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      Differential use of importin-α isoforms governs cell tropism and host adaptation of influenza virus

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          Abstract

          Influenza A viruses are a threat to humans due to their ability to cross species barriers, as illustrated by the 2009 H1N1v pandemic and sporadic H5N1 transmissions. Interspecies transmission requires adaptation of the viral polymerase to importin-α, a cellular protein that mediates transport into the nucleus where transcription and replication of the viral genome takes place. In this study, we analysed replication, host specificity and pathogenicity of avian and mammalian influenza viruses, in importin-α-silenced cells and importin-α-knockout mice, to understand the role of individual importin-α isoforms in adaptation. For efficient virus replication, the polymerase subunit PB2 and the nucleoprotein (NP) of avian viruses required importin-α3, whereas PB2 and NP of mammalian viruses showed importin-α7 specificity. H1N1v replication depended on both, importin-α3 and -α7, suggesting ongoing adaptation of this virus. Thus, differences in importin-α specificity are determinants of host range underlining the importance of the nuclear envelope in interspecies transmission.

          Abstract

          Interspecies transmission of influenza A viruses requires adaptation of the viral polymerase to the host importin-α. Here, the polymerase subunit PB2 and the nucleoprotein of avian viruses are found to require importin-α3, whereas mammalian viruses are shown to require importin-α7.

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          Most cited references28

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          Avian flu: influenza virus receptors in the human airway.

          Although more than 100 people have been infected by H5N1 influenza A viruses, human-to-human transmission is rare. What are the molecular barriers limiting human-to-human transmission? Here we demonstrate an anatomical difference in the distribution in the human airway of the different binding molecules preferred by the avian and human influenza viruses. The respective molecules are sialic acid linked to galactose by an alpha-2,3 linkage (SAalpha2,3Gal) and by an alpha-2,6 linkage (SAalpha2,6Gal). Our findings may provide a rational explanation for why H5N1 viruses at present rarely infect and spread between humans although they can replicate efficiently in the lungs.
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            Characterization of an avian influenza A (H5N1) virus isolated from a child with a fatal respiratory illness.

            An avian H5N1 influenza A virus (A/Hong Kong/156/97) was isolated from a tracheal aspirate obtained from a 3-year-old child in Hong Kong with a fatal illness consistent with influenza. Serologic analysis indicated the presence of an H5 hemagglutinin. All eight RNA segments were derived from an avian influenza A virus. The hemagglutinin contained multiple basic amino acids adjacent to the cleavage site, a feature characteristic of highly pathogenic avian influenza A viruses. The virus caused 87.5 to 100 percent mortality in experimentally inoculated White Plymouth Rock and White Leghorn chickens. These results may have implications for global influenza surveillance and planning for pandemic influenza.
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              Human and avian influenza viruses target different cell types in cultures of human airway epithelium.

              The recent human infections caused by H5N1, H9N2, and H7N7 avian influenza viruses highlighted the continuous threat of new pathogenic influenza viruses emerging from a natural reservoir in birds. It is generally believed that replication of avian influenza viruses in humans is restricted by a poor fit of these viruses to cellular receptors and extracellular inhibitors in the human respiratory tract. However, detailed mechanisms of this restriction remain obscure. Here, using cultures of differentiated human airway epithelial cells, we demonstrated that influenza viruses enter the airway epithelium through specific target cells and that there were striking differences in this respect between human and avian viruses. During the course of a single-cycle infection, human viruses preferentially infected nonciliated cells, whereas avian viruses as well as the egg-adapted human virus variant with an avian virus-like receptor specificity mainly infected ciliated cells. This pattern correlated with the predominant localization of receptors for human viruses (2-6-linked sialic acids) on nonciliated cells and of receptors for avian viruses (2-3-linked sialic acids) on ciliated cells. These findings suggest that although avian influenza viruses can infect human airway epithelium, their replication may be limited by a nonoptimal cellular tropism. Our data throw light on the mechanisms of generation of pandemic viruses from their avian progenitors and open avenues for cell level-oriented studies on the replication and pathogenicity of influenza virus in humans.
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                Author and article information

                Journal
                Nat Commun
                Nature Communications
                Nature Publishing Group
                2041-1723
                18 January 2011
                : 2
                : 156
                Affiliations
                [1 ]simpleHeinrich-Pette-Institute, Leibniz Institute for Experimental Virology , Hamburg, Germany.
                [2 ]simpleSir William Dunn School of Pathology, University of Oxford , simpleOxford , UK.
                [3 ]simpleInstitute of Virology, Philipps-University Marburg , simpleMarburg , Germany.
                [4 ]simpleInstitute of Pathology, University Hospital Tübingen, Tübingen , Germany.
                [5 ]simpleMax-Delbrück-Centre for Molecular Medicine , Berlin, Germany.
                [6 ]simpleInstitute for Hygiene and Environment , Hamburg, Germany.
                [7 ]simpleInstitute for Biology, University of Lübeck , Lübeck, Germany.
                Author notes
                Article
                ncomms1158
                10.1038/ncomms1158
                3105303
                21245837
                dbcfcc8a-cf44-4164-baa3-92bb0ef80998
                Copyright © 2011, Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved.

                This work is licensed under a Creative Commons Attribution-NonCommercial-No Derivative Works 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/3.0/

                History
                : 06 August 2010
                : 08 December 2010
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