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A within-host infection model to explore tolerance and resistance
David Duneau1, Pierre D M Lafont2, Christine Lauzeral3
1The Queen's Medical Research Institute, University of Edinburgh, Edinburgh, United Kingdom.
Host survival depends on resistance and disease tolerance strategies. This study models infection dynamics, showing pathogen load predicts lifespan and helps differentiate tolerance from resistance effects in Drosophila.
Area of Science:
- Infectious disease dynamics
- Host-pathogen interactions
- Theoretical biology
Background:
- Host survival during infection hinges on balancing pathogen control (resistance) and damage mitigation (disease tolerance).
- Understanding the interplay between these strategies is crucial for predicting infection outcomes.
Purpose of the Study:
- To develop a theoretical model predicting within-host pathogen dynamics and host survival based on resistance and tolerance.
- To establish a method for empirically distinguishing the effects of resistance and disease tolerance.
Main Methods:
- A deterministic theoretical model simulating host-pathogen immune interactions was developed.
- The model predicts pathogen load dynamics, including Set-Point Pathogen Load (SPPL) and Pathogen Load Upon Death (PLUD).
- Empirical validation was performed using Drosophila melanogaster infected with Providencia rettgeri.
Main Results:
- The model predicts SPPL can transiently indicate lifespan or stably diagnose non-lethal infections.
- PLUD in lethal infections is largely independent of initial conditions and can differentiate resistance from tolerance.
- Empirical data supported model predictions, with wounded/deficient hosts showing higher PLUD and catalase mutants showing lower PLUD.
Conclusions:
- The developed model provides a framework for understanding infection outcomes based on resistance and tolerance.
- PLUD, in conjunction with mortality data, serves as a valuable metric to disentangle the distinct contributions of resistance and disease tolerance.
- This approach offers a novel way to study host defense strategies in empirical systems.
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