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Updated: Jan 29, 2026

Studying the Stoichiometry of Epidermal Growth Factor Receptor in Intact Cells using Correlative Microscopy
Published on: September 11, 2015
Epidermal growth factor receptor regulates Beclin-1 in hyperoxic acute lung injury
Zachary M Harris1,2, Asawari Korde2, Johad Khoury2
1Section of Pulmonary, Critical Care, and Sleep Medicine; Department of Internal Medicine, VA Connecticut Healthcare System, West Haven, Connecticut, USA zachary.harris@yale.edu.
Background:
While delivery of supplemental oxygen is a life-saving therapy, exposure to high oxygen, called hyperoxia, leads to increased intensive care unit mortality. Hyperoxia induces oxidant-mediated acute lung injury (ALI) and pulmonary cell death, called hyperoxic ALI (HALI). Elucidating molecular mechanisms in HALI could identify therapeutic targets in ALI.
Methods:
In the current study, we examined in vivo effects of HALI on Beclin-1 (BCN1), which regulates autophagy, and modulation of BCN1 by epidermal growth factor receptor (EGFR). Effects of HALI on BCN1 and autophagy were examined in mice with genetically decreased EGFR (EGFRWa5/+). Wildtype (WT) and EGFRWa5/+ mice were exposed to 100% oxygen for 24-72 hours along with normoxia controls (eight groups; n=4-6/group), and analysis of pulmonary BCN1 and autophagy was completed.
Results:
In WT, HALI led to increased BCN1 (59% increased total BCN1/β-Actin; p<0.01) in lung and alveolar epithelium (484% increased H-score; p<0.001). HALI led to decreased microtubule-associated protein 1B-light chain (LC3B)-II/-I ratios (43% decrease; p<0.05) and increased p62 (93% increase; p<0.05), suggesting reduced autophagic flux. In human alveolar type-II cells derived from induced pluripotent stem cells (AT2siPSC), HALI caused increased LDH release (130% increase; p<0.0001) and decreased LC3B-II/-I ratios (32% decrease; p<0.05). We previously showed that EGFRWa5/+ mice are protected in HALI. In the current study, EGFRWa5/+ mice showed increased pulmonary BCN1 (122% increase; p<0.05), reduced phosphorylated-(p-)/total BCN1 (47% decrease; p<0.05) and decreased LC3B-II/-I ratios (70% decrease; p<0.01) in HALI compared with WT. In addition, wortmannin (1 mg/kg), which decreases BCN1-mediated autophagy, increased mortality in HALI compared with vehicle control (n=10/group; 18% decreased hours survived; p<0.001).
Conclusions:
These data delineate a novel cell death pathway in HALI involving BCN1 and EGFR with therapeutic potential.
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