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PMID: 15479853 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

DC-SIGN and DC-SIGNR interact with the glycoprotein of Marburg virus and the S protein of severe acute respiratory syndrome coronavirus.

Journal of virology ·Vol. 78 ·No. 21 ·2004-11-00 ·Pages 12090-5

Marzi A, Gramberg T, Simmons G, Möller P, Rennekamp AJ, Krumbiegel M, Geier M, Eisemann J, Turza N, Saunier B, Steinkasserer A, Becker S, Bates P, Hofmann H, Pöhlmann S

Abstract

The lectins DC-SIGN and DC-SIGNR can augment viral infection; however, the range of pathogens interacting with these attachment factors is incompletely defined. Here we show that DC-SIGN and DC-SIGNR enhance infection mediated by the glycoprotein (GP) of Marburg virus (MARV) and the S protein of severe acute respiratory syndrome coronavirus and might promote viral dissemination. SIGNR1, a murine DC-SIGN homologue, also enhanced infection driven by MARV and Ebola virus GP and could be targeted to assess the role of attachment factors in filovirus infection in vivo.

MeSH Terms
Cell Adhesion Molecules/physiology Glycoproteins/physiology Lectins, C-Type/physiology Marburgvirus/physiology Membrane Glycoproteins/physiology Receptors, Cell Surface/physiology SARS Virus/physiology Spike Glycoprotein, Coronavirus Viral Envelope Proteins/physiology
Chemicals
CLEC4M protein, human Cell Adhesion Molecules DC-specific ICAM-3 grabbing nonintegrin Glycoproteins Lectins, C-Type Membrane Glycoproteins Receptors, Cell Surface Spike Glycoprotein, Coronavirus Viral Envelope Proteins spike glycoprotein, SARS-CoV spike protein, mouse hepatitis virus
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Marzi Andrea
Institute for Clinical and Molecular Virology, University Erlangen-Nürnberg, Nikolaus-Fiebiger-Center, Glückstrasse 6, D-91054 Erlangen, Germany.
Gramberg Thomas
Simmons Graham
Möller Peggy
Rennekamp Andrew J
Krumbiegel Mandy
Geier Martina
Eisemann Jutta
Turza Nadine
Saunier Bertrand
Steinkasserer Alexander
Becker Stephan
Bates Paul
Hofmann Heike
Pöhlmann Stefan
References (66)
66 references, click to expand
  1. DC-SIGN (CD209) mediates dengue virus infection of human dendritic cells.
    J Exp Med. 2003 Apr 7;197(7):823-9 PMID: 12682107
  2. L-SIGN (CD 209L) is a liver-specific capture receptor for hepatitis C virus.
    Proc Natl Acad Sci U S A. 2003 Apr 15;100(8):4498-503 PMID: 12676990
  3. Coronavirus as a possible cause of severe acute respiratory syndrome.
    Lancet. 2003 Apr 19;361(9366):1319-25 PMID: 12711465
  4. Recruitment of HIV and its receptors to dendritic cell-T cell junctions.
    Science. 2003 May 23;300(5623):1295-7 PMID: 12730499
  5. DC-SIGN and L-SIGN are high affinity binding receptors for hepatitis C virus glycoprotein E2.
    J Biol Chem. 2003 May 30;278(22):20358-66 PMID: 12609975
  6. Dendritic-cell-specific ICAM3-grabbing non-integrin is essential for the productive infection of human dendritic cells by mosquito-cell-derived dengue viruses.
    EMBO Rep. 2003 Jul;4(7):723-8 PMID: 12783086
  7. Lung pathology of fatal severe acute respiratory syndrome.
    Lancet. 2003 May 24;361(9371):1773-8 PMID: 12781536
  8. The clinical pathology of severe acute respiratory syndrome (SARS): a report from China.
    J Pathol. 2003 Jul;200(3):282-9 PMID: 12845623
  9. Pathological study on severe acute respiratory syndrome.
    Chin Med J (Engl). 2003 Jul;116(7):976-80 PMID: 12890365
  10. [Changes of liver function in patients with serious acute respiratory syndrome].
    Zhonghua Gan Zang Bing Za Zhi. 2003 Jul;11(7):418-20 PMID: 12890346
  11. Newly discovered coronavirus as the primary cause of severe acute respiratory syndrome.
    Lancet. 2003 Jul 26;362(9380):263-70 PMID: 12892955
  12. [Clinical characteristics and mechanism of liver injury in patients with severe acute respiratory syndrome].
    Zhonghua Gan Zang Bing Za Zhi. 2003 Aug;11(8):493-6 PMID: 12939186
  13. DC-SIGN: escape mechanism for pathogens.
    Nat Rev Immunol. 2003 Sep;3(9):697-709 PMID: 12949494
  14. DC-SIGN and L-SIGN can act as attachment receptors for alphaviruses and distinguish between mosquito cell- and mammalian cell-derived viruses.
    J Virol. 2003 Nov;77(22):12022-32 PMID: 14581539
  15. HIV-1 transmission and cytokine-induced expression of DC-SIGN in human monocyte-derived macrophages.
    J Leukoc Biol. 2003 Nov;74(5):757-63 PMID: 12960240
  16. [Detection of severe acute respiratory syndrome (SARS)-associated coronavirus RNA in autopsy tissues with in situ hybridization].
    Di Yi Jun Yi Da Xue Xue Bao. 2003 Nov;23(11):1125-7 PMID: 14625166
  17. Pathogenesis of Ebola hemorrhagic fever in cynomolgus macaques: evidence that dendritic cells are early and sustained targets of infection.
    Am J Pathol. 2003 Dec;163(6):2347-70 PMID: 14633608
  18. [Dynamic changes and the meanings of blood cytokines in severe acute respiratory syndrome].
    Zhonghua Jie He He Hu Xi Za Zhi. 2003 Oct;26(10):586-9 PMID: 14633438
  19. Ebola and Marburg viruses replicate in monocyte-derived dendritic cells without inducing the production of cytokines and full maturation.
    J Infect Dis. 2003 Dec 1;188(11):1630-8 PMID: 14639532
  20. Angiotensin-converting enzyme 2 is a functional receptor for the SARS coronavirus.
    Nature. 2003 Nov 27;426(6965):450-4 PMID: 14647384
  21. SARS-associated viral hepatitis caused by a novel coronavirus: report of three cases.
    Hepatology. 2004 Feb;39(2):302-10 PMID: 14767982
  22. Raji B cells, misidentified as THP-1 cells, stimulate DC-SIGN-mediated HIV transmission.
    Virology. 2004 Jan 5;318(1):17-23 PMID: 14972530
  23. Human macrophage C-type lectin specific for galactose and N-acetylgalactosamine promotes filovirus entry.
    J Virol. 2004 Mar;78(6):2943-7 PMID: 14990712
  24. Characterization of severe acute respiratory syndrome-associated coronavirus (SARS-CoV) spike glycoprotein-mediated viral entry.
    Proc Natl Acad Sci U S A. 2004 Mar 23;101(12):4240-5 PMID: 15010527
  25. Organ distribution of severe acute respiratory syndrome (SARS) associated coronavirus (SARS-CoV) in SARS patients: implications for pathogenesis and virus transmission pathways.
    J Pathol. 2004 Jun;203(2):622-30 PMID: 15141376
  26. pH-dependent entry of severe acute respiratory syndrome coronavirus is mediated by the spike glycoprotein and enhanced by dendritic cell transfer through DC-SIGN.
    J Virol. 2004 Jun;78(11):5642-50 PMID: 15140961
  27. Functional comparison of the mouse DC-SIGN, SIGNR1, SIGNR3 and Langerin, C-type lectins.
    Int Immunol. 2004 Jun;16(6):819-29 PMID: 15096474
  28. S protein of severe acute respiratory syndrome-associated coronavirus mediates entry into hepatoma cell lines and is targeted by neutralizing antibodies in infected patients.
    J Virol. 2004 Jun;78(12):6134-42 PMID: 15163706
  29. C-type lectins L-SIGN and DC-SIGN capture and transmit infectious hepatitis C virus pseudotype particles.
    J Biol Chem. 2004 Jul 30;279(31):32035-45 PMID: 15166245
  30. Sequence and expression of a membrane-associated C-type lectin that exhibits CD4-independent binding of human immunodeficiency virus envelope glycoprotein gp120.
    Proc Natl Acad Sci U S A. 1992 Sep 1;89(17):8356-60 PMID: 1518869
  31. The asialoglycoprotein receptor is a potential liver-specific receptor for Marburg virus.
    J Gen Virol. 1995 Feb;76 ( Pt 2):393-9 PMID: 7844558
  32. The asialoglycoprotein receptor: relationships between structure, function, and expression.
    Physiol Rev. 1995 Jul;75(3):591-609 PMID: 7624395
  33. Receptor-mediated entry of hepatitis B virus particles into liver cells.
    Arch Virol. 1997;142(3):493-8 PMID: 9349295
  34. Animal pathology of filoviral infections.
    Curr Top Microbiol Immunol. 1999;235:145-73 PMID: 9893383
  35. Molecular pathogenesis of filovirus infections: role of macrophages and endothelial cells.
    Curr Top Microbiol Immunol. 1999;235:175-204 PMID: 9893384
  36. An analysis of features of pathogenesis in two animal models of Ebola virus infection.
    J Infect Dis. 1999 Feb;179 Suppl 1:S199-202 PMID: 9988185
  37. The monoclonal antibody DCGM4 recognizes Langerin, a protein specific of Langerhans cells, and is rapidly internalized from the cell surface.
    Eur J Immunol. 1999 Sep;29(9):2695-704 PMID: 10508244
  38. Langerin, a novel C-type lectin specific to Langerhans cells, is an endocytic receptor that induces the formation of Birbeck granules.
    Immunity. 2000 Jan;12(1):71-81 PMID: 10661407
  39. DC-SIGN, a dendritic cell-specific HIV-1-binding protein that enhances trans-infection of T cells.
    Cell. 2000 Mar 3;100(5):587-97 PMID: 10721995
  40. Efficient presentation of exogenous antigen by liver endothelial cells to CD8+ T cells results in antigen-specific T-cell tolerance.
    Nat Med. 2000 Dec;6(12):1348-54 PMID: 11100119
  41. DC-SIGNR, a DC-SIGN homologue expressed in endothelial cells, binds to human and simian immunodeficiency viruses and activates infection in trans.
    Proc Natl Acad Sci U S A. 2001 Feb 27;98(5):2670-5 PMID: 11226297
  42. A dendritic cell-specific intercellular adhesion molecule 3-grabbing nonintegrin (DC-SIGN)-related protein is highly expressed on human liver sinusoidal endothelial cells and promotes HIV-1 infection.
    J Exp Med. 2001 Mar 19;193(6):671-8 PMID: 11257134
  43. DC-SIGN interactions with human immunodeficiency virus type 1 and 2 and simian immunodeficiency virus.
    J Virol. 2001 May;75(10):4664-72 PMID: 11312337
  44. Five mouse homologues of the human dendritic cell C-type lectin, DC-SIGN.
    Int Immunol. 2001 Oct;13(10):1283-90 PMID: 11581173
  45. Functional and antigenic characterization of human, rhesus macaque, pigtailed macaque, and murine DC-SIGN.
    J Virol. 2001 Nov;75(21):10281-9 PMID: 11581396
  46. Liver sinusoidal endothelial cells: a new type of organ-resident antigen-presenting cell.
    Arch Immunol Ther Exp (Warsz). 2001;49 Suppl 1:S7-11 PMID: 11603871
  47. Molecular cloning of a C-type lectin superfamily protein differentially expressed by CD8alpha(-) splenic dendritic cells.
    Mol Immunol. 2001 Sep;38(5):365-73 PMID: 11684292
  48. Structural basis for selective recognition of oligosaccharides by DC-SIGN and DC-SIGNR.
    Science. 2001 Dec 7;294(5549):2163-6 PMID: 11739956
  49. Placental expression of DC-SIGN may mediate intrauterine vertical transmission of HIV.
    J Pathol. 2001 Dec;195(5):586-92 PMID: 11745695
  50. Targeting hepatocytes for drug and gene delivery: emerging novel approaches and applications.
    Front Biosci. 2002 Mar 1;7:d717-25 PMID: 11861224
  51. Constitutive and induced expression of DC-SIGN on dendritic cell and macrophage subpopulations in situ and in vitro.
    J Leukoc Biol. 2002 Mar;71(3):445-57 PMID: 11867682
  52. DC-SIGN (CD209) expression is IL-4 dependent and is negatively regulated by IFN, TGF-beta, and anti-inflammatory agents.
    J Immunol. 2002 Mar 15;168(6):2634-43 PMID: 11884427
  53. Functional evaluation of DC-SIGN monoclonal antibodies reveals DC-SIGN interactions with ICAM-3 do not promote human immunodeficiency virus type 1 transmission.
    J Virol. 2002 Jun;76(12):5905-14 PMID: 12021323
  54. 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
  55. Quantitative expression and virus transmission analysis of DC-SIGN on monocyte-derived dendritic cells.
    J Virol. 2002 Sep;76(18):9135-42 PMID: 12186897
  56. Marginal zone macrophages express a murine homologue of DC-SIGN that captures blood-borne antigens in vivo.
    Blood. 2002 Oct 15;100(8):2908-16 PMID: 12351402
  57. Diversity of receptors binding HIV on dendritic cell subsets.
    Nat Immunol. 2002 Oct;3(10):975-83 PMID: 12352970
  58. Human cytomegalovirus binding to DC-SIGN is required for dendritic cell infection and target cell trans-infection.
    Immunity. 2002 Nov;17(5):653-64 PMID: 12433371
  59. Human immunodeficiency virus envelope (gp120) binding to DC-SIGN and primary dendritic cells is carbohydrate dependent but does not involve 2G12 or cyanovirin binding sites: implications for structural analyses of gp120-DC-SIGN binding.
    J Virol. 2002 Dec;76(24):12855-65 PMID: 12438611
  60. Role of the asialoglycoprotein receptor in binding and entry of hepatitis C virus structural proteins in cultured human hepatocytes.
    J Virol. 2003 Jan;77(1):546-59 PMID: 12477859
  61. 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
  62. 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
  63. Cutting edge: carbohydrate profiling identifies new pathogens that interact with dendritic cell-specific ICAM-3-grabbing nonintegrin on dendritic cells.
    J Immunol. 2003 Feb 15;170(4):1635-9 PMID: 12574325
  64. SIGN-R1, a novel C-type lectin expressed by marginal zone macrophages in spleen, mediates uptake of the polysaccharide dextran.
    Int Immunol. 2003 Feb;15(2):177-86 PMID: 12578847
  65. Hepatitis C virus glycoproteins interact with DC-SIGN and DC-SIGNR.
    J Virol. 2003 Apr;77(7):4070-80 PMID: 12634366
  66. Involvement of macrophage mannose receptor in the binding and transmission of HIV by macrophages.
    Eur J Immunol. 2003 Feb;33(2):483-93 PMID: 12645947
Article Info
Journal
Journal of virology
Abbr.
J Virol
ISSN
0022-538X
Published
2004-11-00
Pages
12090-5
Language
English
Region
United States
NLM ID
0113724
PMCID
PMC523257
Subset
IM
Grants
NIAID NIH HHS · R21 AI059172 · United States
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