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Environmental Health Perspectives logoLink to Environmental Health Perspectives
. 2001 Jan;109(1):47–54. doi: 10.1289/ehp.0110947

Spatial and temporal distribution of airborne Bacillus thuringiensis var. kurstaki during an aerial spray program for gypsy moth eradication.

K Teschke 1, Y Chow 1, K Bartlett 1, A Ross 1, C van Netten 1
PMCID: PMC1242050  PMID: 11171524

Abstract

We measured airborne exposures to the biological insecticide Bacillus thuringiensis var. kurstaki (Btk) during an aerial spray program to eradicate gypsy moths on the west coast of Canada. We aimed to determine whether staying indoors during spraying reduced exposures, to determine the rate of temporal decay of airborne concentrations, and to determine whether drift occurred outside the spray zone. During spraying, the average culturable airborne Btk concentration measured outdoors within the spray zone was 739 colony-forming units (CFU)/m3 of air. Outdoor air concentrations decreased over time, quickly in an initial phase with a half time of 3.3 hr, and then more slowly over the following 9 days, with an overall half-time of about 2.4 days. Inside residences during spraying, average concentrations were initially 2-5 times lower than outdoors, but at 5-6 hr after spraying began, indoor concentrations exceeded those outdoors, with an average of 244 CFU/m3 vs. 77 CFU/m3 outdoors, suggesting that the initial benefits of remaining indoors during spraying may not persist as outside air moves indoors with normal daily activities. There was drift of culturable Btk throughout a 125- to 1,000-meter band outside the spray zone where measurements were made, a consequence of the fine aerosol sizes that remained airborne (count median diameters of 4.3 to 7.2 microm). Btk concentrations outside the spray zone were related to wind speed and direction, but not to distance from the spray zone.

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Selected References

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  1. Chao C. Y. Study of indoor radon levels in high-rise air-conditioned office buildings. Appl Occup Environ Hyg. 1999 Dec;14(12):811–818. doi: 10.1080/104732299302044. [DOI] [PubMed] [Google Scholar]
  2. Green M., Heumann M., Sokolow R., Foster L. R., Bryant R., Skeels M. Public health implications of the microbial pesticide Bacillus thuringiensis: an epidemiological study, Oregon, 1985-86. Am J Public Health. 1990 Jul;80(7):848–852. doi: 10.2105/ajph.80.7.848. [DOI] [PMC free article] [PubMed] [Google Scholar]
  3. Matthews T. G., Wilson D. L., Thompson C. V., Monar K. P., Dudney C. S. Impact of heating and air conditioning system operation and leakage on ventilation and intercompartment transport: studies in unoccupied and occupied Tennessee Valley homes. J Air Waste Manage Assoc. 1990 Feb;40(2):194–198. doi: 10.1080/10473289.1990.10466676. [DOI] [PubMed] [Google Scholar]
  4. Turk B. H., Prill R. J., Grimsrud D. T., Moed B. A., Sextro R. G. Characterizing the occurrence, sources, and variability of radon in Pacific Northwest homes. J Air Waste Manage Assoc. 1990 Apr;40(4):498–506. doi: 10.1080/10473289.1990.10466705. [DOI] [PubMed] [Google Scholar]

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