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Author Spotlight: Leptospira DNA Detection in Water for Environmental Analysis and Disease Surveillance
Published on: June 14, 2024
Seeking the environmental source of Leptospirosis reveals durable bacterial viability in river soils
Roman Thibeaux1, Sophie Geroult1, Claire Benezech1
1Institut Pasteur in New Caledonia, Institut Pasteur International Network, Leptospirosis Research and Expertise Unit, Noumea, New Caledonia.
Background:
Leptospirosis is an important re-emerging infectious disease that affects humans worldwide. Infection occurs from indirect environment-mediated exposure to pathogenic leptospires through contaminated watered environments. The ability of pathogenic leptospires to persist in the aqueous environment is a key factor in transmission to new hosts. Hence, an effort was made to detect pathogenic leptospires in complex environmental samples, to genotype positive samples and to assess leptospiral viability over time.
Methodology/Principal Findings:
We focused our study on human leptospirosis cases infected with the New Caledonian Leptospira interrogans serovar Pyrogenes. Epidemiologically related to freshwater contaminations, this strain is responsible for ca. 25% of human cases in New Caledonia. We screened soil and water samples retrieved from suspected environmental infection sites for the pathogen-specific leptospiral gene lipL-32. Soil samples from all suspected infection sites tested showed detectable levels of pathogenic leptospiral DNA. More importantly, we demonstrated by viability qPCR that those pathogenic leptospires were viable and persisted in infection sites for several weeks after the index contamination event. Further, molecular phylogenetic analyses of the leptospiral lfb-1 gene successfully linked the identity of environmental Leptospira to the corresponding human-infecting strain.
Conclusions/Significance:
Altogether, this study illustrates the potential of quantitative viability-PCR assay for the rapid detection of viable leptospires in environmental samples, which might open avenues to strategies aimed at assessing environmental risk.
Insights
Pathogenic Leptospira bacteria were detected in environmental samples, confirming their viability and persistence for weeks. This finding aids in assessing environmental risks associated with leptospirosis transmission.
Area of Science:
- Environmental microbiology
- Infectious disease epidemiology
- Molecular diagnostics
Background:
- Leptospirosis is a re-emerging global infectious disease transmitted through contaminated water.
- Pathogenic leptospires' persistence in aquatic environments is crucial for disease transmission.
- Understanding environmental reservoirs is key to controlling leptospirosis.
Purpose of the Study:
- To detect pathogenic leptospires in environmental samples.
- To genotype detected leptospiral strains.
- To assess the viability and persistence of leptospires in the environment.
Main Methods:
- Screening of soil and water samples for the pathogen-specific leptospiral gene lipL-32.
- Utilizing quantitative viability PCR (qPCR) to assess bacterial viability.
- Employing molecular phylogenetic analyses of the lfb-1 gene for strain identification.
Main Results:
- Pathogenic leptospiral DNA was detected in all tested soil samples from suspected infection sites.
- Viability qPCR confirmed that leptospires remained viable for several weeks post-contamination.
- Phylogenetic analysis successfully linked environmental Leptospira strains to human-infecting strains.
Conclusions:
- Quantitative viability-PCR is a valuable tool for rapid detection of viable leptospires.
- The study demonstrates leptospiral persistence in environmental infection sites.
- Findings support enhanced environmental risk assessment strategies for leptospirosis.
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