Artículo
Reverse engineering synthetic antiviral amyloids
Michiels, Emiel; Roose, Kenny; Gallardo, Rodrigo; Khodaparast, Ladan; Khodaparast, Laleh; van der Kant, Rob; Siemons, Maxime; Houben, Bert; Ramakers, Meine; Wilkinson, Hannah; Guerreiro, Patricia; Louros, Nikolaos; Kaptein, Suzanne J. F.; Ibañez, Lorena Itatí
; Smet, Anouk; Baatsen, Pieter; Liu, Shu; Vorberg, Ina; Bormans, Guy; Neyts, Johan; Saelens, Xavier; Rousseaux, Frédéric; Schymkowitz, Joost
Fecha de publicación:
06/2020
Editorial:
Nature Publishing Group
Revista:
Nature Communications
ISSN:
2041-1723
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
Human amyloids have been shown to interact with viruses and interfere with viral replication. Based on this observation, we employed a synthetic biology approach in which we engineered virus-specific amyloids against influenza A and Zika proteins. Each amyloid shares a homologous aggregation-prone fragment with a specific viral target protein. For influenza we demonstrate that a designer amyloid against PB2 accumulates in influenza A-infected tissue in vivo. Moreover, this amyloid acts specifically against influenza A and its common PB2 polymorphisms, but not influenza B, which lacks the homologous fragment. Our model amyloid demonstrates that the sequence specificity of amyloid interactions has the capacity to tune amyloid-virus interactions while allowing for the flexibility to maintain activity on evolutionary diverging variants.
Palabras clave:
iNFLUENZA
,
ZIKA
,
AGGREGATORS
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Identificadores
Colecciones
Articulos(ICT - MILSTEIN)
Articulos de INST.DE CS. Y TECNOLOGIA "DR. CESAR MILSTEIN"
Articulos de INST.DE CS. Y TECNOLOGIA "DR. CESAR MILSTEIN"
Citación
Michiels, Emiel; Roose, Kenny; Gallardo, Rodrigo; Khodaparast, Ladan; Khodaparast, Laleh; et al.; Reverse engineering synthetic antiviral amyloids; Nature Publishing Group; Nature Communications; 11; 1; 6-2020; 1-13
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