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A multiple reaction monitoring (MRM) method to detect Bcr-Abl kinase activity in CML using a peptide biosensor
Tzu-Yi Yang1, Christie L Eissler, Mark C Hall
1Department of Medicinal Chemistry and Molecular Pharmacology, Purdue University, West Lafayette, Indiana, USA.
Abstract:
The protein kinase Bcr-Abl plays a major role in the pathogenesis of chronic myelogenous leukemia (CML), and is the target of the breakthrough drug imatinib (Gleevec™). While most patients respond well to imatinib, approximately 30% never achieve remission or develop resistance within 1-5 years of starting imatinib treatment. Evidence from clinical studies suggests that achieving at least 50% inhibition of a patient's Bcr-Abl kinase activity (relative to their level at diagnosis) is associated with improved patient outcomes, including reduced occurrence of resistance and longer maintenance of remission. Accordingly, sensitive assays for detecting Bcr-Abl kinase activity compatible with small amounts of patient material are desirable as potential companion diagnostics for imatinib. Here we report the detection of Bcr-Abl activity and inhibition by imatinib in the human CML cell line K562 using a cell-penetrating peptide biosensor and multiple reaction monitoring (MRM) on a triple quadrupole mass spectrometer. MRM enabled reproducible, selective detection of the peptide biosensor at fmol levels from aliquots of cell lysate equivalent to ~15,000 cells. This degree of sensitivity will facilitate the miniaturization of the entire assay procedure down to cell numbers approaching 15,000, making it practical for translational applications in patient cells in which the limited amount of available patient material often presents a major challenge.
Insights
A new assay detects Bcr-Abl kinase activity in chronic myelogenous leukemia (CML) cells. This sensitive method using mass spectrometry can monitor imatinib treatment effectiveness and potential resistance in patients.
Area of Science:
- Biochemistry
- Oncology
- Analytical Chemistry
Background:
- The Bcr-Abl oncoprotein drives chronic myelogenous leukemia (CML) pathogenesis.
- Imatinib is a targeted therapy for CML, but resistance develops in about 30% of patients.
- Assays are needed to measure Bcr-Abl activity in limited patient samples to guide imatinib therapy.
Purpose of the Study:
- To develop a sensitive assay for detecting Bcr-Abl kinase activity and imatinib inhibition.
- To assess the feasibility of using this assay as a companion diagnostic for imatinib treatment.
Main Methods:
- Utilized a cell-penetrating peptide biosensor for Bcr-Abl detection.
- Employed multiple reaction monitoring (MRM) on a triple quadrupole mass spectrometer for sensitive quantification.
- Tested the assay in the K562 human CML cell line.
Main Results:
- Achieved reproducible and selective detection of the Bcr-Abl biosensor at femtomole (fmol) levels.
- Demonstrated detection from cell lysates equivalent to approximately 15,000 cells.
- Showcased the ability to detect Bcr-Abl inhibition by imatinib.
Conclusions:
- The developed MRM-based assay is highly sensitive and specific for Bcr-Abl activity.
- The assay's sensitivity allows for miniaturization, making it suitable for limited patient samples.
- This assay holds potential as a companion diagnostic to monitor imatinib efficacy in CML patients.
