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Inactivation, removal, and regrowth potential of opportunistic pathogens and antimicrobial resistance genes in recycled water systems
dc.creator | Drigo B., Brunetti G., Aleer S.C., Bell J.M., Short M.D., Vasileiadis S., Turnidge J., Monis P., Cunliffe D., Donner E. | en |
dc.date.accessioned | 2023-01-31T07:37:00Z | |
dc.date.available | 2023-01-31T07:37:00Z | |
dc.date.issued | 2021 | |
dc.identifier | 10.1016/j.watres.2021.117324 | |
dc.identifier.issn | 00431354 | |
dc.identifier.uri | http://hdl.handle.net/11615/71218 | |
dc.description.abstract | With two thirds of the global population living in areas affected by water scarcity, wastewater reuse is actively being implemented or explored by many nations. There is a need to better understand the efficacy of recycled water treatment plants (RWTPs) for removal of human opportunistic pathogens and antimicrobial resistant microorganisms. Here, we used a suite of probe-based multiplex and SYBR green real-time PCR assays to monitor enteric opportunistic pathogens (EOPs; Acinetobacter baumannii, Arcobacter butzlieri, Escherichia coli, Enterococcus faecalis, Klebsiella pneumoniae, Legionella spp., Listeria monocytogenes, Pseudomonas aeruginosa, Salmonella Enteritidis, Streptococcus spp.) and antimicrobial resistance genes (ARGs; qnrS, blaSHV, blaTEM, blaGES, blaKPC, blaIMI, blaSME, blaNDM, blaVIM, blaIMP, blaOXA-48-like, mcr-1 and mcr-3) of key concern from an antimicrobial resistance (AMR), waterborne and foodborne disease perspective. The class 1 integron-integrase gene (intl1) was quantified as a proxy for multi-drug resistance. EOPs, intl1 and ARGs absolute abundance (DNA and RNA) and metabolic activity (RNA) was assessed through three RWTPs with differing treatment trains. Our results indicate that RWTPs produced high quality recycled water for non-potable reuse by removing >95% of EOPs and ARGs, however, subpopulations of EOPs and ARGs survived disinfection and demonstrated potential to become actively growing members of the recycled water and distribution system microbiomes. The persistence of functional intl1 suggests that significant genetic recombination capacity remains in the recycled water, along with the likely presence of multi-drug resistant bacteria. Results provide new insights into the persistence and growth of EOPs, and prevalence and removal of ARGs in recycled water systems. These data will contribute towards the emerging evidence base of AMR risks in recycled water to inform quantitative risk-based policy development regarding water recycling schemes. © 2021 | en |
dc.language.iso | en | en |
dc.source | Water Research | en |
dc.source.uri | https://www.scopus.com/inward/record.uri?eid=2-s2.0-85110067869&doi=10.1016%2fj.watres.2021.117324&partnerID=40&md5=7cfe872ecfb8a320bebd82325624faaa | |
dc.subject | Escherichia coli | en |
dc.subject | Genes | en |
dc.subject | Pathogens | en |
dc.subject | Polymerase chain reaction | en |
dc.subject | Potable water | en |
dc.subject | RNA | en |
dc.subject | Salmonella | en |
dc.subject | Wastewater reclamation | en |
dc.subject | Water recycling | en |
dc.subject | Waterworks | en |
dc.subject | Antibiotic resistance genes | en |
dc.subject | Antimicrobial resistances | en |
dc.subject | Class 1 integron-integrase gene | en |
dc.subject | Enteric opportunistic pathogen | en |
dc.subject | Recycled water | en |
dc.subject | Recycled-water treatment | en |
dc.subject | Regrowth | en |
dc.subject | Resistance genes | en |
dc.subject | Treatment plants | en |
dc.subject | Water system | en |
dc.subject | Wastewater treatment | en |
dc.subject | beta lactamase | en |
dc.subject | chlorine | en |
dc.subject | genomic DNA | en |
dc.subject | genomic RNA | en |
dc.subject | polymyxin | en |
dc.subject | quinolone | en |
dc.subject | RNA 16S | en |
dc.subject | antiinfective agent | en |
dc.subject | water | en |
dc.subject | antimicrobial activity | en |
dc.subject | bacterium | en |
dc.subject | gene | en |
dc.subject | pathogen | en |
dc.subject | recycling | en |
dc.subject | Acinetobacter baumannii | en |
dc.subject | aerosol | en |
dc.subject | antibiotic resistance | en |
dc.subject | antimicrobial resistance gene | en |
dc.subject | Arcobacter | en |
dc.subject | Article | en |
dc.subject | bacterial gene | en |
dc.subject | bacterial growth | en |
dc.subject | biofilm | en |
dc.subject | bla FPC gene | en |
dc.subject | bla GES gene | en |
dc.subject | bla IMI gene | en |
dc.subject | bla NDM gene | en |
dc.subject | bla oxa 48 like gene | en |
dc.subject | bla shv gene | en |
dc.subject | bla SME gene | en |
dc.subject | bla TEM gene | en |
dc.subject | chlorination | en |
dc.subject | class 1 integron | en |
dc.subject | controlled study | en |
dc.subject | drug inactivation | en |
dc.subject | Enterococcus faecalis | en |
dc.subject | Escherichia coli | en |
dc.subject | food chain | en |
dc.subject | food poisoning | en |
dc.subject | horizontal gene transfer | en |
dc.subject | Klebsiella pneumoniae | en |
dc.subject | Legionella | en |
dc.subject | Listeria monocytogenes | en |
dc.subject | mcr 1 gene | en |
dc.subject | mcr 3 gene | en |
dc.subject | microbial community | en |
dc.subject | multidrug resistance | en |
dc.subject | multidrug resistant bacterium | en |
dc.subject | nonhuman | en |
dc.subject | phagocytosis | en |
dc.subject | polymyxin resistance | en |
dc.subject | Pseudomonas | en |
dc.subject | Pseudomonas aeruginosa | en |
dc.subject | qnrs gene | en |
dc.subject | real time polymerase chain reaction | en |
dc.subject | RNA extraction | en |
dc.subject | Salmonella enterica serovar Enteritidis | en |
dc.subject | season | en |
dc.subject | Streptococcus | en |
dc.subject | ultraviolet irradiation | en |
dc.subject | waste water recycling | en |
dc.subject | waste water treatment plant | en |
dc.subject | water borne disease | en |
dc.subject | water disinfection | en |
dc.subject | water quality | en |
dc.subject | antibiotic resistance | en |
dc.subject | bacterial gene | en |
dc.subject | human | en |
dc.subject | integron | en |
dc.subject | wastewater | en |
dc.subject | Acinetobacter baumannii | en |
dc.subject | Arcobacter | en |
dc.subject | Enterococcus faecalis | en |
dc.subject | Escherichia coli | en |
dc.subject | Klebsiella pneumoniae | en |
dc.subject | Legionella | en |
dc.subject | Listeria monocytogenes | en |
dc.subject | Pseudomonas aeruginosa | en |
dc.subject | Salmonella enteritidis | en |
dc.subject | Streptococcus | en |
dc.subject | Varanidae | en |
dc.subject | Anti-Bacterial Agents | en |
dc.subject | Drug Resistance, Bacterial | en |
dc.subject | Drug Resistance, Multiple, Bacterial | en |
dc.subject | Genes, Bacterial | en |
dc.subject | Humans | en |
dc.subject | Integrons | en |
dc.subject | Waste Water | en |
dc.subject | Water | en |
dc.subject | Elsevier Ltd | en |
dc.title | Inactivation, removal, and regrowth potential of opportunistic pathogens and antimicrobial resistance genes in recycled water systems | en |
dc.type | journalArticle | en |
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