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Updated: Aug 13, 2026

Examining the Dynamics of Cellular Adhesion and Spreading of Epithelial Cells on Fibronectin During Oxidative Stress
Published on: October 13, 2019
Epidermal growth factor receptor exposed to oxidative stress undergoes Src- and caveolin-1-dependent perinuclear
Elaine M Khan1, Jill M Heidinger, Michal Levy
1Signal Transduction Laboratory, Department of Internal Medicine, University of California, School of Medicine, Davis, California 95616, USA.
Abstract:
The epidermal growth factor (EGF) receptor (EGFR) has been found to be overexpressed in several types of cancer cells, and the regulation of its oncogenic potential has been widely studied. The paradigm for EGFR down-regulation involves the trafficking of activated receptor molecules from the plasma membrane, through clathrin-coated pits, and into the cell for lysosomal degradation. We have previously shown that oxidative stress generated by H2O2 results in aberrant phosphorylation of the EGFR. This leads to the loss of c-Cbl-mediated ubiquitination of the EGFR and, consequently, prevents its degradation. However, we have found that c-Cbl-mediated ubiquitination is required solely for degradation but not for internalization of the EGFR under oxidative stress. To further examine the fate of the EGFR under oxidative stress, we used confocal analysis to show that the receptor not only remains co-localized with caveolin-1 at the plasma membrane, but at longer time points, is also sorted to a perinuclear compartment via a clathrin-independent, caveolae-mediated pathway. Our findings indicate that although the EGFR associates with caveolin-1 constitutively, caveolin-1 is hyperphosphorylated only under oxidative stress, which is essential in transporting the EGFR to a perinuclear location, where it is not degraded and remains active. Thus, oxidative stress may have a role in tumorigenesis by not only activating the EGFR but also by promoting prolonged activation of the receptor both at the plasma membrane and within the cell.
Insights
Oxidative stress prevents epidermal growth factor receptor (EGFR) degradation by inhibiting ubiquitination and promoting caveolae-mediated transport. This leads to prolonged EGFR activation, potentially contributing to tumorigenesis.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Epidermal growth factor receptor (EGFR) overexpression is common in cancer.
- EGFR down-regulation typically involves lysosomal degradation after internalization.
- Oxidative stress disrupts normal EGFR regulation.
Purpose of the Study:
- To investigate the fate of EGFR under oxidative stress.
- To elucidate the role of c-Cbl and caveolin-1 in EGFR trafficking during oxidative stress.
- To understand how oxidative stress affects EGFR activation and potential role in tumorigenesis.
Main Methods:
- Confocal microscopy was used to analyze EGFR localization and co-localization with caveolin-1.
- The study examined EGFR phosphorylation and ubiquitination under hydrogen peroxide (H2O2)-induced oxidative stress.
- Investigated the role of c-Cbl-mediated ubiquitination and caveolae-mediated pathways.
Main Results:
- Oxidative stress causes aberrant EGFR phosphorylation, preventing c-Cbl-mediated ubiquitination and degradation.
- c-Cbl-mediated ubiquitination is essential for degradation but not internalization of EGFR under oxidative stress.
- EGFR is sorted to a perinuclear compartment via a clathrin-independent, caveolae-mediated pathway, remaining active.
Conclusions:
- Oxidative stress promotes EGFR activation and prolonged signaling by preventing its degradation.
- Caveolin-1 hyperphosphorylation under oxidative stress is crucial for EGFR perinuclear transport.
- These findings suggest a mechanism by which oxidative stress contributes to tumorigenesis through sustained EGFR activity.
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