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Bacillus Anthracis Lethal Toxin Induces TNF-alpha-independent Hypoxia-mediated Toxicity in Mice

Overview
Journal J Clin Invest
Specialty General Medicine
Date 2003 Sep 4
PMID 12952916
Citations 149
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Abstract

Bacillus anthracis lethal toxin (LT) is the major virulence factor of anthrax and reproduces most of the laboratory manifestations of the disease in animals. We studied LT toxicity in BALB/cJ and C57BL/6J mice. BALB/cJ mice became terminally ill earlier and with higher frequency than C57BL/6J mice. Timed histopathological analysis identified bone marrow, spleen, and liver as major affected organs in both mouse strains. LT induced extensive hypoxia. Crisis was due to extensive liver necrosis accompanied by pleural edema. There was no evidence of disseminated intravascular coagulation or renal dysfunction. Instead, analyses revealed hepatic dysfunction, hypoalbuminemia, and vascular/oxygenation insufficiency. Of 50 cytokines analyzed, BALB/cJ mice showed rapid but transitory increases in specific factors including KC, MCP-1/JE, IL-6, MIP-2, G-CSF, GM-CSF, eotaxin, FasL, and IL-1beta. No changes in TNF-alpha occurred. The C57BL/6J mice did not mount a similar cytokine response. These factors were not induced in vitro by LT treatment of toxin-sensitive macrophages. The evidence presented shows that LT kills mice through a TNF-alpha-independent, FasL-independent, noninflammatory mechanism that involves hypoxic tissue injury but does not require macrophage sensitivity to toxin.

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References
1.
Pezard C, Berche P, Mock M . Contribution of individual toxin components to virulence of Bacillus anthracis. Infect Immun. 1991; 59(10):3472-7. PMC: 258908. DOI: 10.1128/iai.59.10.3472-3477.1991. View

2.
MEERSON F, MAIZELIS M . [Influence of adaptation hypoxia on the brain function and its resistance to noxious factors (review)]. Zh Nevropatol Psikhiatr Im S S Korsakova. 1973; 73(9):1414-21. View

3.
Roberts J, Watters J, BALLARD J, Dietrich W . Ltx1, a mouse locus that influences the susceptibility of macrophages to cytolysis caused by intoxication with Bacillus anthracis lethal factor, maps to chromosome 11. Mol Microbiol. 1998; 29(2):581-91. DOI: 10.1046/j.1365-2958.1998.00953.x. View

4.
Aster R . Drug-induced immune thrombocytopenia: an overview of pathogenesis. Semin Hematol. 1999; 36(1 Suppl 1):2-6. View

5.
Pezard C, Duflot E, Mock M . Construction of Bacillus anthracis mutant strains producing a single toxin component. J Gen Microbiol. 1993; 139(10):2459-63. DOI: 10.1099/00221287-139-10-2459. View