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The early monocytic response to cytomegalovirus infection is MyD88 dependent but occurs independently of common inflammatory cytokine signals.

Authors :
Wikstrom ME
Khong A
Fleming P
Kuns R
Hertzog PJ
Frazer IH
Andoniou CE
Hill GR
Degli-Esposti MA
Source :
European journal of immunology [Eur J Immunol] 2014 Feb; Vol. 44 (2), pp. 409-19. Date of Electronic Publication: 2013 Dec 16.
Publication Year :
2014

Abstract

Cytomegalovirus latently infects myeloid cells; however, the acute effects of the virus on this cell subset are poorly characterised. We demonstrate that systemic cytomegalovirus infection induced rapid activation of monocytes in the bone marrow, characterised by upregulation of CD69, CD11c, Ly6C and M-CSF receptor. Activated bone marrow monocytes were more sensitive to M-CSF and less sensitive to granulocyte-monocyte colony stimulating factor in vitro, resulting in the generation of more macrophages and fewer dendritic cells, respectively. Monocyte activation was also observed in the periphery and resulted in significant accumulation of monocytes in the spleen. MyD88 expression was required within the haematopoietic compartment to initiate monocyte activation and recruitment. However, monocytes lacking MyD88 were activated and recruited in the presence of MyD88-sufficient cells in mixed bone marrow chimeras, indicating that once initiated, the process was MyD88 independent. Interestingly, we found that monocyte activation occurred in the absence of the common inflammatory cytokines, namely type I interferons (IFNs), IL-6, TNF-α and IL-1 as well as the NLRP3 inflammasome adaptor protein, ASC. We also excluded a role for the chemokine-like protein MCK-2 (m131/129) expressed by murine CMV. Taken together, these results challenge the notion that a single inflammatory cytokine mediates activation and recruitment of monocytes in response to infection.<br /> (© 2013 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.)

Subjects

Subjects :
Animals
Antigens, CD immunology
Antigens, CD metabolism
Antigens, Differentiation, T-Lymphocyte immunology
Antigens, Differentiation, T-Lymphocyte metabolism
Antigens, Ly immunology
Antigens, Ly metabolism
Bone Marrow immunology
Bone Marrow metabolism
Bone Marrow virology
CD11c Antigen immunology
CD11c Antigen metabolism
Carrier Proteins immunology
Carrier Proteins metabolism
Cells, Cultured
Chemokines, CC immunology
Chemokines, CC metabolism
Cytomegalovirus Infections metabolism
Dendritic Cells immunology
Dendritic Cells metabolism
Dendritic Cells virology
Female
Inflammation virology
Interferon Type I immunology
Interferon Type I metabolism
Interleukin-1 immunology
Interleukin-1 metabolism
Interleukin-6 immunology
Interleukin-6 metabolism
Lectins, C-Type immunology
Lectins, C-Type metabolism
Macrophage Colony-Stimulating Factor immunology
Macrophage Colony-Stimulating Factor metabolism
Macrophages immunology
Macrophages metabolism
Macrophages virology
Mice
Mice, Inbred C57BL
Monocytes virology
Myeloid Differentiation Factor 88 immunology
NLR Family, Pyrin Domain-Containing 3 Protein
Receptor, Macrophage Colony-Stimulating Factor immunology
Receptor, Macrophage Colony-Stimulating Factor metabolism
Spleen immunology
Spleen metabolism
Spleen virology
Tumor Necrosis Factor-alpha immunology
Tumor Necrosis Factor-alpha metabolism
Viral Proteins immunology
Viral Proteins metabolism
Cytomegalovirus immunology
Cytomegalovirus Infections immunology
Inflammation immunology
Inflammation metabolism
Monocytes immunology
Monocytes metabolism
Myeloid Differentiation Factor 88 metabolism

Details

Language :
English
ISSN :
1521-4141
Volume :
44
Issue :
2
Database :
MEDLINE
Journal :
European journal of immunology
Publication Type :
Academic Journal
Accession number :
24166710
Full Text :
https://doi.org/10.1002/eji.201243109