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Integrated Proteomics-Based Physical and Functional Mapping of AXL Kinase Signaling Pathways and Inhibitors Define
Anurima Majumder1, Sina Hosseinian1, Mia Stroud1
1Thoracic Oncology Program, H. Lee Moffitt Cancer Center and Research Institute, Tampa, Florida.
Abstract:
To better understand the signaling complexity of AXL, a member of the tumor-associated macrophage (TAM) receptor tyrosine kinase family, we created a physical and functional map of AXL signaling interactions, phosphorylation events, and target-engagement of three AXL tyrosine kinase inhibitors (TKI). We assessed AXL protein complexes using proximity-dependent biotinylation (BioID), effects of AXL TKI on global phosphoproteins using mass spectrometry, and target engagement of AXL TKI using activity-based protein profiling. BioID identifies AXL-interacting proteins that are mostly involved in cell adhesion/migration. Global phosphoproteomics show that AXL inhibition decreases phosphorylation of peptides involved in phosphatidylinositol-mediated signaling and cell adhesion/migration. Comparison of three AXL inhibitors reveals that TKI RXDX-106 inhibits pAXL, pAKT, and migration/invasion of these cells without reducing their viability, while bemcentinib exerts AXL-independent phenotypic effects on viability. Proteomic characterization of these TKIs demonstrates that they inhibit diverse targets in addition to AXL, with bemcentinib having the most off-targets. AXL and EGFR TKI cotreatment did not reverse resistance in cell line models of erlotinib resistance. However, a unique vulnerability was identified in one resistant clone, wherein combination of bemcentinib and erlotinib inhibited cell viability and signaling. We also show that AXL is overexpressed in approximately 30% to 40% of nonsmall but rarely in small cell lung cancer. Cell lines have a wide range of AXL expression, with basal activation detected rarely.
Implications:
Our study defines mechanisms of action of AXL in lung cancers which can be used to establish assays to measure drug targetable active AXL complexes in patient tissues and inform the strategy for targeting it's signaling as an anticancer therapy.
Insights
This study maps AXL signaling, revealing how AXL tyrosine kinase inhibitors (TKIs) affect lung cancer cells. RXDX-106 inhibits AXL activity and migration, while bemcentinib shows broader effects, offering insights for cancer therapy strategies.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- AXL receptor tyrosine kinase is implicated in tumor progression.
- Understanding AXL signaling is crucial for developing targeted cancer therapies.
- Tumor-associated macrophages (TAMs) express AXL, highlighting its role in the tumor microenvironment.
Purpose of the Study:
- To create a physical and functional map of AXL signaling interactions.
- To investigate the effects of AXL tyrosine kinase inhibitors (TKIs) on phosphorylation and target engagement.
- To evaluate AXL expression in lung cancer and identify therapeutic vulnerabilities.
Main Methods:
- Proximity-dependent biotinylation (BioID) to identify AXL protein complexes.
- Mass spectrometry-based global phosphoproteomics to assess TKI effects.
- Activity-based protein profiling for AXL TKI target engagement analysis.
Main Results:
- AXL inhibition decreased phosphorylation in phosphatidylinositol signaling and cell adhesion/migration pathways.
- RXDX-106 inhibited pAXL, pAKT, and cell migration without affecting viability.
- Bemcentinib demonstrated AXL-independent effects on cell viability and had the most off-target inhibition.
- AXL is overexpressed in non-small cell lung cancer, but rarely in small cell lung cancer.
Conclusions:
- AXL signaling complexity was mapped, detailing interactions and phosphorylation events.
- Mechanisms of AXL TKIs were elucidated, differentiating their on-target and off-target effects.
- The study provides a foundation for developing assays to measure targetable AXL complexes in patients and informs AXL-targeted anticancer therapy strategies.
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