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Published on: July 20, 2014
Cell surface epidermal growth factor receptors increase Src and c-Cbl activity and receptor ubiquitylation
Eileen E Parks1, Brian P Ceresa2
1From the Department of Pharmacology and Toxicology, University of Louisville, Louisville, Kentucky 40202.
Abstract:
There is an established role for the endocytic pathway in regulation of epidermal growth factor receptor (EGFR) signaling to downstream effectors. However, because ligand-mediated EGFR endocytosis utilizes multiple "moving parts," dissecting the spatial versus temporal contributions has been challenging. Blocking all endocytic trafficking can have unintended effects on other receptors as well as give rise to compensatory mechanisms, both of which impact interpretation of EGFR signaling. To overcome these limitations, we used epidermal growth factor (EGF) conjugated to polystyrene beads (EGF beads). EGF beads simultaneously activate the EGFR while blocking its endocytosis and allow analysis of EGFR signaling from the plasma membrane. Human telomerase immortalized corneal epithelial (hTCEpi) cells were used to model normal epithelial cell biology. In hTCEpi cells, both cell surface and intracellular EGFRs exhibited dose-dependent increases in effector activity after 15 min of ligand stimulation, but only the serine phosphorylation of signal transducer and activator of transcription 3 (STAT3) was statistically significant when accounting for receptor phosphorylation. However, over time with physiological levels of receptor phosphorylation, cell surface receptors produced either enhanced or sustained mitogen-activated protein kinase kinase (MEK), Casitas B-lineage lymphoma (c-Cbl), and the pro-oncogene Src activity. These increases in effector communication by cell surface receptors resulted in an increase in EGFR ubiquitylation with sustained ligand incubation. Together, these data indicate that spatial regulation of EGFR signaling may be an important regulatory mechanism in receptor down-regulation.
Insights
Epidermal Growth Factor Receptor (EGFR) signaling from the cell surface, not internal compartments, drives key downstream effects. Blocking EGFR endocytosis reveals its crucial role in regulating receptor activity and down-regulation.
Area of Science:
- Cell Biology
- Molecular Signaling
- Receptor Biology
Background:
- The endocytic pathway is critical for regulating epidermal growth factor receptor (EGFR) signaling.
- Dissecting spatial and temporal contributions of EGFR signaling is challenging due to complex endocytic trafficking.
- Previous methods blocking endocytosis can cause compensatory effects impacting EGFR signaling interpretation.
Purpose of the Study:
- To overcome limitations in studying EGFR signaling by blocking endocytosis.
- To analyze EGFR signaling specifically from the plasma membrane.
- To investigate the spatial contributions of cell surface EGFRs to downstream signaling.
Main Methods:
- Utilized epidermal growth factor (EGF) conjugated to polystyrene beads (EGF beads) to activate EGFR while blocking endocytosis.
- Employed human telomerase immortalized corneal epithelial (hTCEpi) cells to model normal epithelial cell biology.
- Analyzed dose-dependent increases in effector activity, receptor phosphorylation, and ubiquitylation over time.
Main Results:
- Both cell surface and intracellular EGFRs showed increased effector activity, but only STAT3 serine phosphorylation was significant.
- Cell surface EGFRs sustained mitogen-activated protein kinase kinase (MEK), c-Cbl, and Src activity over time.
- Sustained ligand incubation led to increased EGFR ubiquitylation, originating from cell surface receptors.
Conclusions:
- EGFR signaling originating from the cell surface plays a significant role in downstream effector activation.
- Spatial regulation of EGFR signaling at the plasma membrane is a key mechanism for receptor down-regulation.
- This study provides a novel method to isolate and study cell surface EGFR signaling dynamics.
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