Warianty tytułu
Języki publikacji
Abstrakty
The aim of this study was to estimate the susceptibility of Staphylococcus hominis bacteria to the bacteriostatic agent in respiratory protective filters. Four types of filter media of different characteristics were tested. The number of bacteria was estimated by a culture-based method. It was proved that in treated filters the number of S. hominis was significantly reduced, even below the detection limit, while in untreated material bacteria were able to grow and multiply up to 100-fold within 8 hours. There was no correlation between filter structure and changes in the number of bacterial cells.
Słowa kluczowe
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Czasopismo
Rocznik
Tom
Numer
Opis fizyczny
p.475-477,ref.
Twórcy
autor
- Department of Biology, Faculty of Building Services, Hydro and Environmental Engineering, Warsaw University of Technology, Warsaw, Poland
autor
- Department of Biology, Faculty of Building Services, Hydro and Environmental Engineering, Warsaw University of Technology, Warsaw, Poland
Bibliografia
- Donoghue A.M. 2004. Occupational heath hazards in mining: an overview. Occup. Med. 54: 283–289.
- N. Duran, P.D. Marcato, S. De , I.H. Gabriel, O.L. Alves and E. Esposito. 2007. Antibacterial effect of silver nanoparticles produced by fungal process on textile fabrics and their effluent treatment. J. Biomed. Nanotechnol. 3: 203–208 .
- EN 136: 1998/AC: 2003. Respiratory protective devices. Full face masks. Requirements, testing, marking.
- EN 140: 1998/AC: 1999. Respiratory protective devices. Half masks and quarter masks. Requirements, testing, marking.
- Foss Manufacturing Co Inc. 2004. Effective antimicrobial treatment for both liquid and air filter media, Filtration & Separation. 41(8): 26–27.
- Gierlotka S. 2002. Climatic conditions in underground coal mines and their impact on the possibility of electric shock (in Polish). Bezpieczeństwo Pracy. 3: 26–28.
- Hugenholtz P. and J.A. Fuerst. 1992. Heterotrophic bacteria in air handling system. Appl. Environ. Microbiol. 58: 3914–3920.
- Karwowska E., E. Sztompka, M. Łebkowska and E. Miaśkiewicz- Pęska. 2003. Viability of bacteria in fibre filters as a result of filter humidity. Pol. J. Environ. Stud. 12(1): 57–61.
- Kemp P.C., H.G. Neumeister-Kemp, G. Lysek and F. Murray. 2001. Survival of microorganisms on air filtration media during initial loading. Atmos. Environ. 35: 4739–4749.
- Labour Protection Council. Bulletin No. 9. 2007 (in Polish). No. 1856/V. Chancellery of the Sejm – Office of Parliamentary Committee (eds).
- Łebkowska M. and M. Załęska-Radziwiłł. 2011. Nanoparticles: mode of occurence and ecotoxicity (in Polish). Ochrona Środowiska. 33(4):23–26.
- Marcato P.D. and N. Duran. 2011. Biogenic silver nanoparticles: application in medicines and textiles and their health implications, pp. 249–267. In: Rai M. and N. Duran (eds). Metal nanoparticles in microbiology Part 3.
- Matsumura Y., K. Yoshikata, S. Kunisaki and T. Tsuchi. 2003. Mode of bactericidal action of silver zeolite and its comparison of silver nitrate. Appl. Environ. Microbiol. 69(7): 4278–4281.
- Miaskiewicz-Peska E. and M. Lebkowska. 2011. Effect of antimicrobial air filter treatment on bacterial survival. Fibres and Textiles in Eastern Europe. 1(84): 73–77.
- Moore M.N. 2006. Do nanoparticles present ecotoxicological risks for health of aquatic environment? Environ. Int. 32: 967–976.
- Rai M., A. Yadaw and A. Gade. 2009. Silver nanoparticles as a new generation of antibiotics. Biotechnol. Adv. 27: 76–83.
- Regulation of the Minister of Economy of 28.06.2002 on occupational health and safety, traffic management and specialilized fire protection in underground mines (in Polish). Journal of Laws No. 139, item. In 1169, as amended.
- Wells J.L. 1998. Health hazards in mining and quarrying, pp. 74.51– 74.55. In: Stellman J.M. (ed.). Encyclopaedia of Occupational Health and Safety, vol. 3, 4th edition. International Labour Office, Geneva.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.agro-fbca6004-5822-4701-b613-d783c68b2cb5