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Published on: November 28, 2015
Alphavbeta3 and alphavbeta5 integrins control glioma cell response to ionising radiation through ILK and RhoB
Sylvie Monferran1, Nicolas Skuli1, Caroline Delmas1
1Institut Claudius Regaud, INSERMU563, Department of Oncogenesis, Signalling and Therapeutic Innovation, France.
Abstract:
Integrins are extracellular matrix receptors involved in tumour invasion and angiogenesis. Although there is evidence that inhibiting integrins might enhance the efficiency of radiotherapy, little is known about the exact mechanisms involved in the integrin-dependent modulation of tumor radiosensitivity. The purpose of this study was to investigate the role of alphavbeta3 and alphavbeta5 integrins in glioblastoma cell radioresistance and overall to decipher the downstream biological pathways. We first demonstrated that silencing alphavbeta3 and alphavbeta5 integrins with specific siRNAs significantly reduced the survival after irradiation of 2 glioblastoma cell lines: U87 and SF763. We then showed that integrin activity and integrin signalling pathways controlled the glioma cell radiosensitivity. This regulation of glioma cell response to ionising radiation was mediated through the integrin-linked kinase, ILK, and the small GTPase, RhoB, by two mechanisms. The first one, independent of ILK, consists in the regulation of the intracellular level of RhoB by alphavbeta3 or alphavbeta5 integrin. The second pathway involved in cell radiosensitivity consists in RhoB activation by ionising radiation through ILK. Furthermore, we demonstrated that the alphavbeta3/alphavbeta5 integrins/ILK/RhoB pathway controlled the glioma cells radiosensitivity by regulating radiation-induced mitotic cell death. This work identifies a new biological pathway controlling glioblastoma cells radioresistance, activated from the membrane through alphavbeta3 and/or alphavbeta5 integrins via ILK and RhoB. Our results are clues that downstream effectors of alphavbeta3 and alphavbeta5 integrins as ILK and RhoB might also be promising candidate targets for improving the efficiency of radiotherapy and thus the clinical outcome of patients with glioblastoma.
Insights
Silencing integrins (alphavbeta3 and alphavbeta5) reduced glioblastoma cell survival after radiation. This pathway, involving integrin-linked kinase (ILK) and RhoB, impacts tumor radiosensitivity and mitotic cell death.
Area of Science:
- Oncology
- Cell Biology
- Radiotherapy Research
Background:
- Integrins are key regulators of tumor invasion and angiogenesis.
- Inhibiting integrins may improve radiotherapy efficacy, but mechanisms remain unclear.
- Understanding integrin roles in glioblastoma radioresistance is crucial for targeted therapies.
Purpose of the Study:
- To investigate the role of alphavbeta3 and alphavbeta5 integrins in glioblastoma radioresistance.
- To elucidate the downstream signaling pathways involved in integrin-mediated radiosensitivity.
- To identify potential therapeutic targets for enhancing glioblastoma treatment.
Main Methods:
- Silencing of alphavbeta3 and alphavbeta5 integrins using specific siRNAs in U87 and SF763 glioblastoma cell lines.
- Assessment of cell survival following irradiation.
- Analysis of integrin signaling pathways, including integrin-linked kinase (ILK) and RhoB.
Main Results:
- Silencing alphavbeta3 and alphavbeta5 integrins significantly decreased glioblastoma cell survival post-irradiation.
- Integrin activity and signaling pathways, specifically ILK and RhoB, modulate glioma cell radiosensitivity.
- The alphavbeta3/alphavbeta5 integrins/ILK/RhoB pathway regulates radiation-induced mitotic cell death, impacting overall radiosensitivity.
Conclusions:
- A novel pathway involving alphavbeta3/alphavbeta5 integrins, ILK, and RhoB controls glioblastoma radioresistance.
- This pathway impacts radiation-induced mitotic cell death.
- ILK and RhoB are potential therapeutic targets to improve glioblastoma radiotherapy outcomes.
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In "outside-in signaling," external factors in the extracellular space bind to exposed ligand binding sites on integrins. This causes the inactive protein to undergo a conformational change to become active. Integrins are often clustered on the cell membrane. Repetitive and regularly spaced ligand binding events provide an effective stimulus.
