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Melissococcus plutonius Can Be Effectively and Economically Detected Using Hive Debris and Conventional PCR
Jana Biová1, Jean-Daniel Charrière2, Silvie Dostálková1
1Department of Biochemistry, Faculty of Science, Palacký University Olomouc, Šlechtitelů 27, 78371 Olomouc, Czech Republic.
Abstract:
European foulbrood (EFB) is an infectious disease of honey bees caused by the bacterium Melissococcus plutonius. A method for DNA isolation and conventional PCR diagnosis was developed using hive debris, which was non-invasively collected on paper sheets placed on the bottom boards of hives. Field trials utilized 23 honey bee colonies with clinically positive symptoms and 21 colonies without symptoms. Bayes statistics were applied to calculate the comparable parameters for EFB diagnostics when using honey, hive debris, or samples of adult bees. The reliability of the conventional PCR was 100% at 6.7 × 103 Colony Forming Unit of M. plutonius in 1 g of debris. The sensitivity of the method for the sampled honey, hive debris, and adult bees was 0.867, 0.714, and 1.000, respectively. The specificity for the tested matrices was 0.842, 0.800, and 0.833. The predictive values for the positive tests from selected populations with 52% prevalence were 0.813, 0.833, and 0.842, and the real accuracies were 0.853, 0.750, and 0.912, for the honey, hive debris, and adult bees, respectively. It was concluded that hive debris can effectively be utilized to non-invasively monitor EFB in honey bee colonies.
Insights
A new method uses hive debris to non-invasively detect European foulbrood (EFB), an infectious honey bee disease. This reliable DNA-based diagnostic approach offers an effective way to monitor colony health.
Area of Science:
- Apiculture and Bee Health
- Microbiology and Infectious Diseases
- Molecular Diagnostics
Background:
- European foulbrood (EFB) is a significant bacterial disease affecting honey bee colonies, caused by *Melissococcus plutonius*.
- Accurate and non-invasive diagnostic methods are crucial for managing EFB and maintaining honey bee populations.
- Current diagnostic approaches may require invasive sampling, potentially stressing colonies or leading to sample degradation.
Purpose of the Study:
- To develop and validate a DNA-based diagnostic method for European foulbrood using non-invasively collected hive debris.
- To compare the diagnostic performance of hive debris samples with traditional samples like honey and adult bees.
- To assess the reliability, sensitivity, specificity, and accuracy of the PCR-based method for EFB detection.
Main Methods:
- Development of a DNA isolation protocol and conventional PCR assay for *M. plutonius*.
- Non-invasive collection of hive debris using paper sheets on bottom boards.
- Field trials involving honey bee colonies with and without clinical EFB symptoms.
- Application of Bayes statistics to evaluate diagnostic parameters across different sample types (honey, hive debris, adult bees).
Main Results:
- The conventional PCR method demonstrated high reliability, with 100% accuracy at 6.7 × 10³ CFU/g of debris.
- Sensitivity and specificity varied by sample type: adult bees (1.000, 0.833), honey (0.867, 0.842), and hive debris (0.714, 0.800).
- Hive debris analysis showed high predictive values and real accuracies, comparable to other sample types, indicating its diagnostic potential.
Conclusions:
- Hive debris is a viable and effective matrix for the non-invasive monitoring of European foulbrood in honey bee colonies.
- The developed PCR method provides a reliable tool for early detection and management of EFB.
- Non-invasive sampling using hive debris offers a practical and less disruptive alternative for routine bee health surveillance.
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