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PMID: 22238307 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Filoviruses require endosomal cysteine proteases for entry but exhibit distinct protease preferences.

Journal of virology ·Vol. 86 ·No. 6 ·2012-03-00 ·Pages 3284-92

Misasi J, Chandran K, Yang JY, Considine B, Filone CM, Côté M, Sullivan N, Fabozzi G, Hensley L, Cunningham J

Abstract

Filoviruses are enveloped viruses that cause sporadic outbreaks of severe hemorrhagic fever [CDC, MMWR Morb. Mortal. Wkly. Rep. 50:73-77, 2001; Colebunders and Borchert, J. Infect. 40:16-20, 2000; Colebunders et al., J. Infect. Dis. 196(Suppl. 2):S148-S153, 2007; Geisbert and Jahrling, Nat. Med. 10:S110-S121, 2004]. Previous studies revealed that endosomal cysteine proteases are host factors for ebolavirus Zaire (Chandran et al., Science 308:1643-1645, 2005; Schornberg et al., J. Virol. 80:4174-4178, 2006). In this report, we show that infection mediated by glycoproteins from other phylogenetically diverse filoviruses are also dependent on these proteases and provide additional evidence indicating that they cleave GP1 and expose the binding domain for the critical host factor Niemann-Pick C1. Using selective inhibitors and knockout-derived cell lines, we show that the ebolaviruses Zaire and Cote d'Ivoire are strongly dependent on cathepsin B, while the ebolaviruses Sudan and Reston and Marburg virus are not. Taking advantage of previous studies of cathepsin B inhibitor-resistant viruses (Wong et al., J. Virol. 84:163-175, 2010), we found that virus-specific differences in the requirement for cathepsin B are correlated with sequence polymorphisms at residues 47 in GP1 and 584 in GP2. We applied these findings to the analysis of additional ebolavirus isolates and correctly predicted that the newly identified ebolavirus species Bundibugyo, containing D47 and I584, is cathepsin B dependent and that ebolavirus Zaire-1995, the single known isolate of ebolavirus Zaire that lacks D47, is not. We also obtained evidence for virus-specific differences in the role of cathepsin L, including cooperation with cathepsin B. These studies strongly suggest that the use of endosomal cysteine proteases as host factors for entry is a general property of members of the family Filoviridae.

MeSH Terms
Animals Cell Line Cysteine Proteases/genetics,metabolism Ebolavirus/genetics,physiology Endosomes/enzymology,genetics Hemorrhagic Fever, Ebola/enzymology,genetics,virology Humans Marburg Virus Disease/enzymology,genetics,virology Marburgvirus/genetics,physiology Species Specificity Virus Internalization
Chemicals
Cysteine Proteases
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Misasi John
Division of Hematology, Department of Medicine, Brigham & Women’s Hospital, Boston, Massachusetts, USA.
Chandran Kartik
Yang Jin-Yi
Considine Bryden
Filone Claire Marie
Côté Marceline
Sullivan Nancy
Fabozzi Giulia
Hensley Lisa
Cunningham James
References (46)
46 references, click to expand
  1. Biochemical and structural characterization of cathepsin L-processed Ebola virus glycoprotein: implications for viral entry and immunogenicity.
    J Virol. 2010 Mar;84(6):2972-82 PMID: 20053739
  2. The signal peptide of the ebolavirus glycoprotein influences interaction with the cellular lectins DC-SIGN and DC-SIGNR.
    J Virol. 2006 Jul;80(13):6305-17 PMID: 16775318
  3. Differential N-linked glycosylation of human immunodeficiency virus and Ebola virus envelope glycoproteins modulates interactions with DC-SIGN and DC-SIGNR.
    J Virol. 2003 Jan;77(2):1337-46 PMID: 12502850
  4. Structure and receptor specificity of the hemagglutinin from an H5N1 influenza virus.
    Science. 2006 Apr 21;312(5772):404-10 PMID: 16543414
  5. Crystal structure of MHC class II-associated p41 Ii fragment bound to cathepsin L reveals the structural basis for differentiation between cathepsins L and S.
    EMBO J. 1999 Feb 15;18(4):793-803 PMID: 10022822
  6. The Tyro3 receptor kinase Axl enhances macropinocytosis of Zaire ebolavirus.
    J Virol. 2011 Jan;85(1):334-47 PMID: 21047970
  7. Role of endosomal cathepsins in entry mediated by the Ebola virus glycoprotein.
    J Virol. 2006 Apr;80(8):4174-8 PMID: 16571833
  8. Viral membrane fusion.
    Nat Struct Mol Biol. 2008 Jul;15(7):690-8 PMID: 18596815
  9. Crystal structures of human procathepsin B at 3.2 and 3.3 Angstroms resolution reveal an interaction motif between a papain-like cysteine protease and its propeptide.
    FEBS Lett. 1996 Apr 22;384(3):211-4 PMID: 8617355
  10. Alpha5beta1-integrin controls ebolavirus entry by regulating endosomal cathepsins.
    Proc Natl Acad Sci U S A. 2009 May 12;106(19):8003-8 PMID: 19416892
  11. Cellular entry of ebola virus involves uptake by a macropinocytosis-like mechanism and subsequent trafficking through early and late endosomes.
    PLoS Pathog. 2010 Sep 16;6(9):e1001110 PMID: 20862315
  12. Naïve and memory cell turnover as drivers of CCR5-to-CXCR4 tropism switch in human immunodeficiency virus type 1: implications for therapy.
    J Virol. 2006 Jan;80(2):802-9 PMID: 16378982
  13. Ebolavirus proteins suppress the effects of small interfering RNA by direct interaction with the mammalian RNA interference pathway.
    J Virol. 2011 Mar;85(6):2512-23 PMID: 21228243
  14. Function of the Niemann-Pick type C proteins and their bypass by cyclodextrin.
    Curr Opin Lipidol. 2011 Jun;22(3):204-9 PMID: 21412152
  15. Ebola virus entry requires the cholesterol transporter Niemann-Pick C1.
    Nature. 2011 Aug 24;477(7364):340-3 PMID: 21866103
  16. T-cell immunoglobulin and mucin domain 1 (TIM-1) is a receptor for Zaire Ebolavirus and Lake Victoria Marburgvirus.
    Proc Natl Acad Sci U S A. 2011 May 17;108(20):8426-31 PMID: 21536871
  17. The crystal structure of human cathepsin L complexed with E-64.
    FEBS Lett. 1997 Apr 21;407(1):47-50 PMID: 9141479
  18. The primed ebolavirus glycoprotein (19-kilodalton GP1,2): sequence and residues critical for host cell binding.
    J Virol. 2009 Apr;83(7):2883-91 PMID: 19144707
  19. Lysosomal cysteine proteases: facts and opportunities.
    EMBO J. 2001 Sep 3;20(17):4629-33 PMID: 11532926
  20. Newly discovered ebola virus associated with hemorrhagic fever outbreak in Uganda.
    PLoS Pathog. 2008 Nov;4(11):e1000212 PMID: 19023410
  21. Ebolavirus is internalized into host cells via macropinocytosis in a viral glycoprotein-dependent manner.
    PLoS Pathog. 2010 Sep 23;6(9):e1001121 PMID: 20886108
  22. Small molecule inhibitors reveal Niemann-Pick C1 is essential for Ebola virus infection.
    Nature. 2011 Aug 24;477(7364):344-8 PMID: 21866101
  23. Exotic emerging viral diseases: progress and challenges.
    Nat Med. 2004 Dec;10(12 Suppl):S110-21 PMID: 15577929
  24. Ebola virus glycoprotein 1: identification of residues important for binding and postbinding events.
    J Virol. 2007 Jul;81(14):7702-9 PMID: 17475648
  25. Conserved receptor-binding domains of Lake Victoria marburgvirus and Zaire ebolavirus bind a common receptor.
    J Biol Chem. 2006 Jun 9;281(23):15951-8 PMID: 16595665
  26. The Ebola virus glycoprotein mediates entry via a non-classical dynamin-dependent macropinocytic pathway.
    Virology. 2011 Oct 25;419(2):72-83 PMID: 21907381
  27. A forward genetic strategy reveals destabilizing mutations in the Ebolavirus glycoprotein that alter its protease dependence during cell entry.
    J Virol. 2010 Jan;84(1):163-75 PMID: 19846533
  28. Identification of the residues in human CD4 critical for the binding of HIV.
    Cell. 1989 May 5;57(3):469-81 PMID: 2541915
  29. Endosomal proteolysis of the Ebola virus glycoprotein is necessary for infection.
    Science. 2005 Jun 10;308(5728):1643-5 PMID: 15831716
  30. Outbreak of Ebola hemorrhagic fever Uganda, August 2000-January 2001.
    MMWR Morb Mortal Wkly Rep. 2001 Feb 9;50(5):73-7 PMID: 11686289
  31. Cathepsin cleavage potentiates the Ebola virus glycoprotein to undergo a subsequent fusion-relevant conformational change.
    J Virol. 2012 Jan;86(1):364-72 PMID: 22031933
  32. Structure of the Ebola virus glycoprotein bound to an antibody from a human survivor.
    Nature. 2008 Jul 10;454(7201):177-82 PMID: 18615077
  33. Structure of SARS coronavirus spike receptor-binding domain complexed with receptor.
    Science. 2005 Sep 16;309(5742):1864-8 PMID: 16166518
  34. Proposal for a revised taxonomy of the family Filoviridae: classification, names of taxa and viruses, and virus abbreviations.
    Arch Virol. 2010 Dec;155(12):2083-103 PMID: 21046175
  35. A shared structural solution for neutralizing ebolaviruses.
    Nat Struct Mol Biol. 2011 Nov 20;18(12):1424-7 PMID: 22101933
  36. DC-SIGN and DC-SIGNR bind ebola glycoproteins and enhance infection of macrophages and endothelial cells.
    Virology. 2003 Jan 5;305(1):115-23 PMID: 12504546
  37. Proteolysis of the Ebola virus glycoproteins enhances virus binding and infectivity.
    J Virol. 2007 Dec;81(24):13378-84 PMID: 17928356
  38. Rapid detection protocol for filoviruses.
    J Clin Virol. 2004 May;30(1):94-9 PMID: 15072761
  39. Lysosomal cysteine proteases (cathepsins): promising drug targets.
    Acta Crystallogr D Biol Crystallogr. 2003 Feb;59(Pt 2):203-13 PMID: 12554931
  40. Cell adhesion-dependent membrane trafficking of a binding partner for the ebolavirus glycoprotein is a determinant of viral entry.
    Proc Natl Acad Sci U S A. 2010 Sep 21;107(38):16637-42 PMID: 20817853
  41. Comprehensive analysis of ebola virus GP1 in viral entry.
    J Virol. 2005 Apr;79(8):4793-805 PMID: 15795265
  42. Lysosomal cysteine proteases: more than scavengers.
    Biochim Biophys Acta. 2000 Mar 7;1477(1-2):98-111 PMID: 10708852
  43. Cysteine Proteases and Their Inhibitors.
    Chem Rev. 1997 Feb 5;97(1):133-172 PMID: 11848867
  44. Ebola haemorrhagic fever--a review.
    J Infect. 2000 Jan;40(1):16-20 PMID: 10762106
  45. C-type lectins DC-SIGN and L-SIGN mediate cellular entry by Ebola virus in cis and in trans.
    J Virol. 2002 Jul;76(13):6841-4 PMID: 12050398
  46. Marburg hemorrhagic fever in Durba and Watsa, Democratic Republic of the Congo: clinical documentation, features of illness, and treatment.
    J Infect Dis. 2007 Nov 15;196 Suppl 2:S148-53 PMID: 17940943
Article Info
Journal
Journal of virology
Abbr.
J Virol
ISSN
1098-5514
Published
2012-03-00
Epub
2012-00-11
Pages
3284-92
Language
English
Region
United States
NLM ID
0113724
PMCID
PMC3302294
Subset
IM
Grants
NICHD NIH HHS · K12 HD052896 · United States
NIAID NIH HHS · U54 AI057159 · United States
NICHD NIH HHS · K12-HD052896 · United States
NIAID NIH HHS · R01 AI088027 · United States
NIAID NIH HHS · K08 AI079381 · United States
NCI NIH HHS · R01 CA104266 · United States
NIAID NIH HHS · 5K08AI079381 · United States
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