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Published on: January 22, 2019
Substrate-derived peptides for selective covalent inhibition of protein tyrosine kinases
Minhee Lee1, Zijing Wang1, Andrew C Johns1
1Department of Chemistry, Columbia University, New York, NY 10027.
Abstract:
Protein tyrosine kinases are important regulators of cell signaling, and aberrant kinase activity contributes to many human diseases, including cancers. All protein tyrosine kinases share a highly-conserved ATP binding pocket but diverge in their substrate binding sites in order to mediate distinct signaling events. Many potent and efficacious ATP-competitive tyrosine kinase inhibitors have been developed, however it remains challenging to achieve on-target selectivity across different kinases and target specific disease mutants, given the high degree of conservation in the ATP-binding pocket. By contrast, the variable substrate-binding site offers an opportunity for selective inhibition, provided molecules can be targeted to this site. Here, we present a modular strategy to design selective, peptide-based covalent inhibitors of tyrosine kinases with a distinct binding mode from existing ATP-competitive inhibitors. Using Src kinase as a model system, we demonstrate that Src-selective reactivity can be achieved by first designing an optimized substrate peptide and then strategically positioning an electrophile on the peptide to target a non-conserved cysteine on the kinase. We show that substrate-derived covalent peptides can inhibit kinase activity, bind simultaneously with an ATP-competitive inhibitor, and even inhibit the activity of kinases bearing a common drug resistance mutation. We further explore the application of this approach to develop an inhibitor of the cancer-relevant fibroblast growth factor receptor 1 kinase that shows selectivity for an oncogenic mutant over the wild-type enzyme. Our modular strategy to generate selective covalent peptides targeting protein tyrosine kinases provides a promising framework for future chemical probe and drug development efforts.
Insights
Researchers developed a novel strategy for designing selective, peptide-based covalent inhibitors of protein tyrosine kinases (PTKs). This approach targets the substrate-binding site, offering a new avenue for cancer drug development.
Area of Science:
- Biochemistry
- Molecular Biology
- Drug Discovery
Background:
- Protein tyrosine kinases (PTKs) are crucial for cell signaling, and their dysregulation is linked to diseases like cancer.
- Existing ATP-competitive inhibitors face challenges in achieving selectivity due to conserved ATP-binding pockets.
- The variable substrate-binding site presents an opportunity for developing more selective kinase inhibitors.
Purpose of the Study:
- To present a modular strategy for designing selective, peptide-based covalent inhibitors of PTKs.
- To demonstrate a novel binding mode distinct from current ATP-competitive inhibitors.
- To explore the potential for targeting specific kinase mutants and developing new chemical probes and drugs.
Main Methods:
- Developed a modular strategy involving optimized substrate peptides and strategically positioned electrophiles.
- Utilized Src kinase as a model system to achieve kinase-selective reactivity.
- Applied the approach to design an inhibitor for fibroblast growth factor receptor 1 (FGFR1) kinase.
Main Results:
- Demonstrated Src-selective covalent inhibition using substrate-derived peptides.
- Showed that these inhibitors can bind concurrently with ATP-competitive drugs.
- Confirmed inhibition of drug-resistant kinase mutations.
- Developed an FGFR1 inhibitor selective for an oncogenic mutant over wild-type FGFR1.
Conclusions:
- The modular strategy enables the creation of selective covalent peptides targeting PTKs.
- This approach offers a promising framework for developing chemical probes and therapeutic agents.
- The distinct binding mode provides a new avenue for overcoming resistance to existing kinase inhibitors.
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