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May 11, 2026The Lancet Microbe0 citationsOpen Access

Integration of poliovirus and enteropathogen sewage surveillance in Dhaka Bangladesh: a longitudinal surveillance study, June 2019–June 2020

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IBIsobel M. BlakeMIMd Ohedul IslamBFBenjamin Fuller

Key Result

Sewage surveillance detected significantly higher concentrations of Sabin 1 poliovirus 2 weeks after a bOPV campaign compared to baseline (0.83 vs 0.05 mean viral copies per litre; p=0.004).

Key Points

  • This study aims to assess the effectiveness of TaqMan Array Cards in detecting poliovirus and other pathogens in sewage in Dhaka, Bangladesh.
  • Longitudinal surveillance conducted across 12 sites in Dhaka from June 2019 to June 2020.
  • Sewage samples collected using a bag-mediated filtration system and tested for poliovirus, enteric pathogens, and antimicrobial resistance markers.
  • Statistical analysis performed using a multivariable mixed-effects gamma hurdle regression model.
  • Significant increase in Sabin 1 and Sabin 3 poliovirus concentrations two weeks post-bOPV campaign, with p=0.004 for Sabin 1 and p=0.005 for Sabin 3.
  • Enterovirus detection was positively associated with higher total dissolved solids (adjusted OR 1.39, 95% CI 1.17-1.61).
  • Detection of 31 clinically significant antimicrobial resistance genes in sewage samples.

Study Design

Type

Observational (n=19,236)

Multicenter

Yes

Structured PICO

Can TaqMan Array Cards (TACs) effectively detect poliovirus and other enteropathogens in integrated sewage surveillance?

P
Population
19,236 children younger than 5 years across 12 sites in Dhaka, Bangladesh, monitored via sewage surveillance for poliovirus and enteropathogens over 1 year.
E
Exposure
TaqMan Array Cards (TACs) to detect poliovirus, enteric pathogens, and antimicrobial resistance (AMR) markers in sewage.
C
Comparator
Baseline values (before bivalent oral poliovirus vaccine [bOPV] campaign).
O
Outcome
Detection and concentration of poliovirus (Sabin 1 and Sabin 3) and other enteric pathogens/AMR markers in sewage.surrogate

TaqMan Array Cards can successfully detect poliovirus alongside other enteric pathogens and AMR markers in sewage, offering a viable tool for integrated environmental surveillance.

Main Result

Absolute Event Rate: 0.83% vs 0.05%

p-value: p=0.004

Limitations

  • Further validation is required across different geographies and poliovirus prevalence
  • Data interpretation requires an understanding of site sensitivity

Abstract

BACKGROUND: The Global Polio Eradication Initiative (GPEI) uses environmental surveillance to monitor circulation of poliovirus. After the certification of poliovirus eradication, environmental surveillance continues, generally through its integration into other infectious disease surveillance programmes. In this study, we evaluated the programmatic utility of TaqMan Array Cards (TACs) to detect poliovirus in sewage while simultaneously detecting enteric pathogens and markers of antimicrobial resistance (AMR). METHODS: This longitudinal surveillance study was conducted across 12 sites in three wards (8, 9, and 10) in Dhaka, Bangladesh, from June, 2019, to June, 2020. Demographic data of children younger than 5 years, including vaccination history, sanitation, and household characteristics, were obtained from the Health and Demographic Surveillance System. Sewage samples were collected between June, 2019, and June, 2020, using a bag-mediated filtration system. We used TACs to detect poliovirus in sewage and simultaneously tested for other enteric pathogens and markers of AMR. Sites were selected after mapping of the informal sewage network and a demographic survey of the population. Samples were collected before and after a bivalent oral poliovirus vaccine (bOPV) campaign. We used a water-quality probe to assess physicochemical properties of the sewage. A multivariable mixed-effects gamma hurdle regression model was used to examine the association of enterovirus detection and concentration with site properties. FINDINGS: The Health and Demographic Surveillance System recorded 19 236 children younger than 5 years across 12 sites in the three wards in Dhaka. The bOPV campaign reached 17 282 children. 372 sewage samples were collected over 379 days. The highest concentration of Sabin 1 and Sabin 3 polioviruses was detected 2 weeks after the bOPV campaign (mean viral copies per litre of sewage were 0·83 SD 2·13 for Sabin 1 and 0·84 1·96 for Sabin 3 vs baseline values of 0·05 0·21 for Sabin 1 and 0·11 0·50 for Sabin 3; p=0·004 for Sabin 1 and p=0·005 for Sabin 3). Detection of enteroviruses was more likely with increasing levels of total dissolved solids (adjusted odds ratio per absolute increase of 100 mg/L 1·39 95% CI 1·17-1·61). The median environmental surveillance viral load of rotavirus was 0·567 (IQR 0·202-0·839), and rotavirus had the strongest correlation with respective concurrent clinical case incidence (r=0·828; p=0·0017). 31 AMR genes of clinical significance were detected. INTERPRETATION: When the GPEI dissolves, poliovirus surveillance would need to be integrated into other surveillance programmes. TACs could be used to screen suitable pathogens for integrated sewage surveillance alongside poliovirus. Further validation is required across different geographies and poliovirus prevalence, and data interpretation requires an understanding of site sensitivity. FUNDING: Gates Foundation.

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Cite This Study

Blake et al. (2026) conducted an observational in Poliovirus and enteropathogen circulation (n=19,236). bivalent oral poliovirus vaccine (bOPV) campaign vs. Baseline (before campaign) was evaluated on Concentration of Sabin 1 poliovirus in sewage (mean viral copies per litre) (p=0.004). Sewage surveillance detected significantly higher concentrations of Sabin 1 poliovirus 2 weeks after a bOPV campaign compared to baseline (0.83 vs 0.05 mean viral copies per litre; p=0.004).

synapsesocial.com/papers/6a025f1ec9581ed855361c8fhttps://doi.org/10.1016/j.lanmic.2025.101343
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