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Mycobacteria in water used for personal hygiene in heavy industry and collieries: a potential risk for employees

. 2015 Mar 04 ; 12 (3) : 2870-7. [epub] 20150304

Language English Country Switzerland Media electronic

Document type Journal Article, Research Support, Non-U.S. Gov't

Environmental mycobacteria (EM) constitute a health risk, particularly for immunocompromised people. Workers in heavy industry and in collieries represent an at-risk group of people as their immunity is often weakened by long-term employment in dusty environments, frequent smoking and an increased occurrence of pulmonary diseases. This study was concerned with the presence of EM in non-drinking water used for the hygiene of employees in six large industrial companies and collieries. Over a period of ten years, 1096 samples of surface water treated for hygiene purposes (treated surface water) and treated surface water diluted with mining water were examined. EM were detected in 63.4 and 41.5% samples of treated surface water and treated surface water diluted with mining water, respectively. Mycobacterium gordonae, M. avium-intracellulare and M. kansasii were the most frequently detected species. Adoption of suitable precautions should be enforced to reduce the incidence of mycobacteria in shower water and to decrease the infectious pressure on employees belonging to an at-risk group of people.

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Regulation No. 252/2004 Laying Down the Hygiene Requirements for Drinking Water and Hot Water and the Frequency and Scope of Drinking Water Control. Ministry of Health of the Czech Republic; Prague, Czech Republic: 2004.

Falkinham J.O. Epidemiology of infection by nontuberculous mycobacteria. Clin. Microbiol. Rev. 1996;9:177–215. PubMed PMC

Vaerewijck M.J.M., Huys G., Palomino J.C., Swings J., Portaels F. Mycobacteria in drinking water distribution systems: Ecology and significance for human health. FEMS Microbiol. Rev. 2005;29:911–934. PubMed

Le Dantec C., Duguet J.P., Montiel A., Dumoutier N., Dubrou S., Vincent V. Occurrence of mycobacteria in water treatment lines and in water distribution systems. Appl. Environ. Microbiol. 2002;68:5318–5325. PubMed PMC

Taylor R.H., Falkinham J.O., Norton C.D., LeChevallier M.W. Chlorine, chloramine, chlorine dioxide, and ozone susceptibility of Mycobacterium avium. Appl. Environ. Microbiol. 2000;66:1702–1705. doi: 10.1128/AEM.66.4.1702-1705.2000. PubMed DOI PMC

Pavlik I., Falkinham III J.O., Kazda J. Potentially pathogenic mycobacteria. In: Kazda J., Pavlik I., Falkinham J.O., III Hruska K., editors. The Ecology of Mycobacteria: Impact on Animal’s and Human’s Health. 2nd ed. Springer; London, UK: 2009. pp. 21–80.

Briancesco R., Semproni M., Della L.S., Sdanganelli M., Bonadonna L. Non-tuberculous mycobacteria and microbial populations in drinking water distribution systems. Ann. Ist. Super. Sanita. 2010;46:254–258. PubMed

Falkinham J.O., Norton C.D., LeChevallier M.W. Factors influencing numbers of Mycobacterium avium, Mycobacterium intracellulare, and other mycobacteria in drinking water distribution systems. Appl. Environ. Microbiol. 2001;67:1225–1231. doi: 10.1128/AEM.67.3.1225-1231.2001. PubMed DOI PMC

Fernandez-Rendon E., Cerna-Cortes J.F., Ramirez-Medina M.A., Helguera-Repetto A.C., Rivera-Gutierrez S., Estrada-Garcia T., Merchand J.A. Mycobacterium mucogenicum and other non-tuberculous mycobacteria in potable water of a trauma hospital: A potential source for human infection. J. Hosp. Infect. 2012;80:74–76. doi: 10.1016/j.jhin.2011.10.003. PubMed DOI

Peters M., Muller C., Ruschgerdes S., Seidel C., Gobel U., Pohle H.D., Ruf B. Isolation of atypical mycobacteria from tap water in hospitals and homes—Is this a possible source of disseminated MAC infection in AIDS patients. J. Infect. 1995;31:39–44. doi: 10.1016/S0163-4453(95)91333-5. PubMed DOI

Leoni E., Legnani P., Mucci M.T., Pirani R. Prevalence of mycobacteria in a swimming pool environment. J. Appl. Microbiol. 1999;87:683–688. doi: 10.1046/j.1365-2672.1999.00909.x. PubMed DOI

Glazer C.S., Martyny J.W., Lee B., Sanchez T.L., Sells T.M., Newman L.S., Murphy J., Heifets L., Rose C.S. Nontuberculous mycobacteria in aerosol droplets and bulk water samples from therapy pools and hot tubs. J. Occup. Environ. Hyg. 2007;4:831–840. doi: 10.1080/15459620701634403. PubMed DOI

Klanicova B., Seda J., Slana I., Slany M., Pavlik I. The tracing of mycobacteria in drinking water supply systems by culture, conventional, and real time PCRs. Curr. Microbiol. 2013;67:725–731. doi: 10.1007/s00284-013-0427-1. PubMed DOI

Tuffley R.E., Holbeche J.D. Isolation of the Mycobacterium-avium-M.-intracellulare-M.-scrofulaceum complex from tank water in Queensland, Australia. Appl. Environ. Microbiol. 1980;39:48–53. PubMed PMC

Neumann M., SchulzeRobbecke R., Hagenau C., Behringer K. Comparison of methods for isolation of mycobacteria from water. Appl. Environ. Microbiol. 1997;63:547–552. PubMed PMC

Leclerc H., Moreau A. Microbiological safety of natural mineral water. FEMS Microbiol. Rev. 2002;26:207–222. doi: 10.1111/j.1574-6976.2002.tb00611.x. PubMed DOI

Schwartz T., Kalmbach S., Hoffmann S., Szewzyk U., Obst U. PCR-based detection of mycobacteria in biofilms from a drinking water distribution system. J. Microbiol. Methods. 1998;34:113–123.

Torvinen E., Suomalainen S., Lehtola M.J., Miettinen I.T., Zacheus O., Paulin L., Katila M.L., Martikainen P.J. Mycobacteria in water and loose deposits of drinking water distribution systems in Finland. Appl. Environ. Microbiol. 2004;70:1973–1981. PubMed PMC

Kaustova J. The incidence of conditionally pathogenic mycobacteria in the Northern Moravia Region in 1978–1987. J. Hyg. Epidemiol. Microbiol. Immunol. 1992;36:141–152. PubMed

Kaustova J., Chmelik M., Ettlova D., Hudec V., Lazarova H., Richtrova S. Disease due to Mycobacterium kansasii in the Czech Republic: 1984–89. Tuber. Lung Dis. 1995;76:205–209. doi: 10.1016/S0962-8479(05)80006-1. PubMed DOI

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