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Updated: Mar 1, 2026

Intramucosal Inoculation of Squamous Cell Carcinoma Cells in Mice for Tumor Immune Profiling and Treatment Response Assessment
Published on: April 22, 2019
Head and neck cancer cell radiosensitization upon dual targeting of c-Abl and beta1-integrin
Philipp Koppenhagen1, Ellen Dickreuter1, Nils Cordes2
1OncoRay - National Center for Radiation Research in Oncology, Faculty of Medicine and University Hospital Carl Gustav Carus, Technische Universität Dresden, Helmholtz-Zentrum Dresden - Rossendorf, Germany.
Abstract:
Integrin-mediated cell adhesion to extracellular matrix (ECM) critically contributes to cancer cell therapy resistance and DNA double strand break (DSB) repair. c-Abl tyrosine kinase has been linked to both of these processes. Based on our previous findings indicating c-Abl hyperphosphorylation on tyrosine (Y) 412 and threonine (T) 735 upon beta1-integrin inhibition, we hypothesized c-Abl tyrosine kinase as an important mediator of beta1-integrin signaling for radioresistance. In a panel of 8 cell lines from different solid cancer types grown in 3D laminin-rich ECM cultures, we targeted beta1 integrin with AIIB2 (mAb) and c-Abl with Imatinib with and without X-ray irradiation and subsequently examined clonogenic survival, residual DSBs, protein expression and phosphorylation. Single or combined treatment with AIIB2 and Imatinib resulted in cell line-dependent cytotoxicity. Intriguingly, we identified a subgroup of this cell line panel that responded with a higher degree of radiosensitization to AIIB2/Imatinib relative to both single treatments. In this subgroup, we observed a non-statistically significant trend between the radioresponse and phospho-c-Abl Y412. Mechanistically, impairment of DNA repair seems to be associated with radiosensitization upon AIIB2/Imatinib and AIIB2/Imatinib-related radiosensitization could be reduced by exogenous overexpression of either wildtype or constitutively active c-Abl forms relative to controls. Our data generated in more physiological 3D cancer cell culture models suggest c-Abl as further determinant of radioresistance and DNA repair downstream of beta1-integrin. For solid cancers, c-Abl phosphorylation status might be an indicator for reasonable Imatinib application as adjuvant for conventional radio(chemo)therapy.
Insights
Beta1-integrin inhibition combined with c-Abl tyrosine kinase inhibitor Imatinib enhances radiosensitization in solid cancers by impairing DNA repair. c-Abl phosphorylation may predict treatment response.
Area of Science:
- Cancer Biology
- Molecular Oncology
- Cellular Signaling
Background:
- Integrin-mediated cell adhesion to extracellular matrix (ECM) influences cancer therapy resistance and DNA repair.
- c-Abl tyrosine kinase is implicated in both cancer progression and DNA double-strand break (DSB) repair.
- Previous work showed c-Abl hyperphosphorylation upon beta1-integrin inhibition.
Purpose of the Study:
- To investigate c-Abl tyrosine kinase as a mediator of beta1-integrin signaling in radioresistance.
- To evaluate the combined effect of beta1-integrin inhibition and c-Abl inhibition on cancer cell radiosensitivity and DNA repair.
Main Methods:
- Utilized 8 solid cancer cell lines in 3D laminin-rich ECM cultures.
- Treated cells with beta1-integrin antibody (AIIB2) and/or c-Abl inhibitor (Imatinib) with or without X-ray irradiation.
- Assessed clonogenic survival, residual DSBs, protein expression, and phosphorylation.
Main Results:
- Combined AIIB2 and Imatinib treatment showed cell line-dependent cytotoxicity and radiosensitization.
- A subgroup of cell lines exhibited enhanced radiosensitization with the combination therapy.
- Impaired DNA repair was associated with radiosensitization, and this could be reversed by c-Abl overexpression.
Conclusions:
- c-Abl is a determinant of radioresistance and DNA repair downstream of beta1-integrin signaling.
- c-Abl phosphorylation status may indicate suitability for Imatinib as an adjuvant therapy for solid cancers.
- 3D cancer cell culture models are valuable for studying radioresistance mechanisms.
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