Literature DB >> 7898901

Ecology and epidemiology of anthrax in the Etosha National Park, Namibia.

P M Lindeque1, P C Turnbull.   

Abstract

Analysis of mortality records has revealed distinct patterns in the incidence of anthrax in elephant and plains ungulates. The seasonal peak among the former is in November at the end of the dry season, while among the latter it occurs in March towards the end of the rainy season. Among elephants, there has been a notable spread of the disease to the west of the Park. Age and sex analyses indicate that, except for zebra, proportionally greater numbers of adult males die of anthrax among the species predominantly affected; however, zebra carcases are difficult to sex. In a study to identify possible environmental sources of infection, B. anthracis was detected in 3.3% of 92 water and 3.0% of 230 soil samples collected at different times of the year from 23 sites not associated with known cases of anthrax. Slight seasonal differences were noted with 5.7% positives occurring in the cold-dry period (May to August), 3.5% in the hot-dry season (September to December) and 1.4% in the hot-wet season (January to April). Higher rates (26.0% of 73 samples) were found in water from waterholes in the western part of the Park at the time of an outbreak in elephants. The possible importance of scavenger faeces was confirmed with > 50% of vulture, jackal and hyaena faeces collected from the vicinity of confirmed anthrax carcases yielding B. anthracis, sometimes in substantial numbers, while no spores were found in faeces not associated with known anthrax carcases. Despite terminal B. anthracis levels of usually > 10(7) cfu/milliliters in the blood of animals dying of anthrax, spore levels in soil contaminated by such blood at sites of anthrax carcases ranged from undetectable to a few tens of thousands. The rapid loss of viability in soil and water of anthrax bacilli was monitored experimentally and the importance of soil type demonstrated. Survival and extent of sporulation of the bacilli in water were shown to be dependent on the rate at which the blood was diluted out. Other relevant parameters examined were background flora, pH and sunlight.

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Year:  1994        PMID: 7898901

Source DB:  PubMed          Journal:  Onderstepoort J Vet Res        ISSN: 0030-2465            Impact factor:   1.792


  48 in total

1.  Zebra migration strategies and anthrax in Etosha National Park, Namibia.

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4.  Biomass transformation webs provide a unified approach to consumer-resource modelling.

Authors:  Wayne M Getz
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5.  Effects of experimental exclusion of scavengers from carcasses of anthrax-infected herbivores on Bacillus anthracis sporulation, survival, and distribution.

Authors:  Steve E Bellan; Peter C B Turnbull; Wolfgang Beyer; Wayne M Getz
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6.  Major histocompatibility complex variation and evolution at a single, expressed DQA locus in two genera of elephants.

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7.  Molecular characterization of Bacillus strains involved in outbreaks of anthrax in France in 1997.

Authors:  G Patra; J Vaissaire; M Weber-Levy; C Le Doujet; M Mock
Journal:  J Clin Microbiol       Date:  1998-11       Impact factor: 5.948

8.  Germination and amplification of anthrax spores by soil-dwelling amoebas.

Authors:  Rafik Dey; Paul S Hoffman; Ian J Glomski
Journal:  Appl Environ Microbiol       Date:  2012-09-14       Impact factor: 4.792

Review 9.  Bacillus anthracis physiology and genetics.

Authors:  Theresa M Koehler
Journal:  Mol Aspects Med       Date:  2009-08-03

10.  The secret life of the anthrax agent Bacillus anthracis: bacteriophage-mediated ecological adaptations.

Authors:  Raymond Schuch; Vincent A Fischetti
Journal:  PLoS One       Date:  2009-08-12       Impact factor: 3.240

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