Modular basis for potent SARS-CoV-2 neutralization by a prevalent VH1-2-derived antibody class
Author(s) -
Micah Rapp,
Yicheng Guo,
Eswar R. Reddem,
Jian Yu,
Lihong Liu,
Pengfei Wang,
Gabriele Cerutti,
Phinikoula S. Katsamba,
Jude Bimela,
Fabiana Bahna,
Seetha Mannepalli,
Baoshan Zhang,
Peter D. Kwong,
Yaoxing Huang,
David D. Ho,
Lawrence Shapiro,
Zizhang Sheng
Publication year - 2021
Publication title -
cell reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.264
H-Index - 154
eISSN - 2639-1856
pISSN - 2211-1247
DOI - 10.1016/j.celrep.2021.108950
Subject(s) - neutralization , antibody , immunoglobulin light chain , biology , computational biology , glycan , virology , gene , covid-19 , genetics , glycoprotein , medicine , disease , pathology , infectious disease (medical specialty)
Antibodies with heavy chains that derive from the VH1-2 gene constitute some of the most potent SARS-CoV-2-neutralizing antibodies yet identified. To provide insight into whether these genetic similarities inform common modes of recognition, we determined structures of the SARS-CoV-2 spike in complex with three VH1-2-derived antibodies: 2-15, 2-43, and H4. All three utilize VH1-2-encoded motifs to recognize the receptor-binding domain (RBD), with heavy chain N53I enhancing binding and light chain tyrosines recognizing F486RBD. Despite these similarities, class members bind both RBD-up and -down conformations of the spike, with a subset of antibodies utilizing elongated CDRH3s to recognize glycan N343 on a neighboring RBD – a quaternary interaction accommodated by an increase in RBD separation of up to 12 Å. The VH1-2-antibody class thus utilizes modular recognition encoded by modular genetic elements to effect potent neutralization, with VH-gene component specifying recognition of RBD and CDRH3 component specifying quaternary interactions.
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