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Published on: October 9, 2017
American foulbrood in a honeybee colony: spore-symptom relationship and feedbacks
Jörg G Stephan1,2, Joachim R de Miranda3, Eva Forsgren3
1Department of Ecology, Swedish University of Agricultural Sciences, 750 07, Uppsala, Sweden. jorg.stephan@slu.se.
Background:
The most severe bacterial disease of honeybees is American foulbrood (AFB). The epidemiology of AFB is driven by the extreme spore resilience, the difficulty of bees to remove these spores, and the considerable incidence of undetected spore-producing colonies. The honeybee collective defence mechanisms and their feedback on colony development, which involves a division of labour at multiple levels of colony organization, are difficult to model. To better predict disease outbreaks we need to understand the feedback between colony development and disease progression within the colony. We therefore developed Bayesian models with data from forty AFB-diseased colonies monitored over an entire foraging season to (i) investigate the relationship between spore production and symptoms, (ii) disentangle the feedback loops between AFB epidemiology and natural colony development, and (iii) discuss whether larger insect societies promote or limit within-colony disease transmission.
Results:
Rather than identifying a fixed spore count threshold for clinical symptoms, we estimated the probabilities around the relationship between spore counts and symptoms, taking into account modulators such as brood amount/number of bees and time post infection. We identified a decrease over time in the bees-to-brood ratio related to disease development, which should ultimately induce colony collapse. Lastly, two contrasting theories predict that larger colonies could promote either higher (classical epidemiological SIR-model) or lower (increasing spatial nest segregation and more effective pathogen removal) disease prevalence.
Conclusions:
AFB followed the predictions of the SIR-model, partly because disease prevalence and brood removal are decoupled, with worker bees acting more as disease vectors, infecting new brood, than as agents of social immunity, by removing infected brood. We therefore established a direct link between disease prevalence and social group size for a eusocial insect. We furthermore provide a probabilistic description of the relationship between AFB spore counts and symptoms, and how disease development and colony strength over a season modulate this relationship. These results help to better understand disease development within honeybee colonies, provide important estimates for further epidemiological modelling, and gained important insights into the optimal sampling strategy for practical beekeeping and honeybee research.
Insights
American foulbrood (AFB) in honeybees is difficult to model due to spore resilience and colony defenses. This study used Bayesian models to link spore counts to symptoms and understand disease progression, revealing worker bees act as vectors, increasing transmission in larger colonies.
Area of Science:
- Ecology
- Epidemiology
- Entomology
Background:
- American foulbrood (AFB) is a severe bacterial disease in honeybees.
- AFB epidemiology is complex, influenced by resilient spores, bee removal difficulties, and undetected infected colonies.
- Modeling honeybee collective defense mechanisms and their impact on colony development is challenging.
Purpose of the Study:
- To investigate the relationship between spore production and clinical symptoms of AFB.
- To disentangle feedback loops between AFB epidemiology and natural colony development.
- To assess whether larger insect societies influence within-colony disease transmission.
Main Methods:
- Developed Bayesian models using data from forty AFB-diseased honeybee colonies.
- Monitored colonies over an entire foraging season.
- Analyzed spore counts, clinical symptoms, brood amount, bee population, and time post-infection.
Main Results:
- Established a probabilistic relationship between AFB spore counts and symptoms, modulated by colony factors and time.
- Observed a decrease in the bees-to-brood ratio over time, indicating disease progression towards colony collapse.
- Found that AFB followed SIR-model predictions, with worker bees acting as vectors rather than agents of social immunity.
Conclusions:
- Linked disease prevalence directly to social group size in honeybees.
- Provided a probabilistic model for AFB spore counts and symptoms, crucial for epidemiological modeling.
- Offered insights into optimal sampling strategies for beekeeping and honeybee research.
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