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An in vitro method for detecting infectious Cryptosporidium oocysts with cell culture
T R Slifko1, D Friedman, J B Rose
1Department of Marine Science, University of South Florida, St. Petersburg, USA. slifko@seas.marine.usf.edu
Abstract:
Current assay methods to detect Cryptosporidium oocysts in water are generally not able to evaluate viability or infectivity. A method was developed for low-level detection of infective oocysts by using HCT-8 cells in culture as hosts to C. parvum reproductive stages. The infective foci were detected by labeling intracellular developmental stages of the parasite in an indirect-antibody assay with a primary antibody specific for reproductive stages and a secondary fluorescein isothiocyanate-conjugated antibody. The complete assay was named the focus detection method (FDM). The infectious foci (indicating that at least one of the four sporozoites released from a viable oocyst had infected a cell) were enumerated by epifluorescence microscopy and confirmed under Nomarski differential interference contrast microscopy. Time series experiments demonstrated that the autoreinfective life cycle in host HCT-8 cells began after 12 h of incubation. Through dilution studies, levels as low as one infectious oocyst were detected. The cell culture FDM compared well to other viability assays. Vital stains and excystation demonstrated that oocyst populations less than 1% viable (by vital dyes) and having a low sporozoite yield following excystation could not infect host cells. Until now, the water industry has relied on an oocyst detection method (under an information collection regulation) that is unable to determine viability. The quantifiable results of the cell culture method described demonstrate two important applications: (i) an infectivity assay that may be used in conjunction with current U.S. Environmental Protection Agency-mandated detection methodologies, and (ii) a method to evaluate oocyst infectivity in survival and disinfection studies.
Insights
A new focus detection method (FDM) using cell cultures can now identify infectious Cryptosporidium oocysts in water. This viability assay offers a significant improvement over current methods for water quality monitoring.
Area of Science:
- Environmental microbiology
- Parasitology
- Cell biology
Background:
- Current methods for detecting Cryptosporidium oocysts in water lack the ability to assess viability or infectivity.
- This limitation hinders accurate risk assessment for waterborne cryptosporidiosis.
Purpose of the Study:
- To develop and validate a novel assay for detecting low levels of infectious Cryptosporidium oocysts in water.
- To provide a method that can evaluate oocyst infectivity for water quality and disinfection studies.
Main Methods:
- Developed a focus detection method (FDM) using HCT-8 cells as host cells for Cryptosporidium parvum.
- Detected infectious foci by labeling intracellular parasite stages using indirect-antibody assays and epifluorescence microscopy.
- Enumerated infectious foci and confirmed them using Nomarski differential interference contrast microscopy.
Main Results:
- The FDM successfully detected as few as one infectious oocyst through dilution studies.
- The autoreinfective life cycle within host cells was observed to begin after 12 hours of incubation.
- The FDM demonstrated comparable performance to existing viability assays, identifying non-infectious oocysts missed by vital stains.
Conclusions:
- The cell culture-based FDM provides a quantifiable measure of Cryptosporidium oocyst infectivity in water.
- This assay can complement existing EPA-mandated detection methods and is valuable for survival and disinfection studies.