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A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Rapid Screen for Tyrosine Kinase Inhibitor Resistance Mutations and Substrate Specificity
Joseph M Taft1, Sandrine Georgeon2, Chris Allen1
1Department of Chemistry and Biochemistry , The University of Texas at Austin , 1 University Station , Austin , Texas 78712 , United States.
Abstract:
We present a rapid and high-throughput yeast and flow cytometry based method for predicting kinase inhibitor resistance mutations and determining kinase peptide substrate specificity. Despite the widespread success of targeted kinase inhibitors as cancer therapeutics, resistance mutations arising within the kinase domain of an oncogenic target present a major impediment to sustained treatment efficacy. Our method, which is based on the previously reported YESS system, recapitulated all validated BCR-ABL1 mutations leading to clinical resistance to the second-generation inhibitor dasatinib, in addition to identifying numerous other mutations which have been previously observed in patients, but not yet validated as drivers of resistance. Further, we were able to demonstrate that the newer inhibitor ponatinib is effective against the majority of known single resistance mutations, but ineffective at inhibiting many compound mutants. These results are consistent with preliminary clinical and in vitro reports, indicating that mutations providing resistance to ponatinib are significantly less common; therefore, predicting ponatinib will be less susceptible to clinical resistance relative to dasatinib. Using the same yeast-based method, but with random substrate libraries, we were able to identify consensus peptide substrate preferences for the SRC and LYN kinases. ABL1 lacked an obvious consensus sequence, so a machine learning algorithm utilizing amino acid covariances was developed which accurately predicts ABL1 kinase peptide substrates.
Insights
This study introduces a rapid yeast and flow cytometry method to predict kinase inhibitor resistance mutations and substrate specificity. The system accurately identifies resistance mutations for targeted cancer therapies, aiding in predicting drug efficacy.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Therapeutics
Background:
- Targeted kinase inhibitors are crucial cancer therapeutics.
- Resistance mutations in kinase domains limit treatment efficacy.
- Predicting and overcoming resistance is essential for sustained therapy.
Purpose of the Study:
- Develop a high-throughput method for predicting kinase inhibitor resistance.
- Determine kinase peptide substrate specificity.
- Evaluate drug efficacy against known and novel resistance mutations.
Main Methods:
- Utilized a yeast and flow cytometry-based system (YESS).
- Recapitulated known BCR-ABL1 resistance mutations to dasatinib.
- Assessed efficacy of ponatinib against single and compound mutants.
- Employed random substrate libraries to identify kinase preferences.
- Developed a machine learning algorithm for ABL1 substrate prediction.
Main Results:
- The method identified all validated BCR-ABL1 mutations conferring resistance to dasatinib.
- Numerous unvalidated resistance mutations were also identified.
- Ponatinib showed efficacy against most single resistance mutations but not compound mutants.
- Consensus peptide substrates were identified for SRC and LYN kinases.
- A machine learning model accurately predicted ABL1 kinase peptide substrates.
Conclusions:
- The developed method is effective for predicting kinase inhibitor resistance.
- Ponatinib appears less susceptible to clinical resistance than dasatinib.
- The system aids in understanding kinase substrate specificity and predicting drug response.
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