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An antibody targeting the N-terminal domain of SARS-CoV-2 disrupts the spike trimer
Naveenchandra Suryadevara, Andrea R. Shiakolas, Laura A. VanBlargan, Elad Binshtein, Rita E. Chen, James Brett Case, Kevin J. Kramer, Erica C. Armstrong, Luke Myers, Andrew Trivette, Christopher Gainza, Rachel S. Nargi, Christopher N. Selverian, Edgar Davidson, Benjamin J. Doranz, Summer M. Diaz, Laura S. Handal, Robert H. Carnahan, Michael S. Diamond, Ivelin S. Georgiev, James E. Crowe Jr.
Naveenchandra Suryadevara, Andrea R. Shiakolas, Laura A. VanBlargan, Elad Binshtein, Rita E. Chen, James Brett Case, Kevin J. Kramer, Erica C. Armstrong, Luke Myers, Andrew Trivette, Christopher Gainza, Rachel S. Nargi, Christopher N. Selverian, Edgar Davidson, Benjamin J. Doranz, Summer M. Diaz, Laura S. Handal, Robert H. Carnahan, Michael S. Diamond, Ivelin S. Georgiev, James E. Crowe Jr.
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Research Article Immunology Virology

An antibody targeting the N-terminal domain of SARS-CoV-2 disrupts the spike trimer

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Abstract

The protective human antibody response to severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) focuses on the spike (S) protein, which decorates the virion surface and mediates cell binding and entry. Most SARS-CoV-2 protective antibodies target the receptor-binding domain or a single dominant epitope (“supersite”) on the N-terminal domain (NTD). Using the single B cell technology called linking B cell receptor to antigen specificity through sequencing (LIBRA-Seq), we isolated a large panel of NTD-reactive and SARS-CoV-2–neutralizing antibodies from an individual who had recovered from COVID-19. We found that neutralizing antibodies against the NTD supersite were commonly encoded by the IGHV1-24 gene, forming a genetic cluster representing a public B cell clonotype. However, we also discovered a rare human antibody, COV2-3434, that recognizes a site of vulnerability on the SARS-CoV-2 S protein in the trimer interface (TI) and possesses a distinct class of functional activity. COV2-3434 disrupted the integrity of S protein trimers, inhibited the cell-to-cell spread of the virus in culture, and conferred protection in human angiotensin-converting enzyme 2–transgenic (ACE2-transgenic) mice against the SARS-CoV-2 challenge. This study provides insight into antibody targeting of the S protein TI region, suggesting this region may be a site of virus vulnerability.

Authors

Naveenchandra Suryadevara, Andrea R. Shiakolas, Laura A. VanBlargan, Elad Binshtein, Rita E. Chen, James Brett Case, Kevin J. Kramer, Erica C. Armstrong, Luke Myers, Andrew Trivette, Christopher Gainza, Rachel S. Nargi, Christopher N. Selverian, Edgar Davidson, Benjamin J. Doranz, Summer M. Diaz, Laura S. Handal, Robert H. Carnahan, Michael S. Diamond, Ivelin S. Georgiev, James E. Crowe Jr.

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Figure 4

Epitope identification and structural characterization of COV2-3439 and COV2-3434 antibodies.

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Epitope identification and structural characterization of COV2-3439 and ...
(A) Competition of the panel of neutralizing mAbs with the previously mapped antibodies COV2-2130, COV2-2196, COV2-2676, COV2-2489, r4A8, and rCR3022. Unlabeled antibodies that were applied to the antigen first are indicated on the left, whereas biotinylated antibodies that were added to antigen-coated wells second are listed across the top. The number in each box represents the percentage of competition binding of the biotinylated antibody in the presence of the indicated competing antibody. Heatmap colors range from dark gray (100% binding of the biotinylated antibody) to white (0% or no binding of the biotinylated antibody). The experiment was performed in biological replicate. A biological replicate from a representative single experiment is shown. (B) nsEM of the SARS-CoV-2 S6Pecto protein in complex with COV2-3439 Fab. Shown are the side view and top view of superimposed 3D volume COV2-3439 Fab–S6Pecto closed trimer (S protein model PDB:7JJI) complexes, as visualized by nsEM for the COV2-2676 Fab model in gold and the COV2-2489 Fab model in gray. At the bottom, negative-stain 2D classes of SARS-CoV-2 S protein incubated with COV2-3439 Fab are shown. Data are from a single experiment (detailed collection statistics are provided in Supplemental Table 3). (C) Morgagni images of SARS-CoV-2 S6Pecto protein only, immediately after COV2-3434 Fab was added to the SARS-CoV-2 S6Pecto trimer, incubated for 1, 5, or 30 minutes or 1 hour, and then placed on a nsEM grid. (D) Negative-stain 2D classes of SARS-CoV-2 S6Pecto protein only or COV2-3434 Fab with a monomer of SARS-CoV-2 S6Pecto protein (based on the density surrounding the Fab).

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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