Antimicrobial mechanisms of fish phagocytes and their role in host defense

被引:229
作者
Neumann, NF [1 ]
Stafford, JL
Barreda, D
Ainsworth, AJ
Belosevic, M
机构
[1] Environm Canada, Canada Ctr Inland Waters, Natl Water Res Inst, Burlington, ON L7R 4A6, Canada
[2] Mississippi State Univ, Coll Vet Med, Mississippi State, MS 39762 USA
[3] Univ Alberta, Dept Biol Sci, Edmonton, AB T6G 2E9, Canada
关键词
phagocytes; macrophages; neutrophils; fish; antimicrobial responses; nitric oxide; respiratory burst; innate immunity;
D O I
10.1016/S0145-305X(01)00037-4
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Phagocytosis is a primitive defense mechanism in all multicellular animals. Phagocytes such as macrophages and neutrophils play an important role in limiting the dissemination of infectious agents, and are responsible for the eventual destruction of phagocytosed pathogens. These cells have evolved elaborate killing mechanisms for destroying pathogens. In addition to their repertoire of degradative enzymes and antimicrobial peptides, macrophages and neutrophils can be activated to produce a number of highly toxic molecules. Production of reactive oxygen and nitrogen intermediates by these cells are potent cytotoxic mechanisms against bacteria and protozoan pathogens. Studies in fish suggest that the biological basis of these inducible killing mechanisms is similar to those described in mammals. More recent work suggest novel roles for regulating these killing responses in fish. In this review, we describe the biological basis of these killing mechanisms and how they are regulated in fish. (C) 2001 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:807 / 825
页数:19
相关论文
共 253 条
[1]   ACTIVATION OF THE NADPH OXIDASE INVOLVES THE SMALL GTP-BINDING PROTEIN P21RAC1 [J].
ABO, A ;
PICK, E ;
HALL, A ;
TOTTY, N ;
TEAHAN, CG ;
SEGAL, AW .
NATURE, 1991, 353 (6345) :668-670
[2]   ACTIVATION OF NADPH OXIDASE INVOLVES THE DISSOCIATION OF P21(RAC) FROM ITS INHIBITORY GDP/GTP EXCHANGE PROTEIN (RHOGDI) FOLLOWED BY ITS TRANSLOCATION TO THE PLASMA-MEMBRANE [J].
ABO, A ;
WEBB, MR ;
GROGAN, A ;
SEGAL, AW .
BIOCHEMICAL JOURNAL, 1994, 298 :585-591
[3]  
ABO A, 1995, BIOCHEM J, V299, P385
[4]  
ADAMS LB, 1991, J IMMUNOL, V147, P1642
[5]   Differential regulation of inducible nitric oxide synthase production in bovine and caprine macrophages [J].
Adler, H ;
Adler, B ;
Peveri, P ;
Werner, ER ;
Wachter, H ;
Peterhans, E ;
Jungi, TW .
JOURNAL OF INFECTIOUS DISEASES, 1996, 173 (04) :971-978
[6]   Neutrophil and macrophage responses to inflammation in the peritoneal cavity of rainbow trout Oncorhynchus mykiss. A light and electron microscopic cytochemical study [J].
Afonso, A ;
Lousada, S ;
Silva, J ;
Ellis, AE ;
Silva, MT .
DISEASES OF AQUATIC ORGANISMS, 1998, 34 (01) :27-37
[7]   ANTIBACTERIAL PROTEINS FROM PORCINE POLYMORPHONUCLEAR NEUTROPHILS [J].
ALBERDI, F ;
ALDERTON, MR ;
KOROLIK, V ;
COLOE, PJ ;
SMITH, SC .
IMMUNOLOGY AND CELL BIOLOGY, 1995, 73 (01) :38-43
[8]  
ANDREESEN R, 1986, BLOOD, V67, P1257
[9]   EXPRESSION OF TRANSFERRIN RECEPTORS AND INTRACELLULAR FERRITIN DURING TERMINAL DIFFERENTIATION OF HUMAN-MONOCYTES [J].
ANDREESEN, R ;
OSTERHOLZ, J ;
BODEMANN, H ;
BROSS, KJ ;
COSTABEL, U ;
LOHR, GW .
BLUT, 1984, 49 (03) :195-202
[10]  
ANDREESEN R, 1987, TRANSPLANT P, V19, P2885