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SARS-CoV-2 antibody–dependent enhancement of infection depends on antibody binding to both ACE2 and Fc receptors
Natalia A. Kuzmina, Sivakumar Periasamy, Kritika Kedarinath, Keziah Hernandez, Caroline Atyeo, S. Moses Dennison, Kan Li, Daniel Bedinger, Sharon L. Schendel, Georgia D. Tomaras, Hanif Ali, Galit Alter, Erica Ollmann Saphire, Alexander Bukreyev
Natalia A. Kuzmina, Sivakumar Periasamy, Kritika Kedarinath, Keziah Hernandez, Caroline Atyeo, S. Moses Dennison, Kan Li, Daniel Bedinger, Sharon L. Schendel, Georgia D. Tomaras, Hanif Ali, Galit Alter, Erica Ollmann Saphire, Alexander Bukreyev
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Research Article Immunology Virology

SARS-CoV-2 antibody–dependent enhancement of infection depends on antibody binding to both ACE2 and Fc receptors

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Abstract

Antibody-dependent enhancement (ADE) of infection is a well-described phenomenon for several viruses, including dengue, Ebola, respiratory syncytial virus, and HIV. ADE occurs when virus-antibody complexes engage Fc receptors (FcRs) and virus-specific receptors, enhancing infection under conditions of incomplete neutralization. The Coronavirus Immunotherapeutic Consortium (CoVIC) assembled a comprehensive dataset of functional properties for over 400 mAbs, enabling direct comparison of neutralization, Fc-mediated functions, receptor binding, and infection of immune cells. Infection rates in most primary human immune cell types were low, with modest increases observed for some mAbs. In contrast, macrophages were more susceptible to SARS-CoV-2 and exhibited substantial ADE with select mAbs. ADE was completely inhibited by FcR blockade and significantly reduced by antibody- or ceftazidime-mediated blocking of angiotensin-converting enzyme 2 (ACE2). Neutralization potency did not correlate with ADE, as both strongly and weakly neutralizing antibodies induced enhancement. Instead, ADE magnitude depended on an antibody’s ability to block spike protein binding to ACE2. Importantly, ADE resulted in productive infection with release of infectious virus. Evaluation of antibodies against the BA.1 (Omicron) variant revealed reduced or lost ADE for most mAbs, with increased ADE observed for several mAbs relative to the USA-WA1/2020 strain.

Authors

Natalia A. Kuzmina, Sivakumar Periasamy, Kritika Kedarinath, Keziah Hernandez, Caroline Atyeo, S. Moses Dennison, Kan Li, Daniel Bedinger, Sharon L. Schendel, Georgia D. Tomaras, Hanif Ali, Galit Alter, Erica Ollmann Saphire, Alexander Bukreyev

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Figure 2

The extent of ADE depends on binding to ACE2 and Fcγ receptors.

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The extent of ADE depends on binding to ACE2 and Fcγ receptors.
(A) Sche...
(A) Schematic of the experiments. (B) Proportion of mAbs causing low, moderate, and strong ADE differs among mAbs that block viral binding to ACE2 weakly versus strongly. (C) Blocking of ACE2 receptors with indicated polyclonal antibodies (10 μg/mL), chemical inhibitors ceftazidime (400 μM), dalbavancin (25 μM), or FcγRI or FcγRIIa receptors with anti CD32 or CD64 antibodies significantly reduces ADE mediated by CoVIC-58. Relative percentages of infected cells normalized to no antibody control. Tukey’s multiple-comparison test. (D) Effects of FcR modifications on ADE tested with the CR3022 mAb. VIC16, which is an IgG1 specific for Ebola virus glycoprotein (48), included as isotype control. Dunnett’s multiple-comparison test. NS, not significant. (E) Effects of blocking of ACE2 receptors and lysosomal cathepsin inhibitor E64d on ADE. (F) Heatmap of the relative effects of each treatment on ADE caused by individual mAbs assessed by percentage of infected cells. Treatment with ceftazidime or anti-ACE2 polyclonal antibodies and endosomal inhibitors has a cumulative effect, suggesting distinct mechanism of ADE inhibition.

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