Linking Microbial Community Composition in Treated Wastewater with Water Quality in Distribution Systems and Subsequent Health Effects

被引:22
作者
Ibekwe, Abasiofiok Mark [1 ]
Murinda, Shelton E. [2 ]
机构
[1] USDA ARS, US Salin Lab, 450W Big Springs Rd, Riverside, CA 92507 USA
[2] Calif State Polytech Univ Pomona, Ctr Antimicrobial Res & Food Safety, Anim & Vet Sci Dept, Pomona, CA 91768 USA
关键词
biofilm; pathogen; drinking water; water distribution systems; public health; DRINKING-WATER; LEGIONELLA-PNEUMOPHILA; BIOFILM FORMATION; UNITED-STATES; ORGANIC-CARBON; BACTERIAL REGROWTH; RECLAIMED-WATER; MODEL; PATHOGENS; PHOSPHORUS;
D O I
10.3390/microorganisms7120660
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The increases in per capita water consumption, coupled in part with global climate change have resulted in increased demands on available freshwater resources. Therefore, the availability of safe, pathogen-free drinking water is vital to public health. This need has resulted in global initiatives to develop sustainable urban water infrastructure for the treatment of wastewater for different purposes such as reuse water for irrigation, and advanced waste water purification systems for domestic water supply. In developed countries, most of the water goes through primary, secondary, and tertiary treatments combined with disinfectant, microfiltration (MF), reverse osmosis (RO), etc. to produce potable water. During this process the total bacterial load of the water at different stages of the treatment will decrease significantly from the source water. Microbial diversity and load may decrease by several orders of magnitude after microfiltration and reverse osmosis treatment and falling to almost non-detectable levels in some of the most managed wastewater treatment facilities. However, one thing in common with the different end users is that the water goes through massive distribution systems, and the pipes in the distribution lines may be contaminated with diverse microbes that inhabit these systems. In the main distribution lines, microbes survive within biofilms which may contain opportunistic pathogens. This review highlights the role of microbial community composition in the final effluent treated wastewater, biofilms formation in the distribution systems as the treated water goes through, and the subsequent health effects from potential pathogens associated with poorly treated water. We conclude by pointing out some basic steps that may be taken to reduce the accumulation of biofilms in the water distribution systems.
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页数:17
相关论文
共 114 条
[1]   Iron storage in bacteria [J].
Andrews, SC .
ADVANCES IN MICROBIAL PHYSIOLOGY, VOL 40, 1998, 40 :281-351
[2]  
[Anonymous], BACTERIOPHAGES
[3]  
[Anonymous], 2018, Guidelines for Drinking Water Quality
[4]   Environmental (Saprozoic) Pathogens of Engineered Water Systems: Understanding Their Ecology for Risk Assessment and Management [J].
Ashbolt, Nicholas J. .
PATHOGENS, 2015, 4 (02) :390-405
[5]   The drinking water treatment process as a potential source of affecting the bacterial antibiotic resistance [J].
Bai, Xiaohui ;
Ma, Xiaolin ;
Xu, Fengming ;
Li, Jing ;
Zhang, Hang ;
Xiao, Xiang .
SCIENCE OF THE TOTAL ENVIRONMENT, 2015, 533 :24-31
[6]   Outbreaks Associated With Environmental and Undetermined Water Exposures - United States, 2011-2012 [J].
Beer, Karlyn D. ;
Gargano, Julia W. ;
Roberts, Virginia A. ;
Reses, Hannah E. ;
Hill, Vincent R. ;
Garrison, Laurel E. ;
Kutty, Preeta K. ;
Hilborn, Elizabeth D. ;
Wade, Timothy J. ;
Fullerton, Kathleen E. ;
Yoder, Jonathan S. .
MMWR-MORBIDITY AND MORTALITY WEEKLY REPORT, 2015, 64 (31) :849-851
[7]   The antimicrobial and antibiofilm activities of copper(II) complexes [J].
Beeton, Michael L. ;
Aldrich-Wright, Janice R. ;
Bolhuis, Albert .
JOURNAL OF INORGANIC BIOCHEMISTRY, 2014, 140 :167-172
[8]   The thorny road to technology legitimation - Institutional work for potable water reuse in California [J].
Binz, Christian ;
Harris-Lovett, Sasha ;
Kiparsky, Michael ;
Sedlak, David L. ;
Truffer, Bernhard .
TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 2016, 103 :249-263
[9]  
Bitton G., 1994, WASTEWATER MICROBIOL
[10]  
Blanch AR, 2004, HANDB ENVIRON CHEM, V5, P141, DOI 10.1007/b97178