Author: Elâ€Kamand, Serene; Du Plessis, Marâ€Dean; Breen, Natasha; Johnson, Lexie; Beard, Samuel; Kwan, Ann H.; Richard, Derek J.; Cubeddu, Liza; Gamsjaeger, Roland
                    Title: A distinct ssDNA/RNA binding interface in the Nsp9 protein from SARSâ€CoVâ€2  Cord-id: y87llpic  Document date: 2021_8_13
                    ID: y87llpic
                    
                    Snippet: Severe acute respiratory syndrome coronavirus 2 (SARSâ€CoVâ€2) is a novel, highly infectious RNA virus that belongs to the coronavirus family. Replication of the viral genome is a fundamental step in the virus life cycle and SARSâ€CoVâ€2 nonâ€structural protein 9 (Nsp9) is shown to be essential for virus replication through its ability to bind RNA in the closely related SARSâ€CoVâ€1 strain. Two recent studies revealing the threeâ€dimensional structure of Nsp9 from SARSâ€CoVâ€2 have dem
                    
                    
                    
                     
                    
                    
                    
                    
                        
                            
                                Document: Severe acute respiratory syndrome coronavirus 2 (SARSâ€CoVâ€2) is a novel, highly infectious RNA virus that belongs to the coronavirus family. Replication of the viral genome is a fundamental step in the virus life cycle and SARSâ€CoVâ€2 nonâ€structural protein 9 (Nsp9) is shown to be essential for virus replication through its ability to bind RNA in the closely related SARSâ€CoVâ€1 strain. Two recent studies revealing the threeâ€dimensional structure of Nsp9 from SARSâ€CoVâ€2 have demonstrated a high degree of similarity between Nsp9 proteins within the coronavirus family. However, the binding affinity to RNA is very low which, until now, has prevented the determination of the structural details of this interaction. In this study, we have utilized nuclear magnetic resonance spectroscopy (NMR) in combination with surface biolayer interferometry (BLI) to reveal a distinct binding interface for both ssDNA and RNA that is different to the one proposed in the recently solved SARSâ€CoVâ€2 replication and transcription complex (RTC) structure. Based on these data, we have proposed a structural model of a Nsp9â€RNA complex, shedding light on the molecular details of these important interactions.
 
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