Author: Deshmukh, Maya G.; Ippolito, Joseph A.; Zhang, Chun-Hui; Stone, Elizabeth A.; Reilly, Raquel A.; Miller, Scott J.; Jorgensen, William L.; Anderson, Karen S.
                    Title: Structure-guided design of a perampanel-derived pharmacophore targeting the SARS-CoV-2 main protease  Cord-id: 3yxh3mqo  Document date: 2021_6_22
                    ID: 3yxh3mqo
                    
                    Snippet: There is a clinical need for direct-acting antivirals targeting SARS-CoV-2, the coronavirus responsible for the COVID-19 pandemic, to complement current therapeutic strategies. The main protease (M(pro)) is an attractive target for antiviral therapy. However, the vast majority of protease inhibitors described thus far are peptidomimetic and bind to the active-site cysteine via a covalent adduct, which is generally pharmacokinetically unfavorable. We have reported the optimization of an existing 
                    
                    
                    
                     
                    
                    
                    
                    
                        
                            
                                Document: There is a clinical need for direct-acting antivirals targeting SARS-CoV-2, the coronavirus responsible for the COVID-19 pandemic, to complement current therapeutic strategies. The main protease (M(pro)) is an attractive target for antiviral therapy. However, the vast majority of protease inhibitors described thus far are peptidomimetic and bind to the active-site cysteine via a covalent adduct, which is generally pharmacokinetically unfavorable. We have reported the optimization of an existing FDA-approved chemical scaffold, perampanel, to bind to and inhibit M(pro) noncovalently with IC(50)s in the low-nanomolar range and EC(50)s in the low-micromolar range. Here, we present nine crystal structures of M(pro) bound to a series of perampanel analogs, providing detailed structural insights into their mechanism of action and structure-activity relationship. These insights further reveal strategies for pursuing rational inhibitor design efforts in the context of considerable active-site flexibility and potential resistance mechanisms.
 
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