Literature DB >> 25810542

Influenza virus-induced caspase-dependent enlargement of nuclear pores promotes nuclear export of viral ribonucleoprotein complexes.

Dirk Mühlbauer1, Julia Dzieciolowski1, Martin Hardt2, Andreas Hocke3, Kristina L Schierhorn4, Ahmed Mostafa5, Christin Müller1, Christian Wisskirchen1, Susanne Herold6, Thorsten Wolff4, John Ziebuhr1, Stephan Pleschka7.   

Abstract

UNLABELLED: Influenza A viruses (IAV) replicate their segmented RNA genome in the nucleus of infected cells and utilize caspase-dependent nucleocytoplasmic export mechanisms to transport newly formed ribonucleoprotein complexes (RNPs) to the site of infectious virion release at the plasma membrane. In this study, we obtained evidence that apoptotic caspase activation in IAV-infected cells is associated with the degradation of the nucleoporin Nup153, an integral subunit of the nuclear pore complex. Transmission electron microscopy studies revealed a distinct enlargement of nuclear pores in IAV-infected cells. Transient expression and subcellular accumulation studies of multimeric marker proteins in virus-infected cells provided additional evidence for increased nuclear pore diameters facilitating the translocation of large protein complexes across the nuclear membrane. Furthermore, caspase 3/7 inhibition data obtained in this study suggest that active, Crm1-dependent IAV RNP export mechanisms are increasingly complemented by passive, caspase-induced export mechanisms at later stages of infection. IMPORTANCE: In contrast to the process seen with most other RNA viruses, influenza virus genome replication occurs in the nucleus (rather than the cytoplasm) of infected cells. Therefore, completion of the viral replication cycle critically depends on intracellular transport mechanisms that ensure the translocation of viral ribonucleoprotein (RNP) complexes across the nuclear membrane. Here, we demonstrate that virus-induced cellular caspase activities cause a widening of nuclear pores, thereby facilitating nucleocytoplasmic translocation processes and, possibly, promoting nuclear export of newly synthesized RNPs. These passive transport mechanisms are suggested to complement Crm1-dependent RNP export mechanisms known to occur at early stages of the replication cycle and may contribute to highly efficient production of infectious virus progeny at late stages of the viral replication cycle. The report provides an intriguing example of how influenza virus exploits cellular structures and regulatory pathways, including intracellular transport mechanisms, to complete its replication cycle and maximize the production of infectious virus progeny.
Copyright © 2015, American Society for Microbiology. All Rights Reserved.

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Year:  2015        PMID: 25810542      PMCID: PMC4442457          DOI: 10.1128/JVI.03531-14

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  52 in total

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Authors:  Susanne Herold; Tannaz Shafiei Tabar; Hermann Janssen; Katrin Hoegner; Maciej Cabanski; Peter Lewe-Schlosser; Jens Albrecht; Frank Driever; Istvan Vadasz; Werner Seeger; Mirko Steinmueller; Juergen Lohmeyer
Journal:  Am J Respir Crit Care Med       Date:  2011-01-28       Impact factor: 21.405

2.  Architecture of ribonucleoprotein complexes in influenza A virus particles.

Authors:  Takeshi Noda; Hiroshi Sagara; Albert Yen; Ayato Takada; Hiroshi Kida; R Holland Cheng; Yoshihiro Kawaoka
Journal:  Nature       Date:  2006-01-26       Impact factor: 49.962

3.  Early alteration of nucleocytoplasmic traffic induced by some RNA viruses.

Authors:  G A Belov; A G Evstafieva; Y P Rubtsov; O V Mikitas; A B Vartapetian; V I Agol
Journal:  Virology       Date:  2000-09-30       Impact factor: 3.616

4.  Visualizing nuclear export of different classes of RNA by electron microscopy.

Authors:  N Panté; A Jarmolowski; E Izaurralde; U Sauder; W Baschong; I W Mattaj
Journal:  RNA       Date:  1997-05       Impact factor: 4.942

5.  The crystal structure of the Ran-Nup153ZnF2 complex: a general Ran docking site at the nuclear pore complex.

Authors:  Nils Schrader; Carolin Koerner; Katja Koessmeier; Jan-Amadé Bangert; Alfred Wittinghofer; Raphael Stoll; Ingrid R Vetter
Journal:  Structure       Date:  2008-07       Impact factor: 5.006

Review 6.  Following TRAIL's path in the immune system.

Authors:  Christina Falschlehner; Uta Schaefer; Henning Walczak
Journal:  Immunology       Date:  2009-06       Impact factor: 7.397

7.  The NS1 protein of influenza A virus interacts with heat shock protein Hsp90 in human alveolar basal epithelial cells: implication for virus-induced apoptosis.

Authors:  Chuanfu Zhang; Yutao Yang; Xiaowei Zhou; Zhixin Yang; Xuelin Liu; Zhiliang Cao; Hongbin Song; Yuxian He; Peitang Huang
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8.  Intranuclear filaments containing a nuclear pore complex protein.

Authors:  V C Cordes; S Reidenbach; A Köhler; N Stuurman; R van Driel; W W Franke
Journal:  J Cell Biol       Date:  1993-12       Impact factor: 10.539

9.  Three-dimensional analysis of a viral RNA replication complex reveals a virus-induced mini-organelle.

Authors:  Benjamin G Kopek; Guy Perkins; David J Miller; Mark H Ellisman; Paul Ahlquist
Journal:  PLoS Biol       Date:  2007-09       Impact factor: 8.029

10.  Yeast nuclear envelope proteins cross react with an antibody against mammalian pore complex proteins.

Authors:  J P Aris; G Blobel
Journal:  J Cell Biol       Date:  1989-06       Impact factor: 10.539

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  35 in total

1.  The Influenza A Virus Genotype Determines the Antiviral Function of NF-κB.

Authors:  Sharmistha Dam; Michael Kracht; Stephan Pleschka; M Lienhard Schmitz
Journal:  J Virol       Date:  2016-08-12       Impact factor: 5.103

Review 2.  Cytoplasm and Beyond: Dynamic Innate Immune Sensing of Influenza A Virus by RIG-I.

Authors:  GuanQun Liu; Yan Zhou
Journal:  J Virol       Date:  2019-04-03       Impact factor: 5.103

3.  Selective incorporation of vRNP into influenza A virions determined by its specific interaction with M1 protein.

Authors:  Chutikarn Chaimayo; Tsuyoshi Hayashi; Andrew Underwood; Erin Hodges; Toru Takimoto
Journal:  Virology       Date:  2017-02-17       Impact factor: 3.616

4.  Bik Mediates Caspase-Dependent Cleavage of Viral Proteins to Promote Influenza A Virus Infection.

Authors:  Yohannes A Mebratu; Jennifer Tipper; Hitendra S Chand; Stephanie Walton; Kevin S Harrod; Yohannes Tesfaigzi
Journal:  Am J Respir Cell Mol Biol       Date:  2016-05       Impact factor: 6.914

5.  Visualizing Influenza A Virus vRNA Replication.

Authors:  Ya-Fang Chiu; Yi-Wen Huang; Chi-Yuan Chen; Yu-Chia Chen; Yu-Nong Gong; Rei-Lin Kuo; Chung-Guei Huang; Shin-Ru Shih
Journal:  Front Microbiol       Date:  2022-06-06       Impact factor: 6.064

6.  Syndecan-1 Attenuates Lung Injury during Influenza Infection by Potentiating c-Met Signaling to Suppress Epithelial Apoptosis.

Authors:  Rena Brauer; Lingyin Ge; Saundra Y Schlesinger; Timothy P Birkland; Ying Huang; Tanyalak Parimon; Vivian Lee; Bonnie L McKinney; John K McGuire; William C Parks; Peter Chen
Journal:  Am J Respir Crit Care Med       Date:  2016-08-01       Impact factor: 21.405

Review 7.  The Feat of Packaging Eight Unique Genome Segments.

Authors:  Sebastian Giese; Hardin Bolte; Martin Schwemmle
Journal:  Viruses       Date:  2016-06-17       Impact factor: 5.048

Review 8.  Multiple Export Mechanisms for mRNAs.

Authors:  Mildred Delaleau; Katherine L B Borden
Journal:  Cells       Date:  2015-08-28       Impact factor: 6.600

Review 9.  Misdelivery at the Nuclear Pore Complex-Stopping a Virus Dead in Its Tracks.

Authors:  Justin W Flatt; Urs F Greber
Journal:  Cells       Date:  2015-07-28       Impact factor: 6.600

10.  Influenza A Virus Polymerase Recruits the RNA Helicase DDX19 to Promote the Nuclear Export of Viral mRNAs.

Authors:  Cédric Diot; Guillaume Fournier; Mélanie Dos Santos; Julie Magnus; Anastasia Komarova; Sylvie van der Werf; Sandie Munier; Nadia Naffakh
Journal:  Sci Rep       Date:  2016-09-22       Impact factor: 4.379

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