Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/31140
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dc.contributor.authorZurnic Bönisch, Irena-
dc.contributor.authorDIRIX, Lieve-
dc.contributor.authorLEMMENS, Veerle-
dc.contributor.authorBorrenberghs, Doortje-
dc.contributor.authorDe Wit, Flore-
dc.contributor.authorVernaillen, Frank-
dc.contributor.authorRocha, Susana-
dc.contributor.authorChrist, Frauke-
dc.contributor.authorHENDRIX, Jelle-
dc.contributor.authorHofkens, Johan-
dc.contributor.authorDebyser, Zeger-
dc.date.accessioned2020-05-18T13:24:28Z-
dc.date.available2020-05-18T13:24:28Z-
dc.date.issued2020-
dc.date.submitted2020-04-24T21:46:53Z-
dc.identifier.citationJOURNAL OF VIROLOGY, 94 (7) (Art N° e01024-19)-
dc.identifier.urihttp://hdl.handle.net/1942/31140-
dc.description.abstractThe HIV-1 capsid protein performs multiple roles in virus replication both during assembly and particle release and during virus trafficking into the nucleus. In order to decipher the roles of capsid protein during early replication, a reliable method to follow its intracellular distribution is required. To complement existing approaches to track HIV-1 capsid during early infection, we developed an HIV-1 imaging strategy, relying on viruses incorporating enhanced green fluorescent protein (eGFP)-tagged capsid (CA-eGFP) protein and mCherry-tagged integrase (IN-mCherry). Wild-type infectivity and sensitivity to inhibition by PF74 point to the functionality of CA-eGFP-containing complexes. Low numbers of CA-eGFP molecules were located inside the viral core and imported into the nucleus without significant loss in intensity. Less than 5% of particles carrying both CA-eGFP and IN-mCherry retained both labelled proteins after nuclear entry, implying a major uncoating event at the nuclear envelope dissociating IN and CA. Still, 20% of all CA-eGFP-containing complexes were detected in the nucleus. Unlike for IN-mCherry complexes, addition of the integrase inhibitor raltegravir had no effect on CA-eGFP-containing complexes, suggesting that these may be not (yet) competent for integration. Our imaging strategy offers alternative visualization of viral capsid trafficking and helps clarify its potential role during integration.IMPORTANCE HIV-1 capsid protein (CA) builds a conical shell protecting viral genomic RNA inside the virus particles. Upon entry into host cells, this shell disassembles in a process of uncoating, which is coordinated with reverse transcription of viral RNA into DNA. After uncoating, a portion of CA remains associated with the viral DNA and mediates its nuclear import and, potentially, integration into host DNA. In this study, we tagged CA with eGFP to follow its trafficking in host cells and address potential CA roles in the nucleus. We found that while functional viruses import the tagged CA into the nucleus, this capsid protein is not part of integration-competent complexes. The roles of nuclear CA thus remain to be established.-
dc.description.sponsorshipACKNOWLEDGMENTS We thank Paulien Van de Velde, Jooke Van der Veken, and Barbara Van Remoortel for excellent technical assistance. The following reagents were obtained through the NIH AIDS Reagent Program, Division of AIDS, NIAID, NIH: pNL4-3.Luc.R-.E- plasmid (catalog number 3418) from Nathaniel Landau, mouse monoclonal anti-HIV-1 CA (p24) antibody (AG3.0; catalog number 4121) from Jonathan Allan, and raltegravir (catalog number 11680) from Merck and Company, Inc. Research at KU Leuven was financially supported by the FWO, the KU Leuven Research Council (OT; OT/13/098 and C1 C14/17/095), HIV-ERA EURECA (IWT-SBOEURECA, ZL345530), the KU Leuven IDO program (IDO/12/008), and the Belgian IAP Belvir (ZKC4893-P7/45-P). I. Zurnic Bönisch, L. Dirix, F. Christ, J. Hendrix, J. Hofkens, and Z. Debyser conceived the study. I. Zurnic Bönisch, L. Dirix, V. Lemmens, D. Borrenberghs, and F. De Wit performed the experiments. I. Zurnic Bönisch, L. Dirix, V. Lemmens, D. Borrenberghs, F. De Wit, S. Rocha, F. Vernaillen, and Z. Debyser analyzed data. I. Zurnic Bönisch and Z. Debyser wrote the manuscript. All authors read and approved the manuscript. We declare no conflict of interest-
dc.language.isoen-
dc.publisherAMER SOC MICROBIOLOGY-
dc.rights2020 American Society for Microbiology. All Rights Reserved-
dc.subject.otherCA-eGFP-
dc.subject.otherHIV-
dc.subject.othercapsid-
dc.subject.otherfluorescence imaging-
dc.subject.otherintegration-
dc.subject.othernuclear import-
dc.titleCapsid-Labelled HIV To Investigate the Role of Capsid during Nuclear Import and Integration-
dc.typeJournal Contribution-
dc.identifier.issue7-
dc.identifier.volume94-
local.bibliographicCitation.jcatA1-
local.publisher.place1752 N ST NW, WASHINGTON, DC 20036-2904 USA-
local.type.refereedRefereed-
local.type.specifiedArticle-
local.bibliographicCitation.artnre01024-19-
dc.source.typeArticle-
dc.identifier.doi10.1128/JVI.01024-19-
dc.identifier.pmid31941774-
dc.identifier.isiWOS:000520841800003-
dc.identifier.eissn1098-5514-
local.provider.typePubMed-
local.uhasselt.uhpubyes-
local.uhasselt.internationalno-
item.fullcitationZurnic Bönisch, Irena; DIRIX, Lieve; LEMMENS, Veerle; Borrenberghs, Doortje; De Wit, Flore; Vernaillen, Frank; Rocha, Susana; Christ, Frauke; HENDRIX, Jelle; Hofkens, Johan & Debyser, Zeger (2020) Capsid-Labelled HIV To Investigate the Role of Capsid during Nuclear Import and Integration. In: JOURNAL OF VIROLOGY, 94 (7) (Art N° e01024-19).-
item.validationecoom 2021-
item.accessRightsOpen Access-
item.fulltextWith Fulltext-
item.contributorZurnic Bönisch, Irena-
item.contributorDIRIX, Lieve-
item.contributorLEMMENS, Veerle-
item.contributorBorrenberghs, Doortje-
item.contributorDe Wit, Flore-
item.contributorVernaillen, Frank-
item.contributorRocha, Susana-
item.contributorChrist, Frauke-
item.contributorHENDRIX, Jelle-
item.contributorHofkens, Johan-
item.contributorDebyser, Zeger-
crisitem.journal.issn0022-538X-
crisitem.journal.eissn1098-5514-
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