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Updated: May 28, 2026

Deciphering the Structural Effects of Activating EGFR Somatic Mutations with Molecular Dynamics Simulation
Published on: May 20, 2020
A novel epidermal growth factor receptor variant lacking multiple domains directly activates transcription and is
E C Piccione1, T J Lieu, C F Gentile
1Department of Neurosurgery and Cancer Biology Program, Stanford University School of Medicine, Stanford, CA, USA.
Abstract:
The epidermal growth factor receptor (EGFR) is essential to multiple physiological and neoplastic processes via signaling by its tyrosine kinase domain and subsequent activation of transcription factors. EGFR overexpression and alteration, including point mutations and structural variants, contribute to oncogenesis in many tumor types. In this study, we identified an in-frame splice variant of the EGFR called mini-LEEK (mLEEK) that is more broadly expressed than the EGFR and is overexpressed in several cancers. Unlike previously characterized EGFR variants, mLEEK lacks the extracytoplasmic, transmembrane and tyrosine kinase domains. mLEEK localizes in the nucleus and functions as a transcription factor to regulate target genes involved in the cellular response to endoplasmic reticulum (ER) stress, including the master regulator of the unfolded protein response (UPR) pathways, molecular chaperone GRP78/Bip. We demonstrated that mLEEK regulates GRP78 transcription through direct interaction with a cis-regulatory element within the gene promoter. Several UPR pathways were interrogated and mLEEK expression was found to attenuate the induction of all pathways upon ER stress. Conversely, knockdown of mLEEK resulted in caspase-mediated cell death and sensitization to ER stress. These findings indicate that mLEEK levels determine cellular responses to unfavorable conditions that cause ER stress. This information, along with the overexpression of mLEEK in tumors, suggests unique strategies for therapeutic intervention. Furthermore, the identification of mLEEK expands the known mechanisms by which the EGFR gene contributes to oncogenesis and represents the first link between two previously disparate areas in cancer cell biology: EGFR signaling and the UPR.
Insights
A novel epidermal growth factor receptor (EGFR) variant, mini-LEEK (mLEEK), functions as a nuclear transcription factor. mLEEK regulates endoplasmic reticulum (ER) stress responses and is overexpressed in cancers, suggesting new therapeutic targets.
Area of Science:
- Molecular Biology
- Cancer Cell Biology
- Signal Transduction
Background:
- Epidermal growth factor receptor (EGFR) signaling is crucial for cell growth and implicated in oncogenesis.
- EGFR alterations, including overexpression and mutations, drive cancer development.
- The unfolded protein response (UPR) is a cellular stress pathway critical for maintaining homeostasis.
Purpose of the Study:
- To identify and characterize novel EGFR variants involved in cancer.
- To elucidate the function of a newly identified EGFR variant, mini-LEEK (mLEEK).
- To explore the role of mLEEK in cellular response to endoplasmic reticulum (ER) stress and its implications in cancer.
Main Methods:
- Identification of the mLEEK splice variant through molecular analysis.
- Localization studies to determine mLEEK subcellular localization.
- Reporter assays and chromatin immunoprecipitation to assess transcriptional regulation of GRP78.
- Experimental manipulation of mLEEK levels (overexpression and knockdown) to study its effects on ER stress response and cell viability.
Main Results:
- Discovery of mLEEK, an EGFR variant lacking kinase and transmembrane domains, broadly expressed and overexpressed in cancers.
- mLEEK localizes to the nucleus and acts as a transcription factor, directly regulating GRP78/Bip gene expression.
- mLEEK attenuates UPR pathway induction during ER stress and its knockdown leads to cell death, indicating a protective role.
Conclusions:
- mLEEK is a novel nuclear transcription factor that modulates cellular responses to ER stress.
- mLEEK overexpression in tumors links EGFR signaling to the UPR pathway, offering potential therapeutic strategies.
- The findings expand the understanding of EGFR's role in oncogenesis and ER stress biology.
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