- Understanding EGFR's role in NSCs offers insights into GBM invasion, proliferation, survival, and treatment resistance.
- EGFR signaling is a critical factor in NSC fate determination and GBM pathogenesis.
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