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Parameters affecting polymerase chain reaction detection of waterborne Cryptosporidium parvum oocysts
S D Sluter1, S Tzipori, G Widmer
1Department of Biology and Biotechnology, Worcester Polytechnic Institute, MA 01609, USA.
Abstract:
Cryptosporidium parvum is an enteric protozoan parasite of medical and veterinary importance. Dissemination of environmentally resistant oocysts in surface water plays an important role in the epidemiology of cryptospridiosis. Although the polymerase chain reaction (PCR) is a well-established technique and is widely used for detecting microorganisms, it is not routinely applied for monitoring waterborne C. parvum. In order to facilitate the application of PCR to the detection of waterborne C. parvum oocysts, a comparison of published PCR protocols was undertaken and different sample-preparation methods tested. The sensitivity of a one-step PCR method, consisting of 40 temperature cycles, was 10 purified oocysts or fewer than 100 oocysts spiked in raw lake water. The detection limit of two primer pairs, one targeting the ribosomal small subunit and another specific for a C. parvum sequence of unknown function, was approximately ten-fold lower than achieved with a primer pair targeting an oocyst shell protein gene. Three cycles of freezing/thawing were sufficient to expose oocyst DNA and resulted in higher sensitivity than proteinase K digestion, sonication or electroporation. Inhibition of PCR by surface water from different local sources was entirely associated with the soluble fraction of lake water. Membrane filtration was evaluated in bench-scale experiments as a means of removing lake water inhibitors and improving the detection limit of PCR. Using gel and membrane filtration, the molecular size of inhibitory solutes from lake water was estimated to less than 27 kDa.
Insights
This study optimized Polymerase Chain Reaction (PCR) for detecting Cryptosporidium parvum oocysts in water. Freezing/thawing and membrane filtration improved sensitivity and overcame water-based inhibition, aiding water quality monitoring.
Area of Science:
- Environmental microbiology
- Molecular biology
- Parasitology
Background:
- Cryptosporidium parvum oocysts in water are a significant public health concern.
- Current methods for detecting waterborne C. parvum using Polymerase Chain Reaction (PCR) are not routine.
- Optimizing PCR protocols is crucial for effective water quality monitoring.
Purpose of the Study:
- To compare published PCR protocols for detecting waterborne C. parvum oocysts.
- To evaluate different sample preparation methods for improved PCR sensitivity.
- To identify and mitigate PCR inhibitors present in surface water.
Main Methods:
- A one-step PCR method with 40 temperature cycles was optimized.
- Sensitivity was tested using purified and spiked oocysts in raw lake water.
- Sample preparation methods included freezing/thawing, proteinase K digestion, sonication, and electroporation.
- Membrane filtration was used to remove PCR inhibitors from lake water.
Main Results:
- The optimized PCR method detected fewer than 100 C. parvum oocysts in spiked lake water.
- Freezing/thawing cycles enhanced DNA accessibility and PCR sensitivity more than other methods.
- Inhibitory substances in lake water were primarily soluble and less than 27 kDa.
- Membrane filtration effectively removed inhibitors, improving PCR detection limits.
Conclusions:
- Optimized PCR protocols, particularly using freezing/thawing for sample preparation, enhance C. parvum detection in water.
- Membrane filtration is a viable method for removing waterborne PCR inhibitors.
- These improvements facilitate routine molecular monitoring of water for C. parvum contamination.