Development of Specific, Irreversible Inhibitors for a Receptor Tyrosine Kinase EphB3
Alvin Kung, Ying-Chu Chen, Marianne Schimpl1
1Discovery Sciences, Innovative Medicines and Early Development Biotech Unit, AstraZeneca , Building 310, Cambridge Science Park, Milton Road, Cambridge CB4 0WG, United Kingdom.
Abstract:
Erythropoietin-producing human hepatocellular carcinoma (Eph) receptor tyrosine kinases (RTKs) regulate a variety of dynamic cellular events, including cell protrusion, migration, proliferation, and cell-fate determination. Small-molecule inhibitors of Eph kinases are valuable tools for dissecting the physiological and pathological roles of Eph. However, there is a lack of small-molecule inhibitors that are selective for individual Eph isoforms due to the high homology within the family. Herein, we report the development of the first potent and specific inhibitors of a single Eph isoform, EphB3. Through structural bioinformatic analysis, we identified a cysteine in the hinge region of the EphB3 kinase domain, a feature that is not shared with any other human kinases. We synthesized and characterized a series of electrophilic quinazolines to target this unique, reactive feature in EphB3. Some of the electrophilic quinazolines selectively and potently inhibited EphB3 both in vitro and in cells. Cocrystal structures of EphB3 in complex with two quinazolines confirmed the covalent linkage between the protein and the inhibitors. A "clickable" version of an optimized inhibitor was created and employed to verify specific target engagement in the whole proteome and to probe the extent and kinetics of target engagement of existing EphB3 inhibitors. Furthermore, we demonstrate that the autophosphorylation of EphB3 within the juxtamembrane region occurs in trans using a specific inhibitor. These exquisitely specific inhibitors will facilitate the dissection of EphB3's role in various biological processes and disease contribution.
Insights
Researchers developed the first specific small-molecule inhibitors for EphB3 receptor tyrosine kinases (RTKs). These targeted inhibitors, designed using structural insights, enable detailed study of EphB3's roles in cell biology and disease.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Erythropoietin-producing human hepatocellular carcinoma (Eph) receptor tyrosine kinases (RTKs) are crucial regulators of cellular processes like migration and proliferation.
- Developing isoform-specific small-molecule inhibitors for Eph kinases is challenging due to high homology within the family.
Purpose of the Study:
- To develop the first potent and specific small-molecule inhibitors targeting a single Eph isoform, EphB3.
- To utilize these inhibitors to investigate EphB3's biological functions and disease contributions.
Main Methods:
- Structural bioinformatic analysis to identify unique features of EphB3.
- Synthesis and characterization of electrophilic quinazoline inhibitors.
- In vitro and cellular assays to assess inhibitor potency and selectivity.
- Cocrystallography to confirm inhibitor binding and mechanism.
- Development of a "clickable" inhibitor for proteome-wide target engagement studies.
Main Results:
- Identification of a unique cysteine in the EphB3 kinase hinge region.
- Development of selective electrophilic quinazoline inhibitors that potently inhibit EphB3 in vitro and in cells.
- Cocrystal structures confirming covalent inhibition of EphB3.
- Demonstration of trans autophosphorylation of EphB3 using specific inhibitors.
Conclusions:
- The developed inhibitors are the first potent and specific tools for targeting EphB3.
- These inhibitors will be invaluable for dissecting EphB3's specific roles in biological processes and disease.
- The study provides a novel strategy for developing isoform-selective kinase inhibitors.
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