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Bacterial Cooperation Causes Systematic Errors in Pathogen Risk Assessment due to the Failure of the Independent
Daniel M Cornforth1, Andrew Matthews2, Sam P Brown3
1Department of Molecular Biosciences, The University of Texas, Austin, Austin, Texas, United States of America.
Abstract:
The Independent Action Hypothesis (IAH) states that pathogenic individuals (cells, spores, virus particles etc.) behave independently of each other, so that each has an independent probability of causing systemic infection or death. The IAH is not just of basic scientific interest; it forms the basis of our current estimates of infectious disease risk in humans. Despite the important role of the IAH in managing disease interventions for food and water-borne pathogens, experimental support for the IAH in bacterial pathogens is indirect at best. Moreover since the IAH was first proposed, cooperative behaviors have been discovered in a wide range of microorganisms, including many pathogens. A fundamental principle of cooperation is that the fitness of individuals is affected by the presence and behaviors of others, which is contrary to the assumption of independent action. In this paper, we test the IAH in Bacillus thuringiensis (B.t), a widely occurring insect pathogen that releases toxins that benefit others in the inoculum, infecting the diamondback moth, Plutella xylostella. By experimentally separating B.t. spores from their toxins, we demonstrate that the IAH fails because there is an interaction between toxin and spore effects on mortality, where the toxin effect is synergistic and cannot be accommodated by independence assumptions. Finally, we show that applying recommended IAH dose-response models to high dose data leads to systematic overestimation of mortality risks at low doses, due to the presence of synergistic pathogen interactions. Our results show that cooperative secretions can easily invalidate the IAH, and that such mechanistic details should be incorporated into pathogen risk analysis.
Insights
The Independent Action Hypothesis (IAH) fails for Bacillus thuringiensis due to synergistic pathogen interactions. Cooperative behaviors invalidate IAH, impacting infectious disease risk assessments.
Area of Science:
- Microbiology
- Pathogen Ecology
- Mathematical Biology
Background:
- The Independent Action Hypothesis (IAH) assumes pathogens act independently, crucial for human infectious disease risk assessment.
- Experimental evidence for IAH in bacterial pathogens is limited, and cooperative microbial behaviors are increasingly recognized.
- Cooperation contradicts IAH by linking individual fitness to the presence and actions of others.
Purpose of the Study:
- To experimentally test the validity of the Independent Action Hypothesis (IAH) in the insect pathogen Bacillus thuringiensis (B.t).
- To investigate the role of cooperative toxin secretion in B.t. pathogenicity.
- To assess the impact of synergistic pathogen interactions on mortality risk estimations.
Main Methods:
- Experimental separation of Bacillus thuringiensis spores from secreted toxins.
- Dose-response analysis of B.t. spore-toxin interactions in Plutella xylostella.
- Evaluation of IAH dose-response models against empirical data.
Main Results:
- The IAH was invalidated in B.t. due to synergistic interactions between toxins and spores.
- B.t. toxins exhibited a synergistic effect on mortality, not compatible with independent action assumptions.
- IAH models overestimated low-dose mortality risks when applied to high-dose data, indicating significant pathogen cooperation.
Conclusions:
- Cooperative secretions by pathogens like B.t. can invalidate the Independent Action Hypothesis.
- Pathogen risk analysis must incorporate mechanistic details of cooperative behaviors.
- Rethinking IAH is essential for accurate infectious disease risk assessment, especially for food and water-borne pathogens.
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