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Genetic and structural basis for recognition of SARS-CoV-2 spike protein by a two-antibody cocktail
Jinhui Dong; Seth Zost; Allison Greaney; Tyler N Starr; Adam S Dingens; Elaine C Chen; Rita Chen; Brett Case; Rachel Sutton; Pavlo Gilchuk; Jessica Rodriguez; Erica Armstrong; Christopher Gainza; Rachel Nargi; Elad Binshtein; Xuping Xie; Xianwen Zhang; Pei-Yong Shi; James Logue; Stuart Weston; Marisa McGrath; Matthew Frieman; Tyler Brady; Kevin Tuffy; Helen Bright; Yueh-Ming Loo; Patrick McvTamney; Mark Esser; Robert Carnahan; Michael Diamond; Jesse Bloom; James E Crowe Jr..
Affiliation
  • Jinhui Dong; Vanderbilt University Medical Center
  • Seth Zost; Vanderbilt University Medical Center
  • Allison Greaney; University of Washington
  • Tyler N Starr; Fred Hutchinson Cancer Research Center
  • Adam S Dingens; Fred Hutchinson Cancer Research Center
  • Elaine C Chen; Vanderbilt University
  • Rita Chen; Washington University in St. Louis
  • Brett Case; Washington University in St. Louis
  • Rachel Sutton; Vanderbilt University Medical Center
  • Pavlo Gilchuk; Vanderbilt University Medical Center
  • Jessica Rodriguez; Vanderbilt University Medical Center
  • Erica Armstrong; Vanderbilt University Medical Center
  • Christopher Gainza; Vanderbilt University Medical Center
  • Rachel Nargi; Vanderbilt University Medical Center
  • Elad Binshtein; Vanderbilt University
  • Xuping Xie; The University of Texas Medical Branch at Galveston
  • Xianwen Zhang; The University of Texas Medical Branch at Galveston
  • Pei-Yong Shi; The University of Texas Medical Branch at Galveston
  • James Logue; University of Maryland
  • Stuart Weston; University of Maryland
  • Marisa McGrath; University of Maryland
  • Matthew Frieman; University of Maryland
  • Tyler Brady; AstraZeneca
  • Kevin Tuffy; AstraZeneca
  • Helen Bright; AstraZeneca
  • Yueh-Ming Loo; AstraZeneca
  • Patrick McvTamney; AstraZeneca
  • Mark Esser; AstraZeneca
  • Robert Carnahan; Vanderbilt University Medical Center
  • Michael Diamond; Washington University in St. Louis
  • Jesse Bloom; Fred Hutchinson Cancer Research Center
  • James E Crowe Jr.; Vanderbilt University Medical Center
Preprint de En | PREPRINT-BIORXIV | ID: ppbiorxiv-428529
ABSTRACT
The SARS-CoV-2 pandemic has led to an urgent need to understand the molecular basis for immune recognition of SARS-CoV-2 spike (S) glycoprotein antigenic sites. To define the genetic and structural basis for SARS-CoV-2 neutralization, we determined the structures of two human monoclonal antibodies COV2-2196 and COV2-21301, which form the basis of the investigational antibody cocktail AZD7442, in complex with the receptor binding domain (RBD) of SARS-CoV-2. COV2-2196 forms an "aromatic cage" at the heavy/light chain interface using germline-encoded residues in complementarity determining regions (CDRs) 2 and 3 of the heavy chain and CDRs 1 and 3 of the light chain. These structural features explain why highly similar antibodies (public clonotypes) have been isolated from multiple individuals1-4. The structure of COV2-2130 reveals that an unusually long LCDR1 and HCDR3 make interactions with the opposite face of the RBD from that of COV2-2196. Using deep mutational scanning and neutralization escape selection experiments, we comprehensively mapped the critical residues of both antibodies and identified positions of concern for possible viral escape. Nonetheless, both COV2-2196 and COV2-2130 showed strong neutralizing activity against SARS-CoV-2 strain with recent variations of concern including E484K, N501Y, and D614G substitutions. These studies reveal germline-encoded antibody features enabling recognition of the RBD and demonstrate the activity of a cocktail like AZD7442 in preventing escape from emerging variant viruses.
Licence
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Texte intégral: 1 Collection: 09-preprints Base de données: PREPRINT-BIORXIV Langue: En Année: 2021 Type de document: Preprint
Texte intégral: 1 Collection: 09-preprints Base de données: PREPRINT-BIORXIV Langue: En Année: 2021 Type de document: Preprint