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◆ PLoS pathogens2026-08-07

Directed evolution of a stem-helix-targeting antibody enables MERS-CoV cross-neutralization through enhanced binding affinity.

Panpan Zhou, Meng Yuan, Yuexiu Zhang, Oliver Limbo, Ge Song, Fangzhu Zhao, Hejun Liu, Wan-Ting He, Tazio Capozzola, Sean Callaghan, Gabriel Avillion, Xuduo Li, Nathan Beutler, Peter Yong, Fabio Anzanello, Thomas F Rogers, Dennis R Burton, Joseph G Jardine, Ian A Wilson, Raiees Andrabi

原始摘要(英文原文)· Original abstract
Broadly neutralizing antibodies (bnAbs) targeting conserved regions of the betacoronavirus spike are important for pan-betacoronavirus protection and pandemic preparedness. Here, we report the isolation of a human monoclonal antibody, CC65.1, from a SARS-CoV-2 convalescent donor that targets the conserved S2 stem helix region. CC65.1 neutralizes various sarbecoviruses, including SARS-CoV-2, and binds to the MERS-CoV spike but lacks MERS-CoV-neutralizing activity due to insufficient binding affinity. We utilized directed evolution to enhance the binding affinity of CC65.1 for the MERS-CoV S2 stem helix, yielding engineered antibody variants with newly acquired MERS-CoV-neutralizing activity. High-resolution structural analysis reveals key paratope mutations that enhance binding and stabilize epitope engagement. Our findings demonstrate the potential of in vitro affinity maturation to expand the neutralization breadth of stem-helix-targeting antibodies across divergent betacoronaviruses. This work supports the development of engineered bnAbs for broadly protective betacoronavirus countermeasures and provides a strategy for achieving cross-lineage neutralization.
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Directed evolution of a stem-helix-targeting antibody enables MERS-CoV cross-neutralization through enhanced binding affinity. — 科研速览 Science Skim