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Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment

The filoviruses are etiological agents of life-threatening hemorrhagic fever with high mortality rate and risk of potential outbreak. Among members of this family, the Ebola (EBOV), Sudan (SUDV), and Marburg (MARV) viruses are considered the most pathogenic for humans. The ebolavirus nucleoprotein (...

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Autores principales: Landeras-Bueno, Sara, Oda, Shun-ichiro, Norris, Michael J., Li Salie, Zhe, Guenaga, Javier, Wyatt, Richard T., Saphire, Erica Ollmann
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6650547/
https://www.ncbi.nlm.nih.gov/pubmed/31337716
http://dx.doi.org/10.1128/mBio.00734-19
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author Landeras-Bueno, Sara
Oda, Shun-ichiro
Norris, Michael J.
Li Salie, Zhe
Guenaga, Javier
Wyatt, Richard T.
Saphire, Erica Ollmann
author_facet Landeras-Bueno, Sara
Oda, Shun-ichiro
Norris, Michael J.
Li Salie, Zhe
Guenaga, Javier
Wyatt, Richard T.
Saphire, Erica Ollmann
author_sort Landeras-Bueno, Sara
collection PubMed
description The filoviruses are etiological agents of life-threatening hemorrhagic fever with high mortality rate and risk of potential outbreak. Among members of this family, the Ebola (EBOV), Sudan (SUDV), and Marburg (MARV) viruses are considered the most pathogenic for humans. The ebolavirus nucleoprotein (NP) is the most abundant protein in infected cells and is essential for viral transcription and replication; thus, it represents an attractive target for therapeutic intervention. Here, we present the structure of SUDV NP in complex with the amino-terminal portion of the phosphoprotein VP35 at 2.3 Å. This structure captures VP35 chaperoning SUDV NP in a monomeric and RNA-free state. This transient state has been proposed to be key to maintaining a pool of monomeric and RNA-free NPs prior to NP-NP polymerization and encapsidation of the viral RNA genome. This structure also reveals a newly visualized interaction between NP and VP35, a well-defined beta sheet that is not present in previous structures. Affinity binding assays demonstrate that this beta sheet is essential for maintaining the high-affinity interaction between VP35 and a hydrophobic pocket on SUDV NP, and electron microscopy indicates the importance of this binding interaction to the oligomeric state and assembly of NP in human cells. Complementary structure-directed mutagenesis identifies critical residues conserved across the filovirus family that could be targeted by broadly effective antivirals.
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spelling pubmed-66505472019-08-06 Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment Landeras-Bueno, Sara Oda, Shun-ichiro Norris, Michael J. Li Salie, Zhe Guenaga, Javier Wyatt, Richard T. Saphire, Erica Ollmann mBio Research Article The filoviruses are etiological agents of life-threatening hemorrhagic fever with high mortality rate and risk of potential outbreak. Among members of this family, the Ebola (EBOV), Sudan (SUDV), and Marburg (MARV) viruses are considered the most pathogenic for humans. The ebolavirus nucleoprotein (NP) is the most abundant protein in infected cells and is essential for viral transcription and replication; thus, it represents an attractive target for therapeutic intervention. Here, we present the structure of SUDV NP in complex with the amino-terminal portion of the phosphoprotein VP35 at 2.3 Å. This structure captures VP35 chaperoning SUDV NP in a monomeric and RNA-free state. This transient state has been proposed to be key to maintaining a pool of monomeric and RNA-free NPs prior to NP-NP polymerization and encapsidation of the viral RNA genome. This structure also reveals a newly visualized interaction between NP and VP35, a well-defined beta sheet that is not present in previous structures. Affinity binding assays demonstrate that this beta sheet is essential for maintaining the high-affinity interaction between VP35 and a hydrophobic pocket on SUDV NP, and electron microscopy indicates the importance of this binding interaction to the oligomeric state and assembly of NP in human cells. Complementary structure-directed mutagenesis identifies critical residues conserved across the filovirus family that could be targeted by broadly effective antivirals. American Society for Microbiology 2019-07-23 /pmc/articles/PMC6650547/ /pubmed/31337716 http://dx.doi.org/10.1128/mBio.00734-19 Text en Copyright © 2019 Landeras-Bueno et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Landeras-Bueno, Sara
Oda, Shun-ichiro
Norris, Michael J.
Li Salie, Zhe
Guenaga, Javier
Wyatt, Richard T.
Saphire, Erica Ollmann
Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment
title Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment
title_full Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment
title_fullStr Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment
title_full_unstemmed Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment
title_short Sudan Ebolavirus VP35-NP Crystal Structure Reveals a Potential Target for Pan-Filovirus Treatment
title_sort sudan ebolavirus vp35-np crystal structure reveals a potential target for pan-filovirus treatment
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6650547/
https://www.ncbi.nlm.nih.gov/pubmed/31337716
http://dx.doi.org/10.1128/mBio.00734-19
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