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Published on: February 9, 2016
Adaptive Resistance to Chemotherapy, A Multi-FAK-torial Linkage
Kristin N Taylor1, David D Schlaepfer2
1Department of Reproductive Medicine, University of California, San Diego, School of Medicine, Moores Cancer Center, La Jolla, California.
Abstract:
Oncogenes provide tumor cells with a growth and survival advantage. Directed therapies targeted to oncogenic mutations (such as BRAF V600E) are part of effective late-stage melanoma treatment. However, tumors with BRAF V600E mutations, in approximately 10% of colorectal cancer, are generally treatment-insensitive. Research has identified various "feedback" mechanisms that result in BRAF signal pathway reactivation in response to BRAF inhibition. Herein, we highlight key findings from Chen and colleagues (this issue) showing that integrin-associated focal adhesion kinase (FAK) activation selectively occurs in BRAF V600E-mutant colorectal cancer cells in response to pharmacological BRAF inhibition. FAK activation results in elevated β-catenin protein levels, β-catenin nuclear localization, and increased gene transcription. Small-molecule inhibitors of β-catenin or FAK synergize with vemurafenib BRAF inhibitor to prevent BRAF V600E colorectal cancer cell proliferation in vitro and xenograft tumor growth in mice. This study complements findings linking FAK to β-catenin in intestinal tumorigenesis, resistance to radiotherapy, and cancer stem cell survival. Thus, FAK activation may occur as a frequent tumor cell "adaptive resistance" mechanism. Although FAK (PTK2) is not mutated in most cancers, targeting FAK activity in combinational approaches may limit tumor cell escape mechanisms and enhance durable responses to treatment. Mol Cancer Ther; 17(4); 719-23. ©2018 AACR.
Insights
Targeting BRAF V600E mutations in colorectal cancer is challenging due to adaptive resistance. Focal adhesion kinase (FAK) activation drives this resistance by increasing beta-catenin. Inhibiting FAK or beta-catenin synergizes with BRAF inhibitors to block tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- BRAF V600E mutations confer growth advantages but lead to treatment insensitivity in colorectal cancer.
- BRAF inhibitors can trigger feedback mechanisms that reactivate signaling pathways, limiting treatment efficacy.
- Understanding these resistance mechanisms is crucial for developing effective late-stage cancer therapies.
Discussion:
- Focal adhesion kinase (FAK) activation was identified as a key adaptive resistance mechanism in BRAF V600E-mutant colorectal cancer cells upon BRAF inhibition.
- FAK activation leads to increased beta-catenin levels and nuclear translocation, promoting gene transcription.
- This FAK-mediated pathway complements known roles in intestinal tumorigenesis and cancer stem cell survival.
Key Insights:
- FAK activation selectively occurs in BRAF V600E-mutant colorectal cancer cells responding to BRAF inhibitors.
- Combined inhibition of FAK or beta-catenin with BRAF inhibitors synergistically reduces cancer cell proliferation and xenograft tumor growth.
- FAK acts as a critical mediator of adaptive resistance to BRAF-targeted therapy.
Outlook:
- Targeting FAK activity presents a promising strategy to overcome adaptive resistance in BRAF V600E-mutant colorectal cancer.
- Combination therapies involving FAK inhibitors may enhance durable responses to BRAF-targeted treatments.
- Further research into FAK's role in tumor cell escape mechanisms could reveal new therapeutic targets.
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