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    Optimization of <i>Shigella</i> and <i>Campylobacter</i> Detection from Milk and Water and Differentiation of Viable Organisms Using Viability PCR

    Source: Journal of Environmental Engineering:;2025:;Volume ( 151 ):;issue: 005::page 04025021-1
    Author:
    Tahmina Ahmed
    ,
    James A. Platts-Mills
    ,
    Suporn Pholwat
    ,
    Greta Campbell
    ,
    Erin G. Wettstone
    ,
    James A. Smith
    ,
    Mami Taniuchi
    DOI: 10.1061/JOEEDU.EEENG-7921
    Publisher: American Society of Civil Engineers
    Abstract: Campylobacter and Shigella are leading causes of enteric infections, especially in low-resource settings, and are transmitted through contaminated food, milk, and water. Detecting these pathogens in environmental samples and differentiating between viable and nonviable bacteria is critical for understanding their transmission and for risk assessment. This study optimized and evaluated laboratory methods for detecting viable Campylobacter and Shigella in water and raw cow milk using viability polymerase chain reaction (PCR). To optimize sample processing and extraction, seven water concentration methods, two water DNA extraction protocols, eight milk concentration methods, and nine milk DNA extraction protocols were compared. Water and milk were spiked with known amounts of bacteria, concentrated, and then subjected to DNA extraction and quantitative polymerase chain reaction (qPCR). For concentrating milk, centrifugation at 16,000×g for 20 min at room temperature using 1.5-mL samples yielded optimal results, while for water, the concentrating pipette approach was selected. For viability PCR, concentrated samples were treated with propidium monoazide (PMAxx) prior to DNA extraction. The results demonstrated exceptional linearity (0.992 to 0.999) and precision across various concentrations, with detection limits ranging from 3.75×102 to 4.54  CFU/mL for Shigella and 4.67×103 to 9.84×101  CFU/mL for Campylobacter. The assays had a within-run variance from 1.9% to 2.7% (repeatability) and between-run variance from 1.6% to 5.2% (reproducibility). The PMAxx-treated dead bacteria showed delayed cycle threshold (Ct) values compared to the viable bacteria, representing an inhibition of the detection of dead bacterial DNA by approximately 94% in milk and 99.6% in water. Viability PCR was successful in differentiating live from dead bacteria, offering a robust method for tracking the transmission of these pathogens in water and milk. These results support the application of viability PCR for more precise public health interventions. This research presents optimized laboratory methods for detecting viable Campylobacter and Shigella in water and raw cow milk, two common sources of infection in low-resource settings. These bacteria are major causes of diarrheal diseases, particularly among children, and can lead to severe health issues, including growth and developmental impairments. By using viability PCR (vPCR) with the enhanced dye PMAxx, the study differentiates between live and dead pathogens in environmental samples. This approach is significant for public health because it can pinpoint active transmission risks, allowing for more accurate assessment of contamination and risk. The ability to detect viable bacteria in water and milk could support targeted interventions and inform water, sanitation, and hygiene (WASH) initiatives where conventional methods fall short. Practitioners and policymakers could use these findings to improve health interventions and disease surveillance systems, ultimately helping to reduce the prevalence of these infections in vulnerable communities.
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      Optimization of <i>Shigella</i> and <i>Campylobacter</i> Detection from Milk and Water and Differentiation of Viable Organisms Using Viability PCR

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4307786
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    contributor authorTahmina Ahmed
    contributor authorJames A. Platts-Mills
    contributor authorSuporn Pholwat
    contributor authorGreta Campbell
    contributor authorErin G. Wettstone
    contributor authorJames A. Smith
    contributor authorMami Taniuchi
    date accessioned2025-08-17T23:01:11Z
    date available2025-08-17T23:01:11Z
    date copyright5/1/2025 12:00:00 AM
    date issued2025
    identifier otherJOEEDU.EEENG-7921.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4307786
    description abstractCampylobacter and Shigella are leading causes of enteric infections, especially in low-resource settings, and are transmitted through contaminated food, milk, and water. Detecting these pathogens in environmental samples and differentiating between viable and nonviable bacteria is critical for understanding their transmission and for risk assessment. This study optimized and evaluated laboratory methods for detecting viable Campylobacter and Shigella in water and raw cow milk using viability polymerase chain reaction (PCR). To optimize sample processing and extraction, seven water concentration methods, two water DNA extraction protocols, eight milk concentration methods, and nine milk DNA extraction protocols were compared. Water and milk were spiked with known amounts of bacteria, concentrated, and then subjected to DNA extraction and quantitative polymerase chain reaction (qPCR). For concentrating milk, centrifugation at 16,000×g for 20 min at room temperature using 1.5-mL samples yielded optimal results, while for water, the concentrating pipette approach was selected. For viability PCR, concentrated samples were treated with propidium monoazide (PMAxx) prior to DNA extraction. The results demonstrated exceptional linearity (0.992 to 0.999) and precision across various concentrations, with detection limits ranging from 3.75×102 to 4.54  CFU/mL for Shigella and 4.67×103 to 9.84×101  CFU/mL for Campylobacter. The assays had a within-run variance from 1.9% to 2.7% (repeatability) and between-run variance from 1.6% to 5.2% (reproducibility). The PMAxx-treated dead bacteria showed delayed cycle threshold (Ct) values compared to the viable bacteria, representing an inhibition of the detection of dead bacterial DNA by approximately 94% in milk and 99.6% in water. Viability PCR was successful in differentiating live from dead bacteria, offering a robust method for tracking the transmission of these pathogens in water and milk. These results support the application of viability PCR for more precise public health interventions. This research presents optimized laboratory methods for detecting viable Campylobacter and Shigella in water and raw cow milk, two common sources of infection in low-resource settings. These bacteria are major causes of diarrheal diseases, particularly among children, and can lead to severe health issues, including growth and developmental impairments. By using viability PCR (vPCR) with the enhanced dye PMAxx, the study differentiates between live and dead pathogens in environmental samples. This approach is significant for public health because it can pinpoint active transmission risks, allowing for more accurate assessment of contamination and risk. The ability to detect viable bacteria in water and milk could support targeted interventions and inform water, sanitation, and hygiene (WASH) initiatives where conventional methods fall short. Practitioners and policymakers could use these findings to improve health interventions and disease surveillance systems, ultimately helping to reduce the prevalence of these infections in vulnerable communities.
    publisherAmerican Society of Civil Engineers
    titleOptimization of Shigella and Campylobacter Detection from Milk and Water and Differentiation of Viable Organisms Using Viability PCR
    typeJournal Article
    journal volume151
    journal issue5
    journal titleJournal of Environmental Engineering
    identifier doi10.1061/JOEEDU.EEENG-7921
    journal fristpage04025021-1
    journal lastpage04025021-10
    page10
    treeJournal of Environmental Engineering:;2025:;Volume ( 151 ):;issue: 005
    contenttypeFulltext
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