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Updated: Jul 4, 2026

Deciphering the Structural Effects of Activating EGFR Somatic Mutations with Molecular Dynamics Simulation
Published on: May 20, 2020
LRIG1 negatively regulates the oncogenic EGF receptor mutant EGFRvIII
M A Stutz1, D L Shattuck, M B Laederich
1Basic Sciences, UC Davis Cancer Center, Sacramento, CA 95817, USA.
Abstract:
Epidermal growth factor receptor (EGFR) mutation is frequently observed in human cancer and contributes to the growth, survival and therapeutic resistance of tumors. EGFRvIII is an oncogenic EGFR mutant resulting from the deletion of exons 2-7 and is the most common EGFR mutant observed in glioblastoma multiforme, an aggressive brain tumor. EGFRvIII is constitutively active but poorly ubiquitinated, leading to inefficient receptor trafficking to lysosomes and unattenuated oncogenic signaling. The mechanism by which EGFRvIII evades downregulation is not fully understood although recent studies suggest that its interaction with the ubiquitin ligase Cbl may be compromised. In this study, we examine the regulation of EGFRvIII by the recently identified negative regulator, LRIG1, which targets EGFR through recognition of its extracellular domain. Here, we determine whether the extracellular domain deletion in EGFRvIII renders it refractory to LRIG1 regulation. We find that EGFRvIII retains interaction with LRIG1 and is in fact more sensitive to LRIG1 action than wild-type receptor. We demonstrate that LRIG1 regulation of EGFRvIII is distinct from the only other known mechanism of EGFR regulation, Cbl-mediated degradation. Ectopic expression of LRIG1 in EGFRvIII(+) glioblastoma cells opposes EGFRvIII-driven tumor cell proliferation, survival, motility and invasion. Finally, RNAi-mediated silencing of LRIG1 alters EGFRvIII intracellular trafficking and leads to enhanced EGFRvIII expression, suggesting that loss of LRIG1 in tumors may contribute to a permissive environment for EGFRvIII overexpression, contributing to EGFRvIII oncogenesis.
Insights
LRIG1 negatively regulates the oncogenic EGFRvIII mutant in glioblastoma. This interaction opposes tumor growth and survival, suggesting LRIG1 loss contributes to EGFRvIII-driven cancer.
Area of Science:
- Molecular Biology
- Oncology
- Cancer Research
Background:
- Epidermal growth factor receptor (EGFR) mutations drive cancer growth and therapeutic resistance.
- EGFRvIII, a common oncogenic mutant in glioblastoma, evades normal downregulation mechanisms.
- The interaction between EGFRvIII and the ubiquitin ligase Cbl is potentially compromised, hindering receptor degradation.
Purpose of the Study:
- To investigate the role of LRIG1, a negative regulator of EGFR, in controlling the EGFRvIII mutant.
- To determine if EGFRvIII's extracellular domain deletion affects its interaction with LRIG1.
- To elucidate the mechanism of LRIG1-mediated regulation of EGFRvIII and its impact on glioblastoma.
Main Methods:
- Examined the interaction between LRIG1 and EGFRvIII.
- Assessed the effect of LRIG1 on EGFRvIII-expressing glioblastoma cells.
- Utilized RNA interference (RNAi) to silence LRIG1 and observed effects on EGFRvIII trafficking and expression.
Main Results:
- EGFRvIII retains interaction with LRIG1 and is more sensitive to LRIG1 regulation than wild-type EGFR.
- LRIG1-mediated regulation of EGFRvIII is distinct from Cbl-mediated degradation.
- Ectopic LRIG1 expression inhibits EGFRvIII-driven glioblastoma cell proliferation, survival, motility, and invasion.
- LRIG1 silencing alters EGFRvIII trafficking and enhances its expression.
Conclusions:
- LRIG1 effectively regulates the oncogenic EGFRvIII mutant.
- Loss of LRIG1 in tumors may promote EGFRvIII overexpression, contributing to oncogenesis.
- LRIG1 represents a potential therapeutic target for EGFRvIII-driven cancers.
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