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Updated: Jan 29, 2026

Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
Imatinib-Induced Changes in Protein Expression and ATP-Binding Affinities of Kinases in Chronic Myelocytic Leukemia
Abstract:
Kinases are crucial components in numerous cell signaling pathways. Aberrant expression and activation of protein kinases are known to be accompanied by many types of cancer, and more than 30 small-molecule kinase inhibitors have been approved by the Food and Drug Administration (FDA) for cancer chemotherapy. Biological and clinical applications of small-molecule kinase inhibitors require comprehensive characterizations about how these inhibitors modulate the protein expression and activities of kinases at the entire proteome scale. In this study, we developed a parallel-reaction monitoring (PRM)-based targeted proteomic method to monitor the alterations in protein expression of kinases in K-562 chronic myelocytic leukemia (CML) cells elicited by treatment with imatinib, an ABL kinase inhibitor approved by the FDA for CML treatment. By employing isotope-coded ATP affinity probes together with liquid chromatography-multiple-reaction monitoring (LC-MRM) analysis, we also examined the modulation of the ATP-binding affinities of kinases induced by imatinib treatment. The results revealed profound increases in protein expression levels of a large number of kinases in K-562 cells upon treatment with imatinib, which is accompanied by substantial decreases in ATP-binding capacities of many kinases. Apart from ABL kinases, we identified a number of other kinases whose ATP-binding affinities are markedly diminished upon imatinib treatment, including CHK1, a checkpoint kinase involved in DNA damage response signaling. Together, our targeted quantitative proteomic methods enabled, for the first time, dual assessments of small-molecule kinase inhibitor-induced changes in protein expression and ATP-binding affinities of kinases in live cells.
Insights
Small-molecule kinase inhibitors, like imatinib, can alter kinase protein levels and ATP-binding activity in cancer cells. This study developed a method to measure these dual changes, revealing broad effects beyond targeted kinases.
Area of Science:
- Proteomics
- Cell Signaling
- Cancer Biology
Background:
- Protein kinases are vital in cell signaling and implicated in cancer.
- Over 30 FDA-approved small-molecule kinase inhibitors are used for cancer chemotherapy.
- Understanding inhibitor effects on kinase expression and activity is crucial.
Purpose of the Study:
- To develop a targeted proteomic method to assess kinase expression and ATP-binding affinity changes.
- To investigate the impact of imatinib on kinases in K-562 chronic myelocytic leukemia cells.
- To enable dual assessment of inhibitor-induced changes in protein expression and kinase activity.
Main Methods:
- Developed a parallel-reaction monitoring (PRM)-based targeted proteomic assay.
- Utilized isotope-coded ATP affinity probes.
- Employed liquid chromatography-multiple-reaction monitoring (LC-MRM) analysis.
Main Results:
- Observed significant increases in protein expression for many kinases in imatinib-treated K-562 cells.
- Detected substantial decreases in ATP-binding capacities for numerous kinases.
- Identified kinases like CHK1 with diminished ATP-binding affinity post-imatinib treatment.
Conclusions:
- The developed proteomic methods allow simultaneous evaluation of kinase expression and ATP-binding affinity changes.
- Imatinib treatment broadly impacts kinase proteome expression and activity.
- This approach provides novel insights into kinase inhibitor mechanisms of action.
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