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Intervention of AXL in EGFR Signaling via Phosphorylation and Stabilization of MIG6 in Non-Small Cell Lung Cancer
Ya-Yu Yang1, Sheng-Chieh Lin1, Jong-Ding Lay2
1National Institute of Cancer Research, National Health Research Institutes, 35 Keyan Road, Zhunan, Miaoli 35053, Taiwan.
Abstract:
About 80% of lung cancer patients are diagnosed with non-small cell lung cancer (NSCLC). EGFR mutation and overexpression are common in NSCLC, thus making EGFR signaling a key target for therapy. While EGFR kinase inhibitors (EGFR-TKIs) are widely used and efficacious in treatment, increases in resistance and tumor recurrence with alternative survival pathway activation, such as that of AXL and MET, occur frequently. AXL is one of the EMT (epithelial-mesenchymal transition) signature genes, and EMT morphological changes are also responsible for EGFR-TKI resistance. MIG6 is a negative regulator of ERBB signaling and has been reported to be positively correlated with EGFR-TKI resistance, and downregulation of MIG6 by miR-200 enhances EMT transition. While MIG6 and AXL are both correlated with EMT and EGFR signaling pathways, how AXL, MIG6 and EGFR interplay in lung cancer remains elusive. Correlations between AXL and MIG6 expression were analyzed using Oncomine or the CCLE. A luciferase reporter assay was used for determining MIG6 promoter activity. Ectopic overexpression, RNA interference, Western blot analysis, qRT-PCR, a proximity ligation assay and a coimmunoprecipitation assay were performed to analyze the effects of certain gene expressions on protein-protein interaction and to explore the underlying mechanisms. An in vitro kinase assay and LC-MS/MS were utilized to determine the phosphorylation sites of AXL. In this study, we demonstrate that MIG6 is a novel substrate of AXL and is stabilized upon phosphorylation at Y310 and Y394/395 by AXL. This study reveals a connection between MIG6 and AXL in lung cancer. AXL phosphorylates and stabilizes MIG6 protein, and in this way EGFR signaling may be modulated. This study may provide new insights into the EGFR regulatory network and may help to advance cancer treatment.
Insights
AXL kinase phosphorylates and stabilizes MIG6, a negative regulator of EGFR signaling, in non-small cell lung cancer (NSCLC). This AXL-MIG6 interaction impacts EGFR signaling and offers new therapeutic insights for NSCLC treatment.
Area of Science:
- Oncology
- Molecular Biology
- Cell Signaling
Background:
- Non-small cell lung cancer (NSCLC) often involves EGFR mutations, making EGFR signaling a therapeutic target.
- Resistance to EGFR kinase inhibitors (EGFR-TKIs) frequently arises due to alternative pathways like AXL and MET, and epithelial-mesenchymal transition (EMT).
- MIG6 negatively regulates ERBB signaling and its downregulation promotes EMT, contributing to EGFR-TKI resistance, but its interplay with AXL in NSCLC is unclear.
Purpose of the Study:
- To investigate the molecular interplay between AXL, MIG6, and EGFR signaling in NSCLC.
- To elucidate the mechanism by which AXL influences MIG6 and its downstream effects on EGFR signaling.
- To identify potential novel therapeutic targets for overcoming EGFR-TKI resistance in NSCLC.
Main Methods:
- Analysis of AXL and MIG6 expression correlations using Oncomine and CCLE databases.
- Luciferase reporter assays to assess MIG6 promoter activity.
- Experimental validation including ectopic overexpression, RNA interference, Western blot, qRT-PCR, proximity ligation, and coimmunoprecipitation assays.
- In vitro kinase assays and LC-MS/MS to identify AXL phosphorylation sites on MIG6.
Main Results:
- AXL was identified as a novel kinase that phosphorylates MIG6.
- Phosphorylation by AXL stabilizes MIG6 protein, specifically at Y310 and Y394/395 sites.
- This AXL-mediated stabilization of MIG6 suggests a mechanism for modulating EGFR signaling.
Conclusions:
- A direct link between AXL and MIG6 in NSCLC was established, revealing AXL as a regulator of MIG6 stability.
- The phosphorylation of MIG6 by AXL provides a new understanding of EGFR signaling regulation in NSCLC.
- These findings may offer novel therapeutic strategies targeting the AXL-MIG6 axis to combat EGFR-TKI resistance and improve NSCLC treatment outcomes.
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