Dose-response analysis of Bacillus thuringiensis HD-1 cry- spore reduction on surfaces using formaldehyde with pre-germination
- PMID: 35945896
- PMCID: PMC9828334
- DOI: 10.1111/jam.15767
Dose-response analysis of Bacillus thuringiensis HD-1 cry- spore reduction on surfaces using formaldehyde with pre-germination
Abstract
Aim: To establish a basis for rapid remediation of large areas contaminated with Bacillus anthracis spores.
Methods and results: Representative surfaces of wood, steel and cement were coated by nebulization with B. thuringiensis HD-1 cry- (a simulant for B. anthracis) at 5.9 ± 0.2, 6.3 ± 0.2 and 5.8 ± 0.2 log10 CFU per cm2 , respectively. These were sprayed with formaldehyde, either with or without pre-germination. Low volume (equivalent to ≤2500 L ha-1 ) applications of formaldehyde at 30 g l-1 to steel or cement surfaces resulted in ≥4 or ≤2 log10 CFU per cm2 reductions respectively, after 2 h exposure. Pre-germinating spores (500 mmol l-1 l-alanine and 25 mmol l-1 inosine, pH 7) followed by formaldehyde application showed higher levels of spore inactivation than formaldehyde alone with gains of up to 3.4 log10 CFU per cm2 for a given dose. No loss in B. thuringiensis cry- viability was measured after the 2 h germination period, however, a pre-heat shock log10 reduction was seen for B. anthracis strains: LSU149 (1.7 log10), Vollum and LSU465 (both 0.9 log10), LSU442 (0.2 log10), Sterne (0.8 log10) and Ames (0.6 log10).
Conclusions: A methodology was developed to produce representative spore contamination of surfaces along with a laboratory-based technique to measure the efficacy of decontamination. Dose-response analysis was used to optimize decontamination. Pre-germinating spores was found to increase effectiveness of decontamination but requires careful consideration of total volume used (germinant and decontaminant) by surface type.
Significance and impact of the study: To be practically achievable, decontamination of a wide area contaminated with B. anthracis spores must be effective, timely and minimize the amount of materials required. This study uses systematic dose-response methodology to demonstrate that such an approach is feasible.
Keywords: Bacillus anthracis; anthrax; biocides; decontamination; dose-response; formaldehyde; germination; spores.
© 2022 Crown copyright and The Authors. Journal of Applied Microbiology published by John Wiley & Sons Ltd on behalf of Society for Applied Microbiology. This article is published with the permission of the Controller of HMSO and the King's Printer for Scotland.
Conflict of interest statement
No conflict of interest has been declared.
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References
-
- Ball, D.A. , Taylor, R. , Todd, S.J. , Redmond, C. , Couture‐Tosi, E. , Sylvestre, P. et al. (2008) Structure of the exosporium and sublayers of spores of the Bacillus cereus family revealed by electron crystallography. Molecular Microbiology, 68, 947–958. - PubMed
-
- Bishop, A.H. & Robinson, C.V. (2014) Bacillus thuringiensis HD‐1 Cry−: development of a safe, non‐insecticidal simulant for Bacillus anthracis . Journal of Applied Microbiology, 117, 654–662. - PubMed
-
- Broussolle, V. , Gauillard, F. , Nguyen‐The, C. & Carlin, F. (2008) Diversity of spore germination in response to inosine and L‐alanine and its interaction with NaCl and pH in the Bacillus cereus group. Journal of Applied Microbiology, 105, 1081–1090. - PubMed
-
- Buhr, T.L. , Minter, Z.A. , Kennihan, N.L. , Young, A.A. , Borgers‐Klonkowski, E.L. , Osborn, E.B. et al. (2019) Combining spore germination and heat inactivation to decontaminate materials contaminated with Bacillus anthracis spores. Journal of Applied Microbiology, 128, 124–137. - PubMed
-
- Buhr, T.L. , Young, A.A. , Bensman, M. , Minter, Z.A. , Kennihan, N.L. , Johnson, C.A. et al. (2016) Hot, humid air decontamination of a C‐130 aircraft contaminated with spores of two acrystalliferous Bacillus thuringiensis strains, surrogates for Bacillus anthracis . Journal of Applied Microbiology, 120, 1074–1084. - PubMed
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