Cargando…
A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase
BACKGROUND: Influenza virus attaches to sialic acid residues on the surface of host cells via the hemagglutinin (HA), a glycoprotein expressed on the viral envelope, and enters into the cytoplasm by receptor-mediated endocytosis. The viral genome is released and transported in to the nucleus, where...
Autores principales: | , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2013
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3715512/ https://www.ncbi.nlm.nih.gov/pubmed/23874406 http://dx.doi.org/10.1371/journal.pone.0067011 |
_version_ | 1782277471731712000 |
---|---|
author | Ueda, Ryuta Sugiura, Tadao Kume, Shinichiro Ichikawa, Akihiko Larsen, Steven Miyoshi, Hideaki Hiramatsu, Hiroaki Nagatsuka, Yasuko Arai, Fumihito Suzuki, Yasuo Hirabayashi, Yoshio Fukuda, Toshio Honda, Ayae |
author_facet | Ueda, Ryuta Sugiura, Tadao Kume, Shinichiro Ichikawa, Akihiko Larsen, Steven Miyoshi, Hideaki Hiramatsu, Hiroaki Nagatsuka, Yasuko Arai, Fumihito Suzuki, Yasuo Hirabayashi, Yoshio Fukuda, Toshio Honda, Ayae |
author_sort | Ueda, Ryuta |
collection | PubMed |
description | BACKGROUND: Influenza virus attaches to sialic acid residues on the surface of host cells via the hemagglutinin (HA), a glycoprotein expressed on the viral envelope, and enters into the cytoplasm by receptor-mediated endocytosis. The viral genome is released and transported in to the nucleus, where transcription and replication take place. However, cellular factors affecting the influenza virus infection such as the cell cycle remain uncharacterized. METHODS/RESULTS: To resolve the influence of cell cycle on influenza virus infection, we performed a single-virus infection analysis using optical tweezers. Using this newly developed single-virus infection system, the fluorescence-labeled influenza virus was trapped on a microchip using a laser (1064 nm) at 0.6 W, transported, and released onto individual H292 human lung epithelial cells. Interestingly, the influenza virus attached selectively to cells in the G1-phase. To clarify the molecular differences between cells in G1- and S/G2/M-phase, we performed several physical and chemical assays. Results indicated that: 1) the membranes of cells in G1-phase contained greater amounts of sialic acids (glycoproteins) than the membranes of cells in S/G2/M-phase; 2) the membrane stiffness of cells in S/G2/M-phase is more rigid than those in G1-phase by measurement using optical tweezers; and 3) S/G2/M-phase cells contained higher content of Gb3, Gb4 and GlcCer than G1-phase cells by an assay for lipid composition. CONCLUSIONS: A novel single-virus infection system was developed to characterize the difference in influenza virus susceptibility between G1- and S/G2/M-phase cells. Differences in virus binding specificity were associated with alterations in the lipid composition, sialic acid content, and membrane stiffness. This single-virus infection system will be useful for studying the infection mechanisms of other viruses. |
format | Online Article Text |
id | pubmed-3715512 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2013 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-37155122013-07-19 A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase Ueda, Ryuta Sugiura, Tadao Kume, Shinichiro Ichikawa, Akihiko Larsen, Steven Miyoshi, Hideaki Hiramatsu, Hiroaki Nagatsuka, Yasuko Arai, Fumihito Suzuki, Yasuo Hirabayashi, Yoshio Fukuda, Toshio Honda, Ayae PLoS One Research Article BACKGROUND: Influenza virus attaches to sialic acid residues on the surface of host cells via the hemagglutinin (HA), a glycoprotein expressed on the viral envelope, and enters into the cytoplasm by receptor-mediated endocytosis. The viral genome is released and transported in to the nucleus, where transcription and replication take place. However, cellular factors affecting the influenza virus infection such as the cell cycle remain uncharacterized. METHODS/RESULTS: To resolve the influence of cell cycle on influenza virus infection, we performed a single-virus infection analysis using optical tweezers. Using this newly developed single-virus infection system, the fluorescence-labeled influenza virus was trapped on a microchip using a laser (1064 nm) at 0.6 W, transported, and released onto individual H292 human lung epithelial cells. Interestingly, the influenza virus attached selectively to cells in the G1-phase. To clarify the molecular differences between cells in G1- and S/G2/M-phase, we performed several physical and chemical assays. Results indicated that: 1) the membranes of cells in G1-phase contained greater amounts of sialic acids (glycoproteins) than the membranes of cells in S/G2/M-phase; 2) the membrane stiffness of cells in S/G2/M-phase is more rigid than those in G1-phase by measurement using optical tweezers; and 3) S/G2/M-phase cells contained higher content of Gb3, Gb4 and GlcCer than G1-phase cells by an assay for lipid composition. CONCLUSIONS: A novel single-virus infection system was developed to characterize the difference in influenza virus susceptibility between G1- and S/G2/M-phase cells. Differences in virus binding specificity were associated with alterations in the lipid composition, sialic acid content, and membrane stiffness. This single-virus infection system will be useful for studying the infection mechanisms of other viruses. Public Library of Science 2013-07-18 /pmc/articles/PMC3715512/ /pubmed/23874406 http://dx.doi.org/10.1371/journal.pone.0067011 Text en © 2013 Ueda et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Ueda, Ryuta Sugiura, Tadao Kume, Shinichiro Ichikawa, Akihiko Larsen, Steven Miyoshi, Hideaki Hiramatsu, Hiroaki Nagatsuka, Yasuko Arai, Fumihito Suzuki, Yasuo Hirabayashi, Yoshio Fukuda, Toshio Honda, Ayae A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase |
title | A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase |
title_full | A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase |
title_fullStr | A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase |
title_full_unstemmed | A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase |
title_short | A Novel Single Virus Infection System Reveals That Influenza Virus Preferentially Infects Cells in G1 Phase |
title_sort | novel single virus infection system reveals that influenza virus preferentially infects cells in g1 phase |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3715512/ https://www.ncbi.nlm.nih.gov/pubmed/23874406 http://dx.doi.org/10.1371/journal.pone.0067011 |
work_keys_str_mv | AT uedaryuta anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT sugiuratadao anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT kumeshinichiro anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT ichikawaakihiko anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT larsensteven anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT miyoshihideaki anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT hiramatsuhiroaki anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT nagatsukayasuko anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT araifumihito anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT suzukiyasuo anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT hirabayashiyoshio anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT fukudatoshio anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT hondaayae anovelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT uedaryuta novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT sugiuratadao novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT kumeshinichiro novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT ichikawaakihiko novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT larsensteven novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT miyoshihideaki novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT hiramatsuhiroaki novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT nagatsukayasuko novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT araifumihito novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT suzukiyasuo novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT hirabayashiyoshio novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT fukudatoshio novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase AT hondaayae novelsinglevirusinfectionsystemrevealsthatinfluenzaviruspreferentiallyinfectscellsing1phase |