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Establishing Dual Resistance to EGFR-TKI and MET-TKI in Lung Adenocarcinoma Cells In Vitro with a 2-step Dose-escalation Procedure
Published on: August 11, 2017
Molecular mechanisms of bortezomib resistant adenocarcinoma cells
Erika Suzuki1, Susan Demo, Edgar Deu
1Onyx Pharmaceuticals, South San Francisco, California, USA.
Abstract:
Bortezomib (Velcade™) is a reversible proteasome inhibitor that is approved for the treatment of multiple myeloma (MM). Despite its demonstrated clinical success, some patients are deprived of treatment due to primary refractoriness or development of resistance during therapy. To investigate the role of the duration of proteasome inhibition in the anti-tumor response of bortezomib, we established clonal isolates of HT-29 adenocarcinoma cells adapted to continuous exposure of bortezomib. These cells were ~30-fold resistant to bortezomib. Two novel and distinct mutations in the β5 subunit, Cys63Phe, located distal to the binding site in a helix critical for drug binding, and Arg24Cys, found in the propeptide region were found in all resistant clones. The latter mutation is a natural variant found to be elevated in frequency in patients with MM. Proteasome activity and levels of both the constitutive and immunoproteasome were increased in resistant cells, which correlated to an increase in subunit gene expression. These changes correlated with a more rapid recovery of proteasome activity following brief exposure to bortezomib. Increased recovery rate was not due to increased proteasome turnover as similar findings were seen in cells co-treated with cycloheximide. When we exposed resistant cells to the irreversible proteasome inhibitor carfilzomib we noted a slower rate of recovery of proteasome activity as compared to bortezomib in both parental and resistant cells. Importantly, carfilzomib maintained its cytotoxic potential in the bortezomib resistant cell lines. Therefore, resistance to bortezomib, can be overcome with irreversible inhibitors, suggesting prolonged proteasome inhibition induces a more potent anti-tumor response.
Insights
Resistance to bortezomib in multiple myeloma can be overcome. Irreversible proteasome inhibitors like carfilzomib maintain cytotoxic effects against resistant cells, suggesting prolonged inhibition enhances anti-tumor response.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Bortezomib is a proteasome inhibitor for multiple myeloma (MM).
- Primary refractoriness and acquired resistance limit bortezomib efficacy in some patients.
- Understanding resistance mechanisms is crucial for improving MM treatment.
Purpose of the Study:
- To investigate the role of proteasome inhibition duration in bortezomib's anti-tumor response.
- To identify mechanisms of bortezomib resistance in cancer cells.
- To evaluate strategies for overcoming bortezomib resistance.
Main Methods:
- Established bortezomib-resistant HT-29 adenocarcinoma cell lines through continuous exposure.
- Characterized mutations in the proteasome β5 subunit in resistant clones.
- Assessed proteasome activity, levels, and recovery rates following drug exposure.
- Compared the efficacy of bortezomib and carfilzomib in parental and resistant cells.
Main Results:
- Bortezomib-resistant cells exhibited ~30-fold resistance.
- Identified two novel mutations (Cys63Phe, Arg24Cys) in the β5 subunit of resistant clones.
- Resistant cells showed increased proteasome activity, constitutive/immunoproteasome levels, and faster proteasome activity recovery.
- Carfilzomib, an irreversible inhibitor, demonstrated slower proteasome activity recovery and retained cytotoxicity in bortezomib-resistant cells.
Conclusions:
- Prolonged proteasome inhibition duration influences anti-tumor response.
- Specific mutations in the proteasome β5 subunit confer bortezomib resistance.
- Increased proteasome recovery rate contributes to bortezomib resistance.
- Irreversible proteasome inhibitors like carfilzomib can overcome bortezomib resistance in multiple myeloma.
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