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Assessment of Resistance to Tyrosine Kinase Inhibitors by an Interrogation of Signal Transduction Pathways by Antibody Arrays
Published on: September 19, 2018
Evaluation of a tyrosine kinase peptide microarray for tyrosine kinase inhibitor therapy selection in cancer
Mariette Labots1, Kristy J Gotink1, Henk Dekker1
1Department of Medical Oncology, VU University Medical Center, Amsterdam, The Netherlands.
Abstract:
Personalized cancer medicine aims to accurately predict the response of individual patients to targeted therapies, including tyrosine kinase inhibitors (TKIs). Clinical implementation of this concept requires a robust selection tool. Here, using both cancer cell lines and tumor tissue from patients, we evaluated a high-throughput tyrosine kinase peptide substrate array to determine its readiness as a selection tool for TKI therapy. We found linearly increasing phosphorylation signal intensities of peptides representing kinase activity along the kinetic curve of the assay with 7.5-10 μg of lysate protein and up to 400 μM adenosine triphosphate (ATP). Basal kinase activity profiles were reproducible with intra- and inter-experiment coefficients of variation of <15% and <20%, respectively. Evaluation of 14 tumor cell lines and tissues showed similar consistently high phosphorylated peptides in their basal profiles. Incubation of four patient-derived tumor lysates with the TKIs dasatinib, sunitinib, sorafenib and erlotinib primarily caused inhibition of substrates that were highly phosphorylated in the basal profile analyses. Using recombinant Src and Axl kinase, relative substrate specificity was demonstrated for a subset of peptides, as their phosphorylation was reverted by co-incubation with a specific inhibitor. In conclusion, we demonstrated robust technical specifications of this high-throughput tyrosine kinase peptide microarray. These features required as little as 5-7 μg of protein per sample, facilitating clinical implementation as a TKI selection tool. However, currently available peptide substrates can benefit from an enhancement of the differential potential for complex samples such as tumor lysates. We propose that mass spectrometry-based phosphoproteomics may provide such an enhancement by identifying more discriminative peptides.
Insights
A high-throughput tyrosine kinase peptide microarray shows promise for selecting personalized cancer medicine treatments. This assay reliably predicts patient response to tyrosine kinase inhibitors (TKIs) using minimal protein samples.
Area of Science:
- Biochemistry
- Oncology
- Proteomics
Background:
- Personalized cancer medicine requires tools to predict patient response to targeted therapies like tyrosine kinase inhibitors (TKIs).
- High-throughput assays are needed for clinical implementation of TKI selection.
Purpose of the Study:
- To evaluate a high-throughput tyrosine kinase peptide substrate array as a selection tool for TKI therapy.
- To assess the technical specifications and reproducibility of the assay for clinical use.
Main Methods:
- Utilized cancer cell lines and patient tumor tissues.
- Employed a high-throughput tyrosine kinase peptide substrate array.
- Analyzed phosphorylation signal intensities and reproducibility using varying lysate protein and ATP concentrations.
- Tested TKI inhibition with dasatinib, sunitinib, sorafenib, and erlotinib on patient-derived tumor lysates.
- Validated substrate specificity using recombinant kinases and specific inhibitors.
Main Results:
- Demonstrated reproducible basal kinase activity profiles with low intra- (<15%) and inter-experiment (<20%) variation.
- Identified consistently high phosphorylated peptides across 14 tumor cell lines and tissues.
- Observed that TKIs primarily inhibited highly phosphorylated substrates in basal profiles.
- Confirmed substrate specificity for a subset of peptides using specific kinase inhibitors.
Conclusions:
- The tyrosine kinase peptide microarray exhibits robust technical specifications and requires minimal protein (5-7 μg), facilitating clinical implementation as a TKI selection tool.
- Enhancing differential potential for complex samples like tumor lysates is needed.
- Mass spectrometry-based phosphoproteomics may offer improved discriminative peptides for TKI selection.
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