Environmental determinants of E. coli, link with the diarrheal diseases, and indication of vulnerability criteria in tropical West Africa (Kapore, Burkina Faso).

Elodie Robert, Manuela Grippa, Dayangnéwendé Edwige Nikiema, Laurent Kergoat, Hamidou Koudougou, Yves Auda, Emma Rochelle-Newall
Author Information
  1. Elodie Robert: LETG, CNRS, Université de Nantes, Nantes, France. ORCID
  2. Manuela Grippa: GET, Université de Toulouse III, CNRS, IRD, CNES, Toulouse, France. ORCID
  3. Dayangnéwendé Edwige Nikiema: LERMIT, Université Joseph Ki-Zerbo, Ouagadougou, Burkina Faso.
  4. Laurent Kergoat: GET, Université de Toulouse III, CNRS, IRD, CNES, Toulouse, France. ORCID
  5. Hamidou Koudougou: Direction régionale de la santé du Centre-Est, Tenkodogo, Burkina Faso.
  6. Yves Auda: GET, Université de Toulouse III, CNRS, IRD, CNES, Toulouse, France. ORCID
  7. Emma Rochelle-Newall: Institute of Ecology and Environmental Sciences of Paris (iEES-Paris), Sorbonne Université, Université Paris-Est Créteil, IRD, CNRS, INRAe, Paris, France.

Abstract

In 2017, diarrheal diseases were responsible for 606 024 deaths in Sub-Saharan Africa. This situation is due to domestic and recreational use of polluted surface waters, deficits in hygiene, access to healthcare and drinking water, and to weak environmental and health monitoring infrastructures. Escherichia coli (E. coli) is an indicator for the enteric pathogens that cause many diarrheal diseases. The links between E. coli, diarrheal diseases and environmental parameters have not received much attention in West Africa, and few studies have assessed health risks by taking into account hazards and socio-health vulnerabilities. This case study, carried out in Burkina Faso (Bagre Reservoir), aims at filling this knowledge gap by analyzing the environmental variables that play a role in the dynamics of E. coli, cases of diarrhea, and by identifying initial vulnerability criteria. A particular focus is given to satellite-derived parameters to assess whether remote sensing can provide a useful tool to assess the health hazard. Samples of surface water were routinely collected to measure E. coli, enterococci and suspended particulate matter (SPM) at a monitoring point (Kapore) during one year. In addition, satellite data were used to estimate precipitation, water level, Normalized Difference Vegetation Index (NDVI) and SPM. Monthly epidemiological data for cases of diarrhea from three health centers were also collected and compared with microbiological and environmental data. Finally, semi-structured interviews were carried out to document the use of water resources, contact with elements of the hydrographic network, health behavior and condition, and water and health policy and prevention, in order to identify the initial vulnerability criteria. A positive correlation between E. coli and enterococci in surface waters was found indicating that E. coli is an acceptable indicator of fecal contamination in this region. E. coli and diarrheal diseases were strongly correlated with monsoonal precipitation, in situ SPM, and Near Infra-Red (NIR) band between March and November. Partial least squares regression showed that E. coli concentration was strongly associated with precipitation, Sentinel-2 reflectance in the NIR and SPM, and that the cases of diarrhea were strongly associated with precipitation, NIR, E. coli, SPM, and to a lesser extent with NDVI. Moreover, E. coli dynamics were reproduced using satellite data alone, particularly from February to mid-December (R2 = 0.60) as were cases of diarrhea throughout the year (R2 = 0.76). This implies that satellite data could provide an important contribution to water quality monitoring. Finally, the vulnerability of the population was found to increase during the rainy season due to reduced accessibility to healthcare and drinking water sources and increased use of water of poor quality. During this period, surface water is used because it is close to habitations, easy to use and free from monetary or political constraints. This vulnerability is aggravated by marginality and particularly affects the Fulani, whose concessions are often close to surface water (river, lake) and far from health centers.

References

  1. Environ Microbiol Rep. 2010 Dec;2(6):706-14 [PMID: 23766274]
  2. Am J Epidemiol. 2003 Jan 15;157(2):166-75 [PMID: 12522024]
  3. J Infect Dis. 2010 Sep 1;202 Suppl:S5-S11 [PMID: 20684718]
  4. FEMS Microbiol Ecol. 2003 Nov 1;46(2):203-11 [PMID: 19719574]
  5. Microbes Environ. 2011;26(3):254-60 [PMID: 21666390]
  6. J Appl Microbiol. 2017 Sep;123(3):570-581 [PMID: 28383815]
  7. Can J Microbiol. 1966 Dec;12(6):1235-46 [PMID: 5963334]
  8. Microbiol Mol Biol Rev. 2012 Dec;76(4):685-706 [PMID: 23204362]
  9. Am J Trop Med Hyg. 2017 Feb 8;96(2):437-445 [PMID: 27821689]
  10. Lancet Infect Dis. 2018 Nov;18(11):1211-1228 [PMID: 30243583]
  11. Lancet. 2018 Nov 10;392(10159):1736-1788 [PMID: 30496103]
  12. Emerg Infect Dis. 2001 Sep-Oct;7(5):812-9 [PMID: 11747693]
  13. Environ Microbiol. 2007 Sep;9(9):2274-88 [PMID: 17686024]
  14. Appl Environ Microbiol. 2000 Jan;66(1):230-7 [PMID: 10618229]
  15. Int J Environ Res Public Health. 2018 Jan 04;15(1): [PMID: 29300305]
  16. J Med Virol. 2018 Sep;90(9):1453-1460 [PMID: 29718582]
  17. Sci Rep. 2016 Feb 12;6:21644 [PMID: 26869451]
  18. Appl Environ Microbiol. 2003 Jul;69(7):3687-94 [PMID: 12839733]
  19. Sci Total Environ. 2020 Nov 1;741:140189 [PMID: 32886968]
  20. Symp Ser Soc Appl Microbiol. 2000;(29):106S-116S [PMID: 10880185]
  21. Environ Health Perspect. 2011 Mar;119(3):299-305 [PMID: 20929684]
  22. Sci Rep. 2016 Sep 08;6:32974 [PMID: 27604854]
  23. Appl Environ Microbiol. 2005 Jun;71(6):2875-9 [PMID: 15932980]
  24. Int J Epidemiol. 2016 Feb;45(1):117-30 [PMID: 26567313]
  25. Sci Total Environ. 2017 Nov 15;598:228-238 [PMID: 28441601]
  26. J Water Health. 2008 Sep;6(3):323-32 [PMID: 19108552]
  27. Environ Sci Technol. 2015 Jul 07;49(13):7825-33 [PMID: 26039244]
  28. Environ Sci Pollut Res Int. 2016 Feb;23(4):3427-35 [PMID: 26490918]
  29. Int J Infect Dis. 2011 Sep;15(9):e646-52 [PMID: 21763172]
  30. Environ Sci Technol. 2009 Mar 15;43(6):1788-97 [PMID: 19368173]
  31. Int J Environ Res Public Health. 2018 Apr 10;15(4): [PMID: 29642611]
  32. J Clin Microbiol. 1987 Jul;25(7):1143-7 [PMID: 3038946]
  33. Can J Microbiol. 1975 Sep;21(9):1420-1 [PMID: 810237]
  34. J Water Health. 2010 Jun;8(2):374-86 [PMID: 20154400]
  35. J Environ Sci Health A Tox Hazard Subst Environ Eng. 2005;40(4):779-91 [PMID: 15792299]
  36. Int J Hyg Environ Health. 2011 Jun;214(3):258-64 [PMID: 21316302]
  37. PLoS Med. 2018 Nov 8;15(11):e1002688 [PMID: 30408029]
  38. Water Res. 2002 Jan;36(1):131-9 [PMID: 11766788]
  39. Sci Rep. 2021 Feb 10;11(1):3460 [PMID: 33568764]
  40. Environ Pollut. 2002;120(3):771-8 [PMID: 12442800]
  41. Int J Epidemiol. 2007 Oct;36(5):1030-7 [PMID: 17664224]
  42. Am J Epidemiol. 2014 Feb 1;179(3):344-52 [PMID: 24256618]
  43. Spat Spatiotemporal Epidemiol. 2018 Aug;26:127-141 [PMID: 30390928]
  44. ISME J. 2011 Feb;5(2):173-83 [PMID: 20574458]
  45. Sci Total Environ. 2015 Dec 15;537:462-9 [PMID: 26318680]
  46. Environ Health Perspect. 2009 Jul;117(7):1023-32 [PMID: 19654908]
  47. Water Res. 2004 Mar;38(5):1296-304 [PMID: 14975663]
  48. Int J Biometeorol. 2015 Sep;59(9):1321-31 [PMID: 25472927]
  49. PLoS Negl Trop Dis. 2013;7(1):e1998 [PMID: 23359825]
  50. Soc Sci Med. 2013 Mar;80:1-9 [PMID: 23415585]
  51. Front Microbiol. 2015 Apr 17;6:308 [PMID: 25941519]
  52. J Appl Microbiol. 1999 Nov;87(5):676-82 [PMID: 10594707]
  53. Mar Pollut Bull. 2004 May;48(9-10):852-62 [PMID: 15111032]
  54. Sci Total Environ. 2017 Dec 31;607-608:497-508 [PMID: 28704674]
  55. J Environ Public Health. 2017;2017:7515130 [PMID: 28377790]
  56. J Water Health. 2012 Jun;10(2):236-43 [PMID: 22717748]
  57. Appl Environ Microbiol. 2004 Feb;70(2):814-21 [PMID: 14766559]
  58. Int J Hyg Environ Health. 2017 Jul;220(5):820-828 [PMID: 28416464]
  59. Environ Sci Process Impacts. 2014;16(10):2313-24 [PMID: 25096028]
  60. J Environ Qual. 2008 May 02;37(3):889-97 [PMID: 18453411]
  61. Environ Sci Technol. 2016 May 17;50(10):4905-22 [PMID: 27058059]
  62. Environ Health Perspect. 2020 Dec;128(12):126001 [PMID: 33284047]
  63. J Environ Manage. 2002 Dec;66(4):377-93 [PMID: 12503494]
  64. Sci Total Environ. 2019 Jan 15;648:973-983 [PMID: 30144765]
  65. J Water Health. 2006 Sep;4(3):333-45 [PMID: 17036841]
  66. J Environ Manage. 2018 May 1;213:309-319 [PMID: 29502016]
  67. Prehosp Disaster Med. 2002 Jul-Sep;17(3):126-33 [PMID: 12627915]
  68. Microbes Environ. 2008;23(2):101-8 [PMID: 21558695]
  69. Sci Rep. 2016 Feb 12;6:20521 [PMID: 26867519]
  70. Sci Total Environ. 2012 Feb 15;417-418:273-9 [PMID: 22264918]
  71. PLoS Negl Trop Dis. 2016 Dec 9;10(12):e0005195 [PMID: 27935960]

MeSH Term

Burkina Faso
Diarrhea
Escherichia coli
Feces
Humans
Hygiene
Rain
Seasons
Water Microbiology
Water Pollution
Water Quality
Water Supply

Word Cloud

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