4.7 Article

Cryo-EM Structures of SARS-CoV-2 Spike without and with ACE2 Reveal a pH-Dependent Switch to Mediate Endosomal Positioning of Receptor-Binding Domains

Journal

CELL HOST & MICROBE
Volume 28, Issue 6, Pages 867-+

Publisher

CELL PRESS
DOI: 10.1016/j.chom.2020.11.004

Keywords

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Funding

  1. Intramural Research Program of the Vaccine Research Center, National Institute of Allergy and Infectious Diseases (NIAID), federal funds from the Frederick National Laboratory for Cancer Research [HHSN261200800001E]
  2. NIH Common Fund Transformative High Resolution Cryo-Electron Microscopy program [U24 GM129539]
  3. Simons Foundation [SF349247]
  4. NY State Assembly
  5. National Cancer Institute's National Cryo-EM Facility at the Frederick National Laboratory for Cancer Research [HSSN261200800001E]

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The SARS-CoV-2 spike employs mobile receptor-binding domains (RBDs) to engage the human ACE2 receptor and to facilitate virus entry, which can occur through low-pH-endosomal pathways. To understand how ACE2 binding and low pH affect spike conformation, we determined cryo-electron microscopy structures-at serological and endosomal pH-delineating spike recognition of up to three ACE2 molecules. RBDs freely adopted up conformations required for ACE2 interaction, primarily through RBD movement combined with smaller alterations in neighboring domains. In the absence of ACE2, single-RBD-up conformations dominated at pH 5.5, resolving into a solitary all-down conformation at lower pH. Notably, a pH-dependent refolding region (residues 824-858) at the spike-interdomain interface displayed dramatic structural rearrangements and mediated RBD positioning through coordinated movements of the entire trimer apex. These structures provide a foundation for understanding prefusion-spike mechanics governing endosomal entry; we suggest that the low pH all-down conformation potentially facilitates immune evasion from RBD-up binding antibody.

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