Orally effective FDA-approved protein kinase targeted covalent inhibitors (TCIs)
1Blue Ridge Institute for Medical Research, 3754 Brevard Road, Suite 116, Box 19, Horse Shoe, NC, 28742-8814, United States.
Abstract:
Because dysregulation of protein kinases owing to mutations or overexpression plays causal roles in human diseases, this family of enzymes has become one of the most important drug targets of the 21st century. Of the 62 protein kinases inhibitors that are approved by the FDA, seven of them form irreversible covalent adducts with their target enzymes. The clinical success of ibrutinib, an inhibitor of Bruton tyrosine kinase, in the treatment of mantle cell lymphomas following its approval in 2013 helped to overcome a general bias against the development of irreversible drug inhibitors. The other approved covalent drugs include acalabrutinib and zanubrutinib, which also inhibit Bruton tyrosine kinase. Furthermore afatinib, dacomitinib, and osimertinib, inhibitors of members of the epidermal growth factor receptor family (ErbB1/2/3/4), are used in the treatment of non-small cell lung cancers. Neratinib is an inhibitor of ErbB2 and is used in the treatment of ErbB2/HER2-positive breast cancer. The seven drugs considered in this review have a common mechanism of action; this process involves the addition of a protein cysteine thiolate anion (protein‒S:-) to an acrylamide derivative (CH2=CHC(=O)N(H)R) where R represents the pharmacophore. Such reactions are commonly referred to as Michael additions and each reaction results in the formation of a covalent bond between carbon and sulfur; the final product is a thioether. This process consists of two discrete steps; the first step involves the reversible association of the drug with its target enzyme so that a weakly electrophilic functionality, a warhead, is bound near an appropriately positioned nucleophilic cysteine. In the second step, a reaction occurs between the warhead and the target enzyme cysteine to form a covalently modified and inactive protein. For this process to work, the warhead must be appropriately juxtaposed in relationship to the cysteinyl thiolate so that the covalent addition can occur. Covalent inhibitors have emerged from the ranks of drugs to be avoided to become an emerging paradigm. Much of this recent success can be attributed to the clinical efficacy of ibrutinib as well as the other antagonists covered in this review. Moreover, the covalent inhibitor methodology is swiftly gaining acceptance as a valuable component of the medicinal chemist's toolbox and is primed to make a significant impact on the development of enzyme antagonists and receptor modulators.
Insights
Seven FDA-approved covalent drugs, including ibrutinib, target protein kinases for cancer treatment. These irreversible inhibitors form covalent bonds with target enzymes, marking a paradigm shift in drug development.
Area of Science:
- Biochemistry
- Medicinal Chemistry
- Pharmacology
Background:
- Protein kinases are crucial drug targets due to their role in human diseases.
- Seven of 62 FDA-approved kinase inhibitors are covalent drugs, overcoming past biases.
- The success of ibrutinib and other covalent inhibitors has shifted perceptions.
Purpose of the Study:
- To review the mechanism of action of approved covalent kinase inhibitors.
- To highlight the significance of covalent inhibition in drug development.
- To discuss the emerging paradigm of covalent inhibitors in medicinal chemistry.
Main Methods:
- Analysis of the common Michael addition mechanism used by seven approved covalent drugs.
- Description of the two-step process: reversible association followed by covalent bond formation.
- Identification of the key components: acrylamide warhead and target enzyme cysteine.
Main Results:
- Approved covalent drugs include ibrutinib, acalabrutinib, zanubrutinib (Bruton tyrosine kinase inhibitors), and afatinib, dacomitinib, osimertinib, neratinib (EGFR/ErbB family inhibitors).
- These drugs function via a Michael addition reaction, forming a stable thioether bond.
- The process requires precise positioning of the drug's warhead and the enzyme's cysteine residue.
Conclusions:
- Covalent kinase inhibitors have transitioned from being avoided to becoming a key therapeutic strategy.
- The clinical success of drugs like ibrutinib validates the covalent inhibition approach.
- Covalent inhibition is a rapidly growing and impactful methodology in drug discovery.
Related Concept Videos
Protein Kinases and Phosphatases
Protein kinases
Many proteins in the cell are regulated by phosphorylation, the addition of a phosphate group. A family of enzymes called kinases...
Protein Kinases and Phosphatases
Targeted Cancer Therapies
There are several types of targeted therapies against...
Dipeptidyl Peptidase 4 Inhibitors
PI3K/mTOR/AKT Signaling Pathway
Inhibition of Cdk Activity


