Innate and adaptive immunity to Francisella

被引:134
|
作者
Elkins, Karen L.
Cowley, Siobhan C.
Bosio, Catharine M.
机构
[1] LMDCI, Bethesda, MD 20892 USA
[2] US FDA, Div Bacterial Parasit & Allergen Prod, Lab Mycobacteriol Dis & Cellular Immunol, Bethesda, MD 20014 USA
[3] NIAID, NIH, Lab Intracellular Parasites, Hamilton, MT USA
关键词
Francisella; T lymphocyte; B lymphocyte; macrophage; dendritic cell; natural killer cell; cytokine; chemokine; protective immunity;
D O I
10.1196/annals.1409.014
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Studies of immune responses to Francisella have been conducted for well over 50 years. Here, the basic parameters of innate and adaptive immune responses to Francisella are reviewed, with an emphasis on those that may contribute directly to protection against infection. Although older literature provides a wealth of information on human immune responses to infection and vaccination, most recent information has been derived largely from studies in animals and using animal cells, particularly mice. In experimental animals, activation of macrophages, a major and probably preferred host cell for Francisella, appears central to control of infection. Thus, in animal models and in vitro studies using mouse macrophages, cytokines such as IFN-gamma and TNF-alpha, derived first from both nonspecific cells such as natural killer cells and later from Francisella-specific T cells, collaborate to effect intracellular killing. In mice, these intracellular killing mechanisms include reactive nitrogen and oxygen species, but killing mechanisms remain to be identified in humans. Ultimately both CD4(+) and CD8(+) T cells develop into Francisella-specific memory cells and are important for control of primary Francisella infection or vaccination-induced protection. The effector mechanisms invoked by either CD4+ or CD8+ T cells, beyond production of IFN-gamma and TNF-alpha, are the subject of ongoing studies. Both specific antibodies and B cells may contribute to control of primary infection or vaccination-induced protection in some circumstances, particularly against lower virulence Francisella strains. Thus a number of known proinflammatory and Th-1 T cell related components of the immune system combat this virulent bacterium; no doubt others remain to be discovered.
引用
收藏
页码:284 / 324
页数:41
相关论文
共 50 条
  • [1] Adaptive innate immunity or innate adaptive immunity?
    Cerny, Jan
    Striz, Ilja
    CLINICAL SCIENCE, 2019, 133 (14) : 1549 - 1565
  • [2] Interaction of Francisella asiatica with Tilapia (Oreochromis niloticus) Innate Immunity
    Soto, Esteban
    Fernandez, Denise
    Thune, Ronald
    Hawke, John P.
    INFECTION AND IMMUNITY, 2010, 78 (05) : 2070 - 2078
  • [3] Innate and adaptive immunity in atherosclerosis
    Packard, Rene R. S.
    Lichtman, Andrew H.
    Libby, Peter
    SEMINARS IN IMMUNOPATHOLOGY, 2009, 31 (01) : 5 - 22
  • [4] Ubiquitylation in innate and adaptive immunity
    Vijay G. Bhoj
    Zhijian J. Chen
    Nature, 2009, 458 : 430 - 437
  • [5] Neutrophils in innate and adaptive immunity
    Sébastien Jaillon
    Maria Rosaria Galdiero
    Davide Del Prete
    Marco Antonio Cassatella
    Cecilia Garlanda
    Alberto Mantovani
    Seminars in Immunopathology, 2013, 35 : 377 - 394
  • [6] HDL in innate and adaptive immunity
    Catapano, Alberico Luigi
    Pirillo, Angela
    Bonacina, Fabrizia
    Norata, Giuseppe Danilo
    CARDIOVASCULAR RESEARCH, 2014, 103 (03) : 372 - 383
  • [7] Linking innate and adaptive immunity
    Shi Yi
    Gao, George Fu
    CHINESE SCIENCE BULLETIN, 2012, 57 (31): : 4100 - 4102
  • [8] Neutrophils in innate and adaptive immunity
    Jaillon, Sebastien
    Galdiero, Maria Rosaria
    Del Prete, Davide
    Cassatella, Marco Antonio
    Garlanda, Cecilia
    Mantovani, Alberto
    SEMINARS IN IMMUNOPATHOLOGY, 2013, 35 (04) : 377 - 394
  • [9] Bridging Innate and Adaptive Immunity
    Paul, William E.
    CELL, 2011, 147 (06) : 1212 - 1215
  • [10] Linking innate and adaptive immunity
    Elaine Bell
    Nature Reviews Immunology, 2002, 2 : 381 - 381