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A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Molecular basis underlying resistance to Mps1/TTK inhibitors
1Division of Cell Biology, The Netherlands Cancer Institute, Amsterdam, The Netherlands.
Abstract:
Mps1/TTK is a dual-specificity kinase, with an essential role in mitotic checkpoint signaling, which has emerged as a potential target in cancer therapy. Several Mps1/TTK small-molecule inhibitors have been described that exhibit promising activity in cell culture and xenograft models. Here, we investigated whether cancer cells can develop resistance to these drugs. To this end, we treated various cancer cell lines with sublethal concentrations of a potent Mps1/TTK inhibitor in order to isolate inhibitor-resistant monoclonal cell lines. We identified four point mutations in the catalytic domain of Mps1/TTK that gave rise to inhibitor resistance but retained wild-type catalytic activity. Interestingly, cross-resistance of the identified mutations to other Mps1/TTK inhibitors is limited. Our studies predict that Mps1/TTK inhibitor-resistant tumor cells can arise through the acquisition of mutations in the adenosine triphosphate-binding pocket of the kinase that prevent stable binding of the inhibitors. In addition, our results suggest that combinations of inhibitors could be used to prevent acquisition of drug resistance. Interestingly, cross-resistance seems nonspecific for inhibitor scaffolds, a notion that can be exploited in future drug design to evict possible resistance mutations during clinical treatment.
Insights
Cancer cells can develop resistance to Mps1/TTK inhibitors through specific mutations. Combining Mps1/TTK inhibitors may prevent drug resistance in cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Mps1/TTK kinase is crucial for mitotic checkpoint signaling.
- Mps1/TTK inhibitors show promise as cancer therapeutics.
- Understanding drug resistance mechanisms is vital for effective cancer treatment.
Purpose of the Study:
- To investigate the development of resistance to Mps1/TTK inhibitors in cancer cells.
- To identify specific mutations conferring resistance to Mps1/TTK inhibitors.
- To explore strategies for overcoming Mps1/TTK inhibitor resistance.
Main Methods:
- Treatment of various cancer cell lines with sublethal concentrations of an Mps1/TTK inhibitor.
- Isolation and characterization of inhibitor-resistant monoclonal cell lines.
- Genetic analysis to identify mutations in the Mps1/TTK catalytic domain.
Main Results:
- Four point mutations in the Mps1/TTK catalytic domain conferred inhibitor resistance.
- Mutations retained wild-type catalytic activity.
- Cross-resistance to other Mps1/TTK inhibitors was limited.
- Resistance arises from mutations in the ATP-binding pocket, hindering inhibitor binding.
Conclusions:
- Cancer cells can acquire Mps1/TTK mutations to resist targeted therapy.
- Limited cross-resistance suggests potential for combination therapy.
- Drug design can exploit non-specific cross-resistance to overcome resistance mutations.
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