doi: 10.1016/j.ejmech.2017.06.019
A blog highlighting recent publications in the area of covalent modification of proteins, particularly relating to covalent-modifier drugs. @CovalentMod on Twitter, @covalentmod@mstdn.science on Mastodon, and @covalentmod.bsky.social on BlueSky
Showing posts with label review. Show all posts
Showing posts with label review. Show all posts
Tuesday, June 13, 2017
Covalent inhibitors design and discovery
Stephane De Cesco, Jerry Kurian, Caroline Dufresne, Anthony Mittermaier, Nicolas Moitessier
doi: 10.1016/j.ejmech.2017.06.019
doi: 10.1016/j.ejmech.2017.06.019
Thursday, June 1, 2017
Modeling Covalent-Modifier Drugs
Ernest Awoonor-Williams, Andrew G. Walsh, Christopher N. Rowley
Biochimica et Biophysica Acta (BBA) - Proteins and Proteomics
doi: 10.1016/j.bbapap.2017.05.009
In this review, we present a summary of how computer modeling has been used in the development of covalent modifier drugs. Covalent modifier drugs bind by forming a chemical bond with their target. This covalent binding can improve the selectivity of the drug for a target with complementary reactivity and result in increased binding affinities due to the strength of the covalent bond formed. In some cases, this results in irreversible inhibition of the target, but some targeted covalent inhibitor (TCI) drugs bind covalently but reversibly. Computer modeling is widely used in drug discovery, but different computational methods must be used to model covalent modifiers because of the chemical bonds formed. Structural and bioinformatic analysis has identified sites of modification that could yield selectivity for a chosen target. Docking methods, which are used to rank binding poses of large sets of inhibitors, have been augmented to support the formation of protein–ligand bonds and are now capable of predicting the binding pose of covalent modifiers accurately. The pKa’s of amino acids can be calculated in order to assess their reactivity towards electrophiles. QM/MM methods have been used to model the reaction mechanisms of covalent modification. The continued development of these tools will allow computation to aid in the development of new covalent modifier drugs.
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Fragment-Based Covalent Targeting of Lysines at the Allosteric Latch Site of SHP2.
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