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PMID: 18398488 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Differential gene expression changes in children with severe dengue virus infections.

PLoS neglected tropical diseases ·Vol. 2 ·No. 4 ·2008-04-09 ·Pages e215

de Kruif MD, Setiati TE, Mairuhu AT, Koraka P, Aberson HA, Spek CA, Osterhaus AD, Reitsma PH, Brandjes DP, Soemantri A, van Gorp EC

Abstract

The host response to dengue virus infection is characterized by the production of numerous cytokines, but the overall picture appears to be complex. It has been suggested that a balance may be involved between protective and pathologic immune responses. This study aimed to define differential immune responses in association with clinical outcomes by gene expression profiling of a selected panel of inflammatory genes in whole blood samples from children with severe dengue infections. Whole blood mRNA from 56 Indonesian children with severe dengue virus infections was analyzed during early admission and at day -1, 0, 1, and 5-8 after defervescence. Levels were related to baseline levels collected at a 1-month follow-up visit. Processing of mRNA was performed in a single reaction by multiplex ligation-dependent probe amplification, measuring mRNA levels from genes encoding 36 inflammatory proteins and 14 Toll-like receptor (TLR)-associated molecules. The inflammatory gene profiles showed up-regulation during infection of eight genes, including IFNG and IL12A, which indicated an antiviral response. On the contrary, genes associated with the nuclear factor (NF)-kappaB pathway were down-regulated, including NFKB1, NFKB2, TNFR1, IL1B, IL8, and TNFA. Many of these NF-kappaB pathway-related genes, but not IFNG or IL12A, correlated with adverse clinical events such as development of pleural effusion and hemorrhagic manifestations. The TLR profile showed that TLRs were differentially activated during severe dengue infections: increased expression of TLR7 and TLR4R3 was found together with a decreased expression of TLR1, TLR2, TLR4R4, and TLR4 co-factor CD14. These data show that different immunological pathways are differently expressed and associated with different clinical outcomes in children with severe dengue infections.

MeSH Terms
Adolescent Child Child, Preschool Dengue/immunology,virology Dengue Virus/immunology Female Gene Expression Profiling Gene Expression Regulation Humans Immunity, Innate/genetics,immunology Interleukin-12 Subunit p35/genetics,immunology Interleukin-8/genetics,immunology Male NF-kappa B/genetics,immunology RNA, Messenger/genetics Reverse Transcriptase Polymerase Chain Reaction Severe Dengue/genetics,immunology,virology Signal Transduction/genetics Toll-Like Receptors/genetics,immunology
Chemicals
IL12A protein, human Interleukin-12 Subunit p35 Interleukin-8 NF-kappa B RNA, Messenger Toll-Like Receptors
Authors & Affiliations
11 authors, click to expand affiliations / ORCID
de Kruif Martijn D
Department of Internal Medicine, Slotervaart Hospital, Amsterdam, The Netherlands. m.d.dekruif@amc.uva.nl
Setiati Tatty E
Mairuhu Albertus T A
Koraka Penelopie
Aberson Hella A
Spek C Arnold
Osterhaus Albert D M E
Reitsma Pieter H
Brandjes Dees P M
Soemantri Augustinus
van Gorp Eric C M
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Article Info
Journal
PLoS neglected tropical diseases
Abbr.
PLoS Negl Trop Dis
ISSN
1935-2735
Published
2008-04-09
Epub
2008-00-09
Pages
e215
Language
English
Region
United States
NLM ID
101291488
PMCID
PMC2274954
Subset
IM
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