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DNA-based methodologies for rapid detection, quantification, and species- or strain-level identification of
Jagjit S Yadav1, Izhar U H Khan, Farnaz Fakhari
1Molecular Toxicology Division, Department of Environmental Health, University of Cincinnati Medical Center, Cincinnati, Ohio, USA.
Abstract:
Mycobacteria and pseudomonads occurring in modern metalworking fluids (MWF) have been implicated in occupational health hazards as causal agents for hypersensitivity pneumonitis (HP) and other respiratory illnesses in machine workers exposed to these fluids and their aerosols. Unlike the conventional cultural and biochemical methods, which are often slow and ambiguous and detect only culturable cells, DNA-based methods offer a time-saving alternative for reliable detection and identification of both culturable and nonculturable bacteria in MWF and for selective quantification of individual genera of pathogens of interest in these fluids. This is the first report on DNA-based direct detection of mycobacteria and pseudomonads in MWF without culturing. Genus-specific PCR approach was successfully applied for screening of field MWF samples originating from different industrial users for detection of mycobacteria or pseudomonads including both culturable and nonculturable cells. PCR in combination with amplicon DNA sequencing led to the identification of Mycobacterium chelonae, Pseudomonas nitroreducens, and an undefined Pseudomonas species from these fluids. Genome fingerprinting by pulsed-field gel electrophoresis (PFGE) on Mycobacterium isolates further showed that the isolates represented three strains of M. chelonae although the possibility of one of the strains being clonal with M. immunogenum cannot be excluded. In parallel efforts, a quantitative competitive PCR method developed based on the Pseudomonas-specific PCR was applied to quantify total P. fluorescens cells in contaminated metalworking fluid and MWF aerosol without culturing. The DNA-based protocols developed in this study will allow rapid screening of field MWF samples for the presence of both culturable and nonculturable cells and thus facilitate effective fluid management and timely exposure assessment.
Insights
DNA-based methods rapidly detect Mycobacterium and Pseudomonas in metalworking fluids (MWF), identifying pathogens linked to worker respiratory illness. This approach surpasses slow traditional methods for effective fluid management and exposure assessment.
Area of Science:
- Environmental Microbiology
- Occupational Health
- Molecular Diagnostics
Background:
- Mycobacteria and pseudomonads in metalworking fluids (MWF) are linked to occupational respiratory diseases like hypersensitivity pneumonitis (HP).
- Traditional culture-based methods for detecting these bacteria in MWF are slow, ambiguous, and miss non-culturable cells.
Purpose of the Study:
- To develop and apply rapid, DNA-based methods for direct detection and identification of Mycobacterium and Pseudomonas in MWF.
- To quantify specific bacterial populations, such as Pseudomonas fluorescens, in MWF and aerosols without prior culturing.
Main Methods:
- Genus-specific PCR was used to screen field MWF samples for Mycobacterium and Pseudomonas.
- PCR coupled with DNA sequencing identified specific bacterial species.
- Quantitative competitive PCR was developed to measure Pseudomonas fluorescens levels in MWF and aerosols.
Main Results:
- Direct DNA detection identified Mycobacterium chelonae and two Pseudomonas species (P. nitroreducens and an undefined species) in MWF.
- Pulsed-field gel electrophoresis confirmed three strains of M. chelonae.
- Quantitative PCR successfully measured P. fluorescens in contaminated MWF and aerosols.
Conclusions:
- DNA-based protocols offer a rapid and reliable alternative to culture methods for detecting bacterial pathogens in MWF.
- These methods enable effective fluid management and timely assessment of worker exposure to hazardous aerosols.
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