Membrane alterations induced by nonstructural proteins of human norovirus.

Human noroviruses (huNoV) are the most frequent cause of non-bacterial acute gastroenteritis worldwide, particularly genogroup II genotype 4 (GII.4) variants. The viral nonstructural (NS) proteins encoded by the ORF1 polyprotein induce vesical clusters harboring the viral replication sites. Little i...

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Main Authors: Sylvie Y Doerflinger, Mirko Cortese, Inés Romero-Brey, Zach Menne, Thibault Tubiana, Christian Schenk, Peter A White, Ralf Bartenschlager, Stéphane Bressanelli, Grant S Hansman, Volker Lohmann
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-10-01
Series:PLoS Pathogens
Online Access:http://europepmc.org/articles/PMC5678787?pdf=render
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spelling doaj-0d46a035a2234bfda2e5807a097263ba2020-11-24T21:55:33ZengPublic Library of Science (PLoS)PLoS Pathogens1553-73661553-73742017-10-011310e100670510.1371/journal.ppat.1006705Membrane alterations induced by nonstructural proteins of human norovirus.Sylvie Y DoerflingerMirko CorteseInés Romero-BreyZach MenneThibault TubianaChristian SchenkPeter A WhiteRalf BartenschlagerStéphane BressanelliGrant S HansmanVolker LohmannHuman noroviruses (huNoV) are the most frequent cause of non-bacterial acute gastroenteritis worldwide, particularly genogroup II genotype 4 (GII.4) variants. The viral nonstructural (NS) proteins encoded by the ORF1 polyprotein induce vesical clusters harboring the viral replication sites. Little is known so far about the ultrastructure of these replication organelles or the contribution of individual NS proteins to their biogenesis. We compared the ultrastructural changes induced by expression of norovirus ORF1 polyproteins with those induced upon infection with murine norovirus (MNV). Characteristic membrane alterations induced by ORF1 expression resembled those found in MNV infected cells, consisting of vesicle accumulations likely built from the endoplasmic reticulum (ER) which included single membrane vesicles (SMVs), double membrane vesicles (DMVs) and multi membrane vesicles (MMVs). In-depth analysis using electron tomography suggested that MMVs originate through the enwrapping of SMVs with tubular structures similar to mechanisms reported for picornaviruses. Expression of GII.4 NS1-2, NS3 and NS4 fused to GFP revealed distinct membrane alterations when analyzed by correlative light and electron microscopy. Expression of NS1-2 induced proliferation of smooth ER membranes forming long tubular structures that were affected by mutations in the active center of the putative NS1-2 hydrolase domain. NS3 was associated with ER membranes around lipid droplets (LDs) and induced the formation of convoluted membranes, which were even more pronounced in case of NS4. Interestingly, NS4 was the only GII.4 protein capable of inducing SMV and DMV formation when expressed individually. Our work provides the first ultrastructural analysis of norovirus GII.4 induced vesicle clusters and suggests that their morphology and biogenesis is most similar to picornaviruses. We further identified NS4 as a key factor in the formation of membrane alterations of huNoV and provide models of the putative membrane topologies of NS1-2, NS3 and NS4 to guide future studies.http://europepmc.org/articles/PMC5678787?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Sylvie Y Doerflinger
Mirko Cortese
Inés Romero-Brey
Zach Menne
Thibault Tubiana
Christian Schenk
Peter A White
Ralf Bartenschlager
Stéphane Bressanelli
Grant S Hansman
Volker Lohmann
spellingShingle Sylvie Y Doerflinger
Mirko Cortese
Inés Romero-Brey
Zach Menne
Thibault Tubiana
Christian Schenk
Peter A White
Ralf Bartenschlager
Stéphane Bressanelli
Grant S Hansman
Volker Lohmann
Membrane alterations induced by nonstructural proteins of human norovirus.
PLoS Pathogens
author_facet Sylvie Y Doerflinger
Mirko Cortese
Inés Romero-Brey
Zach Menne
Thibault Tubiana
Christian Schenk
Peter A White
Ralf Bartenschlager
Stéphane Bressanelli
Grant S Hansman
Volker Lohmann
author_sort Sylvie Y Doerflinger
title Membrane alterations induced by nonstructural proteins of human norovirus.
title_short Membrane alterations induced by nonstructural proteins of human norovirus.
title_full Membrane alterations induced by nonstructural proteins of human norovirus.
title_fullStr Membrane alterations induced by nonstructural proteins of human norovirus.
title_full_unstemmed Membrane alterations induced by nonstructural proteins of human norovirus.
title_sort membrane alterations induced by nonstructural proteins of human norovirus.
publisher Public Library of Science (PLoS)
series PLoS Pathogens
issn 1553-7366
1553-7374
publishDate 2017-10-01
description Human noroviruses (huNoV) are the most frequent cause of non-bacterial acute gastroenteritis worldwide, particularly genogroup II genotype 4 (GII.4) variants. The viral nonstructural (NS) proteins encoded by the ORF1 polyprotein induce vesical clusters harboring the viral replication sites. Little is known so far about the ultrastructure of these replication organelles or the contribution of individual NS proteins to their biogenesis. We compared the ultrastructural changes induced by expression of norovirus ORF1 polyproteins with those induced upon infection with murine norovirus (MNV). Characteristic membrane alterations induced by ORF1 expression resembled those found in MNV infected cells, consisting of vesicle accumulations likely built from the endoplasmic reticulum (ER) which included single membrane vesicles (SMVs), double membrane vesicles (DMVs) and multi membrane vesicles (MMVs). In-depth analysis using electron tomography suggested that MMVs originate through the enwrapping of SMVs with tubular structures similar to mechanisms reported for picornaviruses. Expression of GII.4 NS1-2, NS3 and NS4 fused to GFP revealed distinct membrane alterations when analyzed by correlative light and electron microscopy. Expression of NS1-2 induced proliferation of smooth ER membranes forming long tubular structures that were affected by mutations in the active center of the putative NS1-2 hydrolase domain. NS3 was associated with ER membranes around lipid droplets (LDs) and induced the formation of convoluted membranes, which were even more pronounced in case of NS4. Interestingly, NS4 was the only GII.4 protein capable of inducing SMV and DMV formation when expressed individually. Our work provides the first ultrastructural analysis of norovirus GII.4 induced vesicle clusters and suggests that their morphology and biogenesis is most similar to picornaviruses. We further identified NS4 as a key factor in the formation of membrane alterations of huNoV and provide models of the putative membrane topologies of NS1-2, NS3 and NS4 to guide future studies.
url http://europepmc.org/articles/PMC5678787?pdf=render
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