Chlorine and Monochloramine Disinfection of Legionella pneumophila Colonizing Copper and Polyvinyl Chloride Drinking Water Biofilms

被引:2
作者
Buse, Helen Y. [1 ]
Morris, Brian J. [2 ]
Struewing, Ian T. [3 ]
Szabo, Jeffrey G. [1 ]
机构
[1] US EPA, Off Res & Dev, Natl Homeland Secur Res Ctr, Cincinnati, OH 45268 USA
[2] Pegasus Tech Serv Inc, Cincinnati, OH USA
[3] Aptim Fed Serv LLC, Cincinnati, OH USA
关键词
HPC; biofilm; disinfection; drinking water distribution system; opportunistic pathogen; premise plumbing; ESCHERICHIA-COLI; DISTRIBUTION-SYSTEM; SEROGROUP; HOT-WATER; AMEBAS; INACTIVATION; SUSCEPTIBILITY; RESISTANCE; MYCOBACTERIUM; COLONIZATION;
D O I
10.1128/AEM.02956-18
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Building water systems promote the regrowth and survival of opportunistic pathogens, such as Legionella pneumophila, especially within biofilms, where most drinking water microbes reside. However, compared to their planktonic form, disinfection efficacy for the biofilm-associated forms of water-based pathogens is unclear. The aim of this study was to determine the effectiveness of free chlorine and monochloramine in the inactivation of biofilm-associated L. pneumophila strain Philadelphia-1 serogroup 1 (LpP1s1). Mature (1.5- to 2-year-old) drinking water biofilms were developed on copper (Cu) and polyvinyl chloride (PVC) slides within biofilm annular reactors, then colonized with LpP1s1 at approximately 4 log(10) CFU cm(-2) and exposed to 2 mg liter(-1) of free chlorine or monochloramine. Cr (disinfectant concentration x time, expressed as mg min liter(-1)) inactivation values for 2-, 3-, and 4-log(10) reductions of planktonic and biofilm LpP1s1 were determined. For planktonic LpP1s1, free chlorine was more effective at inactivation than was monochloramine treatment, and for biofilm-associated LpP1s1, monochloramine was more effective on Cu biofilms while free chlorine was more effective on PVC biofilms. In contrast to monochloramine, free chlorine treatment of Cu and PVC biofilms, negatively impacted LpP1s1 16S rRNA gene transcript levels and may act synergistically with Cu surfaces to further reduce transcript levels. Moreover, LpP1s1 cells shed from biofilms into the bulk water were more resistant to disinfection than were prepared planktonic LpP1s1 cells. Results from this study indicate that biofilm association, disinfectant type, and substratum play an important role in the survival of Legionella pneumophila in building water systems. IMPORTANCE Microbial regrowth within building water systems are promoted by water stagnation, low disinfectant residual, high surface-to-volume ratio, amenable growth temperatures, and colonization of drinking water biofilms. Moreover, biofilms provide protection from environmental stresses, access to higher levels of nutrients, and opportunities for symbiotic interactions with other microbes. Disinfectant efficacy information is historically based on inactivation of pathogens in their planktonic, free-floating forms. However, due to the ecological importance of drinking water biofilms for pathogen survival, this study evaluated the efficacy of two common disinfectants, free chlorine and monochloramine, on Legionella pneumophila colonizing mature, drinking water biofilms established on copper and PVC surfaces. Results showed that inactivation was dependent on the disinfectant type and biofilm substratum. Overall, this, and other related research, will provide a better understanding of Legionella ecological stability and survival and aid policy makers in the management of exposure risks to water-based pathogens within building water systems.
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页数:16
相关论文
共 65 条
[1]   Heterotrophic plate count bacteria - what is their significance in drinking water? [J].
Allen, MJ ;
Edberg, SC ;
Reasoner, DJ .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 2004, 92 (03) :265-274
[2]   Parameters predictive of Legionella contamination in hot water systems: Association with trace elements and heterotrophic plate counts [J].
Bargellini, Annalisa ;
Marchesi, Isabella ;
Righi, Elena ;
Ferrari, Angela ;
Cencetti, Stefano ;
Borella, Paola ;
Rovesti, Sergio .
WATER RESEARCH, 2011, 45 (06) :2315-2321
[3]   Occurence of infected amoebae in cooling towers compared with natural aquatic environments: Implications for emerging pathogens [J].
Berk, S. G. ;
Gunderson, J. H. ;
Newsome, A. L. ;
Farone, A. L. ;
Hayes, B. J. ;
Redding, K. S. ;
Uddin, N. ;
Williams, E. L. ;
Johnson, R. A. ;
Farsian, M. ;
Reid, A. ;
Skimmyhorn, J. ;
Farone, M. B. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2006, 40 (23) :7440-7444
[4]   Microbial ecology of drinking water distribution systems [J].
Berry, David ;
Xi, Chuanwu ;
Raskin, Lutgarde .
CURRENT OPINION IN BIOTECHNOLOGY, 2006, 17 (03) :297-302
[5]   Differential growth of Legionella pneumophila strains within a range of amoebae at various temperatures associated with in-premise plumbing [J].
Buse, H. Y. ;
Ashbolt, N. J. .
LETTERS IN APPLIED MICROBIOLOGY, 2011, 53 (02) :217-224
[6]   Effect of temperature and colonization of Legionella pneumophila and Vermamoeba vermiformis on bacterial community composition of copper drinking water biofilms [J].
Buse, Helen Y. ;
Ji, Pan ;
Gomez-Alvarez, Vicente ;
Pruden, Amy ;
Edwards, Marc A. ;
Ashbolt, Nicholas J. .
MICROBIAL BIOTECHNOLOGY, 2017, 10 (04) :773-788
[7]   Preferential colonization and release of Legionella pneumophila from mature drinking water biofilms grown on copper versus unplasticized polyvinylchloride coupons [J].
Buse, Helen Y. ;
Lu, Jingrang ;
Struewing, Ian T. ;
Ashbolt, Nicholas J. .
INTERNATIONAL JOURNAL OF HYGIENE AND ENVIRONMENTAL HEALTH, 2014, 217 (2-3) :219-225
[8]   Counting Legionella Cells within Single Amoeba Host Cells [J].
Buse, Helen Y. ;
Ashbolt, Nicholas J. .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2012, 78 (06) :2070-2072
[9]   Legionellae in engineered systems and use of quantitative microbial risk assessment to predict exposure [J].
Buse, Helen Y. ;
Schoen, Mary E. ;
Ashbolt, Nicholas J. .
WATER RESEARCH, 2012, 46 (04) :921-933
[10]  
Camper AK, 1993, BIOFOULING BIOCORROS, P91