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A single nanobody neutralizes multiple epochally evolving human noroviruses by modulating capsid plasticity
Resumen
Acute gastroenteritis caused by human noroviruses (HuNoVs) is a significant global health and economic burden and is without licensed vaccines or antiviral drugs. The GII.4 HuNoV causes most epidemics worldwide. This virus undergoes epochal evolution with periodic emergence of variants with new antigenic profiles and altered specificity for histo-blood group antigens (HBGA), the determinants of cell attachment and susceptibility, hampering the development
[ver mas...]
Acute gastroenteritis caused by human noroviruses (HuNoVs) is a significant global health and economic burden and is without licensed vaccines or antiviral drugs. The GII.4 HuNoV causes most epidemics worldwide. This virus undergoes epochal evolution with periodic emergence of variants with new antigenic profiles and altered specificity for histo-blood group antigens (HBGA), the determinants of cell attachment and susceptibility, hampering the development of immunotherapeutics. Here, we show that a llama-derived nanobody M4 neutralizes multiple GII.4 variants with high potency in human intestinal enteroids. The crystal structure of M4 complexed with the protruding domain of the GII.4 capsid protein VP1 revealed a conserved epitope, away from the HBGA binding site, fully accessible only when VP1 transitions to a “raised” conformation in the capsid. Together with dynamic light scattering and electron microscopy of the GII.4 VLPs, our studies suggest a mechanism in which M4 accesses the epitope by altering the conformational dynamics of the capsid and triggering its disassembly to neutralize GII.4 infection.
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Autor
Salmen, Wilhelm;
Hu, Liya;
Bok, Marina;
Chaimongkol, Natthawan;
Ettayebi, Khalil;
Sosnovtsev, Stanislav V.;
Soni, Kaundal;
Ayyar, B. Vijayalakshmi;
Shanker, Sreejesh;
Neill, Frederick H.;
Sankaran, Banumathi;
Atmar, Robert L.;
Estes, Mary K.;
Green, Kim Y.;
Parreño, Gladys Viviana;
Prasad, B. V. Venkataram;
Fuente
Nature Communications 14 : 6516 (Octubre 2023)
Fecha
2023-10
Editorial
Nature Publishing Group
ISSN
2041-1723
Formato
pdf
Tipo de documento
artículo
Palabras Claves
Derechos de acceso
Abierto
Excepto donde se diga explicitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)