全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Municipal Wastewater Effluents as a Source of Listerial Pathogens in the Aquatic Milieu of the Eastern Cape Province of South Africa: A Concern of Public Health Importance

DOI: 10.3390/ijerph7052376

Keywords: water quality, Listeria pathogens, health/environmental impact, receiving watershed

Full-Text   Cite this paper   Add to My Lib

Abstract:

We evaluated the effluent quality of an urban wastewater treatment facility in South Africa and its impact on the receiving watershed for a period of 12 months. The prevalence and antimicrobial susceptibility of potential Listeria pathogens ( L. ivanovii and L. innocua) and the physicochemical quality of the treated wastewater effluent was assessed, with a view to ascertain the potential health and environmental hazards of the discharged effluent. Total listerial density varied between 2.9 × 10 0 and 1.2 × 10 5 cfu/mL; free living Listeria species were more prevalent (84%), compared to Listeria species attached to planktons (59–75%). The treated effluent quality fell short of recommended standards for turbidity, dissolved oxygen, chemical oxygen demand, nitrite, phosphate and Listeria density; while pH, temperature, total dissolved solids and nitrate contents were compliant with target quality limits after treatment. The Listeria isolates (23) were sensitive to three (15%) of the 20 test antibiotics, and showed varying (4.5–91%) levels of resistance to 17 antibiotics. Of seven resistance gene markers assayed, only sulII genes were detected in five (22%) Listeria strains. The study demonstrates a potential negative impact of the wastewater effluent on the receiving environment and suggests a serious public health implication for those who depend on the receiving watershed for drinking and other purposes.

References

[1]  Roberts, AJ; Wiedmann, M. Pathogen, host and environmental factors contributing to the pathogenesis of listeriosis. Cell. Mol. Life Sci?2003, 60, 904–918.
[2]  Brugere-Picoux, O. Ovine listeriosis. Small Ruminant Res?2008, 76, 12–20.
[3]  Cummins, AJ; Fielding, AK; McLauchlin, J. Listeria ivanovii infection in a patient with AIDS. J. Infect?1994, 28, 89–91.
[4]  Cocolin, L; Rantsiou, K; Iacumin, L; Cantoni, C; Comi, G. Direct identification in food samples of Listeria spp. and Listeria monocytogenes by molecular methods. Appl. Environ. Microbiol?2002, 68, 6273–6282.
[5]  Walker, JK; Morgan, JH; McLauchlin, J; Grant, KA; Shallcross, JA. Listeria ivanovii isolated from a case of ovine meningoencephalitis. Vet. Microbiol?1994, 59, 193–202.
[6]  Rocourt, J; Jacquet, Ch; Reilly, A. Epidemiology of human listeriosis and seafoods. Int. J. Food Microbiol?2000, 62, 197–209.
[7]  Siegman-Igra, Y; Levin, R; Weinberger, M; Golan, Y; Schwartz, D; Samra, Z; Konigsberger, H; Yinnon, A; Rahav, G; Keller, N; Basharat, N; Karpuch, J; Finkelstein, R; Alkan, M; Landau, Z; Novikov, J; Hassin, D; Rudnicki, C; Kitzes, R; Ovadia, S; Shimoni, Z; Lang, R; Shohat, T. Listeria monocytogenes infection in Israel and review of cases worldwide. Emerging Infect. Dis?2002, 8, 305–310.
[8]  Al-Ghazali, MR; Al-Azawi, KS. Detection and enumeration of Listeria monocytogenes in a sewage treatment plant in Iraq. J. Appl. Bacteriol?1986, 60, 251–254.
[9]  Al-Ghazali, MR; Al-Azawi, KS. Effects of sewage treatment on the removal of Listeria monocytogenes. J. Appl. Bacteriol?1988, 65, 203–208.
[10]  Czeszejko, K; Boguslawska-Was, E; Dabrowski, W; Kaban, S; Umanski, R. Prevalence of Listeria monocytogenes in municipal and industrial sewage. Electron J Pol Agric Univ Environ Dev, 2003, 6.
[11]  Paillard, D; Dubois, V; Thiebaut, R; Nathier, F; Hoogland, E; Caumette, P; Quentin, C. Occurrence of Listeria spp. in effluents of French urban wastewater treatment plants. Appl. Environ. Microbiol?2005, 71, 7562–7566.
[12]  Watkins, J; Sleath, KP. Isolation and enumeration of Listeria monocytogenes from sewage, sewage sludge, and river water. J. Appl. Bacteriol?1981, 50, 1–9.
[13]  Odjadjare, EEO; Okoh, AI. Prevalence and distribution of Listeria pathogens in the final effluents of a rural wastewater treatment facility in the Eastern Cape Province of South Africa. World J. Microbiol. Biotechnol?2010, 26, 297–307.
[14]  Mackintosh, G; Colvin, C. Failure of rural schemes in South Africa to provide potable water. Environ. Geol?2003, 44, 101–105.
[15]  Okoh, AI; Odjadjare, EE; Igbinosa, EO; Osode, AN. Wastewater treatment plants as a source of pathogens in receiving watersheds. Afr. J. Biotechnol?2007, 6, 2932–2944.
[16]  Venter, SN. Microbial water quality in the 21st century. SA Water bull?2001, 27, 16–17.
[17]  Djordjevic, D; Wiedmann, M; McLandsborough, LA. Microtitre assay for assessment of Listeria monocytogenes biofilm formation. Appl. Environ. Microbiol?2002, 68, 2950–2958.
[18]  Lunden, JM; Miettinen, MK; Autio, TJ; Korkeala, H. Persistent Listeria monocytogenes strains show enhanced adherence to food contact surface after short contact times. J. Food Prot?2000, 63, 1204–1207.
[19]  Mafu, A; Roy, D; Goulet, J; Magny, P. Attachment of Listeria monocytogenes to stainless steel, glass, polypropylene and rubber surfaces after short contact times. J. Food Prot?1990, 53, 742–746.
[20]  Davis, JA; Jackson, CR. Comparative antimicrobial susceptibility of Listeria monocytogenes, L. innocua, and L. welshimeri. Microb. Drug Res?2009, 15, 28–32.
[21]  Srinivasan, V; Nam, HM; Nguyen, LT; Tamilselvam, B; Murinda, SE; Oliver, SP. Prevalence of antimicrobial resistance genes in Listeria monocytogenes isolated from dairy farms. Foodborne Pathog. Dis?2005, 2, 201–211.
[22]  Obi, CL; Onabolu, B; Momba, MNB; Igumbor, JO; Ramalivahna, J; Bossong, PO; van Rensburg, EJ; Lukoto, M; Green, E; Mulaudzi, TB. The interesting cross-paths of HIV/AIDS and water in Southern Africa with special reference to South Africa. Water SA?2006, 32, 323–343.
[23]  Maugeri, TL; Carbon, M; Fera, MT; Irrera, GP; Gugliandolo, C. Distribution of potentially pathogenic bacteria as free-living and plankton associated in a marine coastal zone. J. Appl. Microbiol?2004, 97, 354–361.
[24]  Hitchins, AD. Detection and enumeration of Listeria monocytogenes in foods. Bacteriological Analytical Manual; US Food and Drug Administration: Madison, WI, USA, 2001.
[25]  DWAF. Analytical Methods Manual, TR 151; Department of Water Affairs and Forestry: Pretoria, South Africa, 1992.
[26]  CLSI. Performance Standards for Antimicrobial Susceptibility Testing; Fifteenth Informational Supplement; Clinical and Laboratory Standards Institute: Wayne, PA, USA, 2005; Volume 25, p. 163.
[27]  Conter, M; Paludi, D; Zanardi, E; Ghidini, S; Vergara, A; Ianieri, A. Characterization of antimicrobial resistance of foodborne Listeria monocytogenes. Int. J. Food Microbiol?2009, 128, 497–500.
[28]  Naravaneni, R; Jamil, K. Rapid detection of food-borne pathogens by using molecular techniques. J. Med. Microbiol?2005, 54, 51–54.
[29]  DWAF. South African Water Quality Guidelines: Domestic Use, 2nd ed ed.; Department of Water Affairs and Forestry: Pretoria, South Africa, 1996; Volume 2.
[30]  WHO. Rolling Revision of the WHO Guidelines for Drinking-Water Quality, Draft for Review and Comments Nitrates and Nitrites in Drinking-Water; World Health Organization, 2004.
[31]  Fatoki, SO; Gogwana, P; Ogunfowokan, AO. Pollution assessment in the Keiskamma River and in the impoundment downstream. Water SA?2003, 29, 183–187.
[32]  SA Government Gazette. Requirements for the Purification of Wastewater or Effluent, ; Gazette No. 9225, Regulation 991, 1984.
[33]  DWAF. South African Water Quality Guidelines: Aquatic Ecosystems, 1st ed ed.; Department of Water Affairs and Forestry: Pretoria, South Africa, 1996; Volume 7.
[34]  Venkateswaran, K; Takai, T; Navarro, IM; Nakano, H; Hashimoto, H; Siebeling, RJ. Ecology of Vibrio cholerae non-01 and Salmonella spp. and role of zooplankton in their seasonal distribution in Fukuyama coastal waters, Japan. Appl. Environ. Microbiol?1989, 55, 1591–1598.
[35]  Murrell, MC; Hollibaugh, JT; Silver, MW; Wong, PS. Bacterioplankton dynamics in Northern San Francisco Bay: role of particle association and seasonal freshwater flow. Limnol. Oceanogr?1999, 44, 295–308.
[36]  Hsieh, JL; Fries, JS; Noble, RT. Vibrio and phytoplankton dynamics during the summer of 2004 in a eutrophying estuary. Ecol. Appl?2007, 17, S102–S109.
[37]  Dijkstra, RG. The occurrence of Listeria monocytogenes in surface waters of canals and lakes, in ditches of one big polder and in the effluents and canals of a sewage treatment plant. Zentralbl. Bakteriol. Mikrobiol. Hyg. B?1982, 176, 202–205.
[38]  Frances, N; Hornby, H; Hunter, PR. The isolation of Listeria species from freshwater sites in Cheshire and North Wales. Epidemiol. Infect?1991, 107, 235–238.
[39]  Lyautey, E; Lapen, DR; Wilkes, G; McCleary, K; Pagotto, F; Tyler, K; Hartmann, A; Piveteau, P; Rieu, A; Robertson, WJ; Medeiros, DT; Edge, TA; Gannon, V; Topp, E. Distribution and characteristics of Listeria monocytogenes isolates from surface waters of the South Nation River Watershed, Ontario, Canada. Appl. Environ. Microbiol?2007, 73, 5401–5410.
[40]  Obi, CL; Igumbor, JO; Momba, MNB; Samie, A. Interplay of factors involving chlorine dose, turbidity, flow capacity and pH on microbial quality of drinking water in small treatment plants. Water SA?2008, 34, 565–572.
[41]  LeChevallier, MW; Cawthan, CD; Lee, RG. Factors promoting survival of bacteria in chlorinated water supplies. Appl. Environ. Microbiol?1988, 54, 649–654.
[42]  Hansen, JM; Gerna-Smidt, P; Bruun, B. Antibiotic susceptibility of Listeria monocytogenes in Denmark 1958–2001. Acta Pathol. Microbiol. Immunol. Scand?2005, 113, 31–36.
[43]  Safdar, A; Armstrong, D. Antimicrobial activities against 84 Listeria monocytogenes isolates from patients with systemic listeriosis at a comprehensive cancer center (1955–1997). J. Clin. Microbiol?2003, 41, 483–485.
[44]  Abuin, CMF; Fernandez, EJQ; Sampayo, CF; Otero, JTR; Rodriguez, LD; Cepeda, S. Susceptibilities of Listeria species isolated from food to nine antimicrobial agents. Antimicrob. Agents Chemother?1994, 38, 1655–1657.
[45]  Zhang, Y; Yeh, E; Hall, G; Cripe, J; Bhagwat, AA; Meng, J. Characterization of Listeria monocytogenes isolated from retail foods. Int. J. Food Microbiol?2007, 113, 47–53.
[46]  Aureli, P; Ferrrini, AM; Mannoni, V; Hodzic, S; Wedell-Weergaard, C; Oliva, B. Susceptibility of Listeria monocytogenes isolated from food in Italy to antibiotics. Int. J. Food Microbiol?2003, 83, 325–330.
[47]  Giger, W; Alder, AC; Golet, EM; Kohler, HE; McArdell, CS; Molnar, E; Siegrist, H; Suter, MJ-F. Occurrence and fate of antibiotics as trace contaminants in wastewaters, sewage sludges, and surface waters. Chimia?2003, 57, 485–491.
[48]  Kummerer, K. Significance of antibiotics in the environment. J. Antimicrob. Chemother?2003, 52, 5–7.
[49]  Volkmann, H; Schwartz, T; Bischoff, P; Kirchen, S; Obst, U. Detection of clinically relevant antibiotic-resistance genes in municipal wastewater using real-time PCR (TaqMan). J. Microbol. Methods?2004, 56, 277–286.
[50]  Arslan, S; Ozdemir, F. Prevalence and antimicrobial resistance of Listeria spp. in homemade white cheese. Food Control?2008, 19, 360–363.
[51]  Donlan, RM; Costerton, JW. Biofilms: survival mechanism of clinically relevant microorganisms. Clin. Microbiol. Rev?2002, 15, 167–193.
[52]  Roberts, CM; Facinelli, B; Giovanetti, E; Varaldo, PE. Transferable erythromycin in Listeria spp. isolated from food. Appl. Environ. Microbiol?1996, 62, 269–270.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133