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Published on: January 7, 2019
IGFBP2/FAK pathway is causally associated with dasatinib resistance in non-small cell lung cancer cells
1Corresponding Author: Bingliang Fang, Department of Thoracic and Cardiovascular Surgery, Unit 445, The University of Texas MD Anderson Cancer Center, 1515 Holcombe Boulevard, Houston, TX 77030. bfang@mdanderson.org.
Abstract:
Insulin-like growth factor (IGF)-binding protein-2 (IGFBP2) expression is increased in various types of cancers, including in a subset of patients with lung cancer. Because IGFBP2 is involved in signal transduction of some critical cancer-related pathways, we analyzed the association between IGFBP2 and response to pathway-targeted agents in seven human non-small cell lung cancer (NSCLC) cell lines. Western blot analysis and ELISA showed that four of the seven NSCLC cell lines analyzed expressed high levels of IGFBP2, whereas the remaining three had barely detectable IGFBP2. Susceptibilities of those seven cell lines to nine anticancer agents targeting to IGF1R, Src, FAK, MEK, and AKT were determined by a dose-dependent cell viability assay. The results showed that high IGFBP2 levels were associated with resistance to dasatinib and, to a lesser degree, to sacaratinib, but not to other agents. Ectopic IGFBP2 overexpression or knockdown revealed that changing IGFBP2 expression levels reversed dasatinib susceptibility phenotype, suggesting a causal relationship between IGFBP2 expression and dasatinib resistance. Molecular characterization revealed that focal adhesion kinase (FAK) activation was associated with increased IGFBP2 expression and partially contributed to IGFBP2-mediated dasatinib resistance. Treatment with a combination of dasatinib and FAK inhibitor led to enhanced antitumor activity in IGFBP2-overexpressing and dasatinib-resistant NSCLC cells in vitro and in vivo. Our results showed that the IGFBP2/FAK pathway is causally associated with dasatinib resistance and may be used as biomarkers for identification of dasatinib responders among patients with lung cancer. Simultaneous targeting on Src and FAK will likely improve the therapeutic efficacy of dasatinib for treatment of lung cancer.
Insights
High Insulin-like growth factor (IGF)-binding protein-2 (IGFBP2) levels in lung cancer cells correlate with resistance to dasatinib. Targeting the IGFBP2/FAK pathway may improve treatment efficacy for lung cancer patients.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Insulin-like growth factor (IGF)-binding protein-2 (IGFBP2) is upregulated in several cancers, including non-small cell lung cancer (NSCLC).
- IGFBP2's role in cancer-related signal transduction pathways suggests its involvement in therapeutic response.
Purpose of the Study:
- To investigate the association between IGFBP2 expression and response to targeted anticancer agents in NSCLC.
- To explore the potential of IGFBP2 as a predictive biomarker for targeted therapy in lung cancer.
Main Methods:
- Analysis of IGFBP2 expression in seven human NSCLC cell lines using Western blot and ELISA.
- Assessment of cell line susceptibility to nine targeted anticancer agents via dose-dependent viability assays.
- Investigation of IGFBP2's causal role through overexpression and knockdown experiments, and molecular characterization of the IGFBP2/FAK pathway.
Main Results:
- Four of seven NSCLC cell lines exhibited high IGFBP2 levels; three had minimal detectable levels.
- High IGFBP2 expression was associated with resistance to dasatinib and, to a lesser extent, to saracatinib.
- Modulating IGFBP2 levels reversed dasatinib resistance, indicating a causal link. Focal adhesion kinase (FAK) activation correlated with IGFBP2 and contributed to resistance.
- Combined dasatinib and FAK inhibitor treatment demonstrated enhanced antitumor activity in vitro and in vivo.
Conclusions:
- The IGFBP2/FAK pathway is causally linked to dasatinib resistance in NSCLC.
- IGFBP2 can serve as a predictive biomarker for identifying lung cancer patients likely to respond to dasatinib.
- Simultaneous targeting of Src and FAK may enhance dasatinib's therapeutic efficacy in lung cancer treatment.
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