Listeria monocytogenes infection overcomes the requirement for CD40 ligand in exogenous antigen presentation to CD8+ T cells

被引:42
作者
Hamilton, SE
Tvinnereim, AR
Harty, JT
机构
[1] Univ Iowa, Dept Microbiol, Iowa City, IA 52242 USA
[2] Univ Iowa, Interdisciplinary Program Immunol, Iowa City, IA 52242 USA
关键词
D O I
10.4049/jimmunol.167.10.5603
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
In vivo priming of CD8(+) T lymphocytes against exogenously processed model Ags requires CD4(+) T cell help, specifically interactions between CD40 ligand (CD40L) expressed by activated CD4(+) T cells and CD40, which is present on professional APC such as dendritic cells (DCs). To address this issue in the context of bacterial infection, we examined CD40L-CD40 interactions in CD8(+) T cell priming against an exogenously processed, nonsecreted bacterial Ag. CD40L interactions were blocked by in vivo treatment with anti-CD40L mAb MR-1, which inhibited germinal center formation and CD8(+) T cell cross-priming against an exogenous model Ag, OVA. In contrast, MR-1 treatment did not interfere with CD8(+) T cell priming against a nonsecreted or secreted recombinant Ag expressed by Listeria monocytogenes. Memory and secondary responses of CD8(+) T cells against nonsecreted and secreted bacterial Ags were also largely unimpaired by transient MR-1 treatment. When MR-1-treated mice were concurrently immunized with L monocytogenes and OVA-loaded splenocytes, cross-priming of OVA-specific naive CD8+ T cells occurred. No significant decline in cross-priming against OVA was measured when either TNF or IFN-gamma was neutralized in L monocytogenes-infected animals, demonstrating that multiple signals exist to overcome CD40L blockade of CD8(+) T cell cross-priming during bacterial infection. These data support a model in which DCs can be stimulated in vivo through signals other than CD40, becoming APC that can effectively stimulate CD8(+) T cell responses against exogenous Ags during infection.
引用
收藏
页码:5603 / 5609
页数:7
相关论文
共 42 条
  • [31] A conditioned dendritic cell can be a temporal bridge between a CD4+ T-helper and a T-killer cell
    Ridge, JP
    Di Rosa, F
    Matzinger, P
    [J]. NATURE, 1998, 393 (6684) : 474 - 478
  • [32] CD40 signaling converts a minimally immunogenic antigen into a potent vaccine against the intracellular pathogen Listeria monocytogenes
    Rolph, MS
    Kaufmann, SHE
    [J]. JOURNAL OF IMMUNOLOGY, 2001, 166 (08) : 5115 - 5121
  • [33] The host response to Listeria monocytogenes mutants defective in genes encoding phospholipases C (plcA, plcB) and actin assembly (actA)
    Rudnicka, W
    Kaczmarek, M
    Szeliga, J
    Germann, T
    Wieckowska, M
    Rozalska, B
    [J]. MICROBIOLOGY AND IMMUNOLOGY, 1997, 41 (11) : 847 - 853
  • [34] Efficient Presentation of Soluble Antigen by Cultured Human Dendritic Cells Is Maintained by Granulocyte/Macrophage Colony-stimulating Factor Plus Interleukin 4 and Downregulated by Tumor Necrosis Factor α
    Sallusto, Federica
    Lanzavecchia, Antonio
    [J]. JOURNAL OF IMMUNOLOGY, 2018, 200 (03) : 887 - 896
  • [35] T-cell help for cytotoxic T lymphocytes is mediated by CD40-CD40L interactions
    Schoenberger, SP
    Toes, REM
    van der Voort, EIH
    Offringa, R
    Melief, CJM
    [J]. NATURE, 1998, 393 (6684) : 480 - 483
  • [36] CD40 triggering of heterodimeric IL-12 p70 production by dendritic cells in vivo requires a microbial priming signal
    Schulz, O
    Edwards, AD
    Schito, M
    Aliberti, J
    Manickasingham, S
    Sher, A
    Sousa, CRE
    [J]. IMMUNITY, 2000, 13 (04) : 453 - 462
  • [37] Compartmentalization of bacterial antigens: Differential effects on priming of CD8 T cells and protective immunity
    Shen, H
    Miller, JF
    Fan, X
    Kolwyck, D
    Ahmed, R
    Harty, JT
    [J]. CELL, 1998, 92 (04) : 535 - 545
  • [38] CD8+ T-cell priming against a nonsecreted Listeria monocytogenes antigen is independent of the antimicrobial activities of gamma interferon
    Tvinnereim, AR
    Harty, JT
    [J]. INFECTION AND IMMUNITY, 2000, 68 (04) : 2196 - 2204
  • [39] White DW, 1998, J IMMUNOL, V160, P898
  • [40] White DW, 1999, J IMMUNOL, V162, P980