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Published on: June 13, 2019
Cell-based proteome profiling of potential dasatinib targets by use of affinity-based probes
Haibin Shi1, Chong-Jing Zhang, Grace Y J Chen
1Department of Chemistry, National University of Singapore, Singapore 117543.
Abstract:
Protein kinases (PKs) play an important role in the development and progression of cancer by regulating cell growth, survival, invasion, metastasis, and angiogenesis. Dasatinib (BMS-354825), a dual Src/Abl inhibitor, is a promising therapeutic agent with oral bioavailability. It has been used for the treatment of imatinib-resistant chronic myelogenous leukemia (CML). Most kinase inhibitors, including Dasatinib, inhibit multiple cellular targets and do not possess exquisite cellular specificity. Recent efforts in kinase research thus focus on the development of large-scale, proteome-wide chemical profiling methods capable of rapid identification of potential cellular (on- and off-) targets of kinase inhibitors. Most existing approaches, however, are still problematic and in many cases not compatible with live-cell studies. In this work, we have successfully developed a cell-permeable kinase probe (DA-2) capable of proteome-wide profiling of potential cellular targets of Dasatinib. In this way, highly regulated, compartmentalized kinase-drug interactions were maintained. By comparing results obtained from different proteomic setups (live cells, cell lysates, and immobilized affinity matrix), we found DA-2 was able to identify significantly more putative kinase targets. In addition to Abl and Src family tyrosine kinases, a number of previously unknown Dasatinib targets have been identified, including several serine/threonine kinases (PCTK3, STK25, eIF-2A, PIM-3, PKA C-α, and PKN2). They were further validated by pull-down/immunoblotting experiments as well as kinase inhibition assays. Further studies are needed to better understand the exact relevance of Dasatinib and its pharmacological effects in relation to these newly identified cellular targets. The approach developed herein should be amenable to the study of many of the existing reversible drugs/drug candidates.
Insights
Researchers developed a new cell-permeable probe (DA-2) to identify cancer drug targets. This probe revealed previously unknown targets for Dasatinib, a leukemia drug, including several serine/threonine kinases.
Area of Science:
- Biochemistry
- Chemical Biology
- Pharmacology
Background:
- Protein kinases regulate critical cellular processes, making them key targets in cancer therapy.
- Dasatinib is an effective dual Src/Abl inhibitor for chronic myeloid leukemia but lacks cellular specificity.
- Existing methods for identifying kinase inhibitor targets are often limited, especially in live-cell settings.
Purpose of the Study:
- To develop a novel cell-permeable probe for proteome-wide profiling of kinase inhibitor targets.
- To identify novel cellular targets of the kinase inhibitor Dasatinib.
- To validate the utility of the developed probe in live-cell and cell lysate systems.
Main Methods:
- Development of a cell-permeable kinase probe (DA-2) for chemical profiling.
- Proteome-wide target identification using DA-2 in live cells, cell lysates, and immobilized affinity matrices.
- Validation of identified targets through pull-down/immunoblotting and kinase inhibition assays.
Main Results:
- DA-2 enabled identification of significantly more putative kinase targets compared to other proteomic setups.
- New Dasatinib targets were identified, including serine/threonine kinases (PCTK3, STK25, eIF-2A, PIM-3, PKA C-α, PKN2) beyond known Abl and Src kinases.
- The probe maintained highly regulated, compartmentalized kinase-drug interactions.
Conclusions:
- The developed DA-2 probe is effective for proteome-wide profiling of kinase inhibitors in live cells.
- Novel kinase targets for Dasatinib were identified, expanding our understanding of its mechanism of action.
- This approach is adaptable for studying other reversible drugs and drug candidates.

