IGF-1R Inhibition Suppresses Cell Proliferation and Increases Radiosensitivity in Nasopharyngeal Carcinoma Cells.
Zhe WangGuangyan LiuJiwei MaoMin XieMing ZhaoXuefen GuoShanshan LiangHeming LiXuefeng LiRuoyu WangPublished in: Mediators of inflammation (2019)
Although ionizing radiation (IR) has provided considerable improvements in nasopharyngeal carcinoma (NPC) treatment, radioresistance is still a major threat for some subsets of patients. The insulin-like growth factor-1 receptor (IGF-1R) signaling pathway is tightly regulated and plays critical roles in mediating cell proliferation, growth, and survival. Thus, IGF-1R may be a potential therapeutic target for patients with different malignancies. However, its mechanism in NPC is not fully investigated. Linsitinib is an oral small molecule and is a tyrosine kinase inhibitor (TKI) of IGF-1R, which has been known for antitumor effects used widely. Here, we evaluated the proliferation and radiosensitivity of NPC cell lines (CNE-2 and SUNE-1) after linsitinib treatment. We found that linsitinib suppresses IGF-1-induced cell proliferation through inhibiting Akt and ERK phosphorylation. Moreover, linsitinib further boosted IR-induced DNA damage, G2-M cell cycle delay, and apoptosis in NPC cells. Finally, linsitinib reversed radioresistant NPC cells by decreasing the phosphorylation of IGF-1R. Our data indicated that the combination of linsitinib and IR and targeting IGF-1R by linsitinib could be a promising therapeutic strategy for NPC.
Keyphrases
- pi k akt
- signaling pathway
- cell cycle arrest
- cell proliferation
- induced apoptosis
- cell cycle
- epithelial mesenchymal transition
- small molecule
- dna damage
- growth hormone
- binding protein
- end stage renal disease
- oxidative stress
- diabetic rats
- ejection fraction
- newly diagnosed
- chronic kidney disease
- high glucose
- prognostic factors
- drug induced
- combination therapy
- endothelial cells
- climate change
- dna repair
- protein protein
- peritoneal dialysis
- patient reported outcomes
- artificial intelligence
- epidermal growth factor receptor
- deep learning