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Медицинская паразитология и паразитарные болезни

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Микробиологические и паразитологические аспекты эпидемиологического анализа сточных вод

https://doi.org/10.33092/0025-8326mp2025.2.45-52

EDN: WUFPSD

Аннотация

В статье представлен обзор аналитической концепции, основанной на сплаве эпидемиологии и коммунальной гигиены – эпидемиологический анализ сточных вод (Wastewater-based epidemiology (Sewage-based epidemiology)).

Об авторе

И. А. Абрамов
ФГБУ «ЦСП» ФМБА России
Россия


Список литературы

1. Коммунальная гигиена, ч. 1 / Под ред. В.Т. Мазаева. 2-е изд., испр. и доп. М.: ГЭО-ТАР-Медиа, 2005; 304.

2. Рожанец В.В. Эпидемиология на основе анализа сточных вод: новый подход к оценке потребления наркотических средств и психотропных соединений часть I. Эта-нол и никотин // Вопросы наркологии. 2016; 7-8: 54-74.

3. Daughton C.G., Jones-Lepp T.L. Pharmaceuticals and personal care products in the environment: scientific and regulatory issues. American Chemical Society, Washington, DC; 2001.

4. Zuccato E., Chiabrando C., Castiglioni S., Bagnati R., Fanelli R. Estimating community drug abuse by wastewater analysis // Environ Health Perspect. 2008; 116: 1027–1032.

5. Чернявская О.П. Эпидемиологический надзор за острыми вялыми параличами в период реализации программы ликвидации полиомиелита в Российской Федерации: специальность 14.02.02 "Эпидемиология": диссертация на соискание ученой степени кандидата медицинских наук. М.: 2012: 137

6. Ivanova O.E., Yarmolskaya M.S., Eremeeva T.P., Babkina G.M., Baykova O.Y., Akhmadishina L.V., Krasota A.Y., Kozlovskaya L.I., Lukashev A.N. Environmental Surveillance for Poliovirus and Other Enteroviruses: Long-Term Experience in Moscow, Russian Federation, 2004–2017 // Viruses. 2019; 11 (5): 424. DOI:10.3390/v11050424.

7. World Health Organization (WHO). Guidelines for environmental surveillance of poliovirus circulation; WHO/V&B/03.03.WHO: Geneva, Switzerland, 2003; Available online: http://apps.who.int/iris/bitstream/handle/10665/67854/WHO_V-B_03.03_eng.pdf?sequence=1 (accessed on 16.01.2025)

8. Thomas K.V., Bijlsma L., Castiglioni S., Covaci A., Emke E., Grabic R., Hernández F., Karolak S., Kasprzyk-Hordern B., Lindberg R.H., Lopez de Alda M., Meierjohann A., Ort C., Pico Y., Quintana J.B., Reid M., Rieckermann J., Terzic S., van Nuijs A.L., de Voogt P. Comparing illicit drug use in 19 European cities through sewage analysis // Sci Total Environ. 2012; 432: 432-9. DOI: 10.1016/j.scitotenv.2012.06.069.

9. Feng L., Zhang W., Li X. Monitoring of regional drug abuse through wastewater-based epidemiology — a critical review // Sci. China Earth Sci., 2018; 61(3): 239-255. DOI: 10.1007/s11430-017-9129-x.

10. Causanilles A., Ruepert C., Ibáñez M., Emke E., Hernández F., de Voogt P. Occurrence and fate of illicit drugs and pharmaceuticals in wastewater from two wastewater treatment plants in Costa Rica // Sci. Total Environ., 2017; 599: 98-107.

11. Baz-Lomba J.A., Salvatore S., Gracia-Lor E., Bade R., Castiglioni S., Castrignanò E., Causanilles A., Hernandez F., Kasprzyk-Hordern B., Kinyua J., McCall A.K.. Comparison of pharmaceutical, illicit drug, alcohol, nicotine and caffeine levels in wastewater with sale, seizure and consumption data for 8 European cities // BMC Public Health, 2016; 16(1): 1035.

12. van Nuijs A.L., Castiglioni S., Tarcomnicu I., Postigo C., de Alda M.L., Neels H., Zuccato E., Barcelo D., Covaci A. Illicit drug consumption estimations derived from wastewater analysis: a critical review // Sci. Total Environ., 2011; 409(19): 3564-3577.

13. Bohannon J. Public health. Hard data on hard drugs, grabbed from the environment // Science. 2007; 316(5821): 42–44.;

14. Castiglioni S., Bijlsma L., Covaci A. et al. Evaluation of uncertainties associated with the determination of community drug use through the measurement of sewage drug biomarkers. // Environ Sci Technol. 2013; N47(3): 1452–1460.

15. Fatta-Kassinos D., Meric S., Nikolaou A. Pharmaceutical residues in environmental waters and wastewater: current state of knowledge and future research. // Anal Bioanal Chem. 2011; 399(1): 251–275.

16. Fattore E., Davoli E., Castiglioni S. et al. Wastewater-based epidemiological evaluation of the effect of air pollution on short-acting beta-agonist consumption for acute asthma treatment. // Environ Res. 2016; 150: 106–11.

17. Kasprzyk-Hordern B., Dinsdale R.M., Guwy A.J. Illicit drugs and pharmaceuticals in the environment – forensic applications of environmental data. Part 1: Estimation of the usage of drugs in local communities. // Environ Pollut. 2009; N157(6): 1773–1777;

18. Ort C., van Nuijs A.L., Berset J.D. et al. Spatial differences and temporal changes in illicit drug use in Europe quantified by wastewater analysis. // Addiction. 2014; N109(8): 1338–1352.

19. Van Nuijs A.L., Mougel J.F., Tarcomnicu I. et al. Sewage epidemiology – a real-time approach to estimate the consumption of illicit drugs in Brussels, Belgium. // Environ Int. 2011; N37(3): 612–621.

20. Zuccato E., Chiabrando C., Castiglioni S. et al. Coca in surface waters: a new evidence-based tool to monitor community drug abuse // Environ Health. 2005; N4: 14.

21. Zuccato E., Chiabrando C., Castiglioni S. et al. Estimating community drug abuse by wastewater analysis // Environ Health Perspect. 2008; 116(8): 1027–1032.

22. Daughton C.G. Illicit drugs: contaminants in the environment and utility in forensic epidemiology // Rev Environ Contam Toxicol. 2011; N210: 59–110.

23. Lago P.M., Gary H.E., Pérez L.S., Cáceres V., Olivera J.B., Puentes R.P., Corredor M.B., Jímenez P., Pallansch M.A., Cruz R.G. Poliovirus detection in wastewater and stools following an immunization campaign in Havana, Cuba, 2003.

24. Gourinat A-C., O’Connor O., Calvez E., Goarant C., Dupont-Rouzeyrol M. (2015) Detection of Zika virus in urine // Emerg Infect Dis 2015; 21: 84–86.

25. Barzon L., Pacenti M., Franchin E., Pagni S., Martello T., Cattai M., Cusinato R., Palù G. Excretion of West Nile virus in urine during acute infection // J Infect Dis 2013; 208: 1086–1092.

26. Tonry J.H., Brown C.B., Cropp C.B., Co J.K.G., Bennett S.N., Nerurkar V.R., Kuberski T., Gubler D.J. West Nile Virus detection in urine. Emerg Infect Dis 2005; 11: 1294–1296.

27. Hirayama T., Mizuno Y., Takeshita N., Kotaki A., Tajima S., Omatsu T., Sano K., Kurane I., Takasaki T. Detection of dengue virus genome in urine by real-time reverse transcriptase PCR: a laboratory diagnostic method useful after disappearance of the genome in serum // J Clin Microbiol 2012; 50: 2047–2052.

28. Mizuno Y., Kotaki A., Harada F., Tajima S., Kurane I., Takasaki T. Confirmation of dengue virus infection by detection of dengue virus type 1 genome in urine and saliva but not in plasma // Trans R Soc Trop Med Hyg 2007; 101: 738–739

29. Poloni T.R., Oliveira A.S., Alfonso H.L., Galvao L.R., Amarilla A.A., Poloni D.F., Figueiredo L.T., Aquino V.H. Detection of dengue virus in saliva and urine by real time RT-PCR // Virol J 2010; 7: 22.

30. Hu Y., Lu S., Song Z., Wang W., Hao P., Li J., Zhang X., Yen H-L., Shi B., Li T., Guan W., Xu L., Liu Y., Wang S., Zhang X., Tian D., Zhu Z., He J., Huang K., Chen H., Zheng L., Li X., Ping J., Kang B., Xi X., Zha L., Li Y., Zhang Z., Peiris M., Yuan Z. Association between adverse clinical outcome in human disease caused by novel influenza A H7N9 virus and sustained viral shedding and emergence of antiviral resistance // The Lan-cet 2013; 381: 2273–227.

31. Lee N., Chan P.K., Wong C.K., Wong K.- T., Choi K.-W., Joynt G.M., Lam P., Chan M.C., Wong B.C., Lui G.C., Sin W.W., Wong R.Y., Lam W.-Y., Yeung A.C., Leung T.-F., So H.-Y., Yu A.W., Sung J.J., Hui D.S. Viral clearance and inflammatory response patterns in adults hospitalized for pandemic 2009 influenza A(H1N1) virus pneumonia // Antivir Ther 2011; 16: 237–247.

32. To K.K.W., Chan K.-H., Li I.W.S., Tsang T.-Y., Tse H., Chan J.F.W., Hung I.F.N., Lai S.-T., Leung C.-W., Kwan Y.-W., Lau Y.-L., Ng T.-K., Cheng V.C.C., Peiris J.S.M., Yuen K.-Y. Viral load in patients infected with pandemic H1N1 2009 influenza A virus // J Med Virol 2010; 82:1–7.

33. Heijnen L., Medema G. Surveillance of influenza A and the pandemic influenza A (H1N1) 2009 in sewage and surface water in the Nether-lands // J Water Health 2011; 9:434–442.

34. Gundy P.M., Gerba C.P., Pepper I.L. Survival of coronaviruses in water and wastewater // Food Environ Virol 2008; 1:10–14.

35. Xagoraraki I., O'Brien E. Wastewa-ter-based epidemiology for early detection of viral outbreaks, Women in Water Quality, Springer Nature Switzerland, 2020: 75-97. DOI: 10.1007/978-3-030-17819-2).

36. Ahmed W., Angel N., Edson J., Bibby K., Bivins A., O'Brien J.W., Choi P.M., Kitajima M., Simpson S.L., Li J., Tscharke B., Verhagen R., Smith W.J.M., Zaugg J., Dierens L., Hugenholtz P., Thomas K.V., Mueller J.F. First confirmed detection of SARS-CoV-2 in untreated wastewater in Australia: A proof of concept for the wastewater surveillance of COVID-19 in the community // Sci Total Environ. 2020; 728: 138764. DOI: 10.1016/j.scitotenv.2020.138764.

37. Gonzalez R., Curtis K., Bivins A., Bibby K., Weir M.H., Yetka K., Thompson H., Keeling D., Mitchell J., Gonzalez D. COVID-19 surveillance in Southeastern Virginia using wastewater-based epidemiology // Water Res. 2020; 186: 116296. DOI: 10.1016/j.watres.2020.116296.

38. Kumar M., Patel A.K., Shah A.V., Raval J., Rajpara N., Joshi M., Joshi C.G. First proof of the capability of wastewater surveillance for COVID-19 in India through detection of genetic material of SARS-CoV-2 // Sci Total Environ. 2020; 746: 141326. DOI: 10.1016/j.scitotenv.2020.141326.

39. Medema G., Heijnen L., Elsinga G., Italiaander R., Brouwer A. Presence of SARS-Coronavirus-2 RNA in Sewage and Correlation with Reported COVID-19 Prevalence in the Early Stage of the Epidemic in The Netherlands // Environ Sci Technol Lett. 2020; 7(7): 511-516. DOI: 10.1021/acs.estlett.0c00357.

40. Randazzo W., Truchado P., Cuevas-Fer-rando E., Simón P., Allende A., Sánchez G. SARS-CoV-2 RNA in wastewater anticipated COVID-19 occurrence in a low prevalence area // Water Res. 2020; 181: 115942. DOI: 10.1016/j.watres.2020.115942.

41. S.P. Sherchan, S. Shahin, L.M. Ward, S. Tandukar, T.G. Aw, B. Schmitz, W. Ahmed, M. Ki-tajima. First detection of SARS-CoV-2 RNA in wastewater in North America: A study in Louisiana, USA // Sci. Total Environ. (2020).

42. Ort C., Lawrence MG., Reungoat J. et al. Sampling for PPCPs in wastewater systems: comparison of different sampling modes and optimization strategies. // Environ Sci Technol. 2010; N44(16): 6289–6296.

43. Ort C., Lawrence MG., Rieckermann J. et al. Sampling for pharmaceuticals and personal care products (PPCPs) and illicit drugs in wastewater systems: are your conclusions valid? A critical review. // Environ Sci Technol. 2010; N44(16): 6024–6035.

44. Reid MJ., Langford KH., Mørland J. et al. Analysis and interpretation of specific ethanol metabolites, ethyl sulfate, and ethyl glucuronide in sewage effluent for the quantitative measure-ment of regional alcohol consumption. // Alcohol Clin Exp Res. 2011: N35(9): 1593–1599.

45. Castiglioni S., Thomas KV., KasprzykHordern B. et al. Testing wastewater to detect illicit drugs: state of the art, potential and research needs. // Sci Total Environ. 2014; N487: 613–620.

46. Медведев Ю.В., Раменская Г.В., Шохин Т.А., Ярушок Т.А. ВЭЖХ и СВЭЖХ как методы для определения лекарственных веществ в крови (обзор) // Химико-фармацевтический журнал. 2013; 47(4): 45–51.

47. Bade R., Rousis NI., Bijlsma L. et al. Screening of pharmaceuticals and illicit drugs in wastewater and surface waters of Spain and Italy by high resolution mass spectrometry using UHPLC-QTOF MS and LC-LTQ-Orbitrap MS. // Anal Bioanal Chem. 2015; N407(30): 8979–8988.

48. Амросьева Т.В., Вотяков В.И., Дьяконова О.В., Поклонская Н.В., Богуш З.Ф., Козинец О.Н. и др. Современные подходы к изучению и оценке вирусного загрязнения питьевых вод // Гигиена и санитария. 2002; 1: 76-9.

49. Недачин А.Е., Шипулина О.Ю., Шипулин Г.А., Чуланов В.П. Сравнительная оценка чувствительности метода полимеразной цепной реакции и иммуноферментного анализа для обнаружения вируса гепатита А в воде. В кн.: Материалы конференции «Актуальные проблемы современной вирусологии, посвященной 90-летию М.П. Чумакова». М.; 1999; 64–5.

50. Недачин А.Е., Дмитриева Р.А., Доскина Т.В., Долгин В.А. Показательное значение отдельных индикаторов и маркеров в отношении вирусного загрязнения воды // Гигиена и санитария. 2015; 94(6): 54-58.

51. McCall A.K., Bade R., Kinyua J. et al. Critical review on the stability of illicit drugs in sewers and wastewater samples. // Water Res. 2016; N88: 933–947.

52. Been F., Rossi L., Ort C. et al. Population normalization with ammonium in waste-water-based epidemiology: application to illicit drug monitoring. // Environ Sci Technol. 2014; N48(14): 8162–8169.

53. Lopes A., Silva N., Bronze M.R. et al. Analysis of cocaine and nicotine metabolites in wastewater by liquid chromatography-tandem mass spectrometry. Cross abuse index patterns on a major community. // Sci Total Environ. 2014; N487: 673–680.

54. Myers D.N., Wilde F.D. eds. November 2003, Biological indicators (3d ed.): U.S. Geological Survey Techniques of Water-Resources Investigations, book 9, chap. A7.

55. Yang Q., Liu Z., Yang J. Simultaneous Determination of Chemical Oxygen Demand (COD) and Biological Oxygen Demand (BOD5) in Wastewater by Near-Infrared Spectrometry. // J. Water Resource and Protection. 2009; N4: 286–289.

56. Andrés-Costa M.J., Escrivá Ú., Andreu V., et al. Estimation of alcohol consumption during «Fallas» festivity in the wastewater of Valencia city (Spain) using ethyl sulfate as a biomarker. // Sci Total Environ. 2016; N541: 616–622.

57. Chen C., Kostakis C., Gerber J.P., Tscharke B.J., Irvine R.J., White J.M. Towards finding a population biomarker for wastewater epidemiology studies // Sci Total Environ. 2014; 487: 621-8. doi: 10.1016/j.scitotenv.2013.11.075.

58. Wu J., Wang Z., Lin Y., Zhang L., Chen J., Li P., Liu W., Wang Y., Yao C., Yang K. Technical framework for wastewater-based epidemiology of SARS-CoV-2 // Sci Total Environ. 2021; 791: 148271. DOI: 10.1016/j.scitotenv.2021.148271.

59. Hart O.E., Halden R.U. Computation-al analysis of SARS-CoV-2/COVID-19 surveillance by wastewater-based epidemiology locally and globally: Feasibility, economy, opportunities and challenges // Sci Total Environ. 2020 Aug 15;730:138875. DOI: 10.1016/j.scito-tenv.2020.138875.


Рецензия

Для цитирования:


Абрамов И.А. Микробиологические и паразитологические аспекты эпидемиологического анализа сточных вод. Медицинская паразитология и паразитарные болезни. 2025;(2):45-52. https://doi.org/10.33092/0025-8326mp2025.2.45-52. EDN: WUFPSD

For citation:


Abramov I.A. Microbiological and parasitological aspects of wastewater-based epidemiology. Medical Parasitology and Parasitic Diseases. 2025;(2):45-52. (In Russ.) https://doi.org/10.33092/0025-8326mp2025.2.45-52. EDN: WUFPSD

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ISSN 0025-8326 (Print)
ISSN 2713-1777 (Online)