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Efficient Method for Imaging Murine Lungs that Preserves Spatial Dynamics of Fungal Spores in the Airways
Published on: December 13, 2024
Mobility and infectiousness in the spatial spread of an emerging fungal pathogen
Kate E Langwig1, J Paul White2, Katy L Parise3
1Department of Biological Sciences, Virginia Polytechnic Institute, Blacksburg, VA, USA.
Abstract:
Emerging infectious diseases can have devastating effects on host communities, causing population collapse and species extinctions. The timing of novel pathogen arrival into naïve species communities can have consequential effects that shape the trajectory of epidemics through populations. Pathogen introductions are often presumed to occur when hosts are highly mobile. However, spread patterns can be influenced by a multitude of other factors including host body condition and infectiousness. White-nose syndrome (WNS) is a seasonal emerging infectious disease of bats, which is caused by the fungal pathogen Pseudogymnoascus destructans. Within-site transmission of P. destructans primarily occurs over winter; however, the influence of bat mobility and infectiousness on the seasonal timing of pathogen spread to new populations is unknown. We combined data on host population dynamics and pathogen transmission from 22 bat communities to investigate the timing of pathogen arrival and the consequences of varying pathogen arrival times on disease impacts. We found that midwinter arrival of the fungus predominated spread patterns, suggesting that bats were most likely to spread P. destructans when they are highly infectious, but have reduced mobility. In communities where P. destructans was detected in early winter, one species suffered higher fungal burdens and experienced more severe declines than at sites where the pathogen was detected later in the winter, suggesting that the timing of pathogen introduction had consequential effects for some bat communities. We also found evidence of source-sink population dynamics over winter, suggesting some movement among sites occurs during hibernation, even though bats at northern latitudes were thought to be fairly immobile during this period. Winter emergence behaviour symptomatic of white-nose syndrome may further exacerbate these winter bat movements to uninfected areas. Our results suggest that low infectiousness during host migration may have reduced the rate of expansion of this deadly pathogen, and that elevated infectiousness during winter plays a key role in seasonal transmission. Furthermore, our results highlight the importance of both accurate estimation of the timing of pathogen spread and the consequences of varying arrival times to prevent and mitigate the effects of infectious diseases.
Insights
The timing of white-nose syndrome (WNS) introduction impacts bat populations. Midwinter arrival, when bats are most infectious, drives spread, with early introductions causing more severe declines.
Area of Science:
- Ecology
- Epidemiology
- Mycology
Background:
- Emerging infectious diseases cause significant ecological damage, including population collapse.
- The timing of pathogen introduction influences epidemic trajectory, especially in naive host communities.
- White-nose syndrome (WNS), caused by Pseudogymnoascus destructans, is a seasonal bat disease with unknown spread dynamics related to host behavior.
Purpose of the Study:
- To investigate the seasonal timing of Pseudogymnoascus destructans arrival in bat populations.
- To determine the consequences of varying pathogen arrival times on disease impacts.
- To understand the roles of bat mobility and infectiousness in seasonal WNS transmission.
Main Methods:
- Analysis of host population dynamics and pathogen transmission data from 22 bat communities.
- Investigating the correlation between pathogen detection timing and disease severity.
- Examining evidence of winter bat movements and source-sink dynamics.
Main Results:
- Midwinter arrival of Pseudogymnoascus destructans was predominant, indicating spread during periods of high host infectiousness and reduced mobility.
- Early winter introductions led to higher fungal burdens and more severe population declines in susceptible bat species.
- Evidence suggests winter bat movements occur, potentially exacerbated by WNS symptoms, contributing to disease spread.
Conclusions:
- Elevated infectiousness during winter is a key driver of seasonal Pseudogymnoascus destructans transmission.
- Low infectiousness during host migration may limit pathogen expansion.
- Accurate estimation of pathogen arrival timing is crucial for effective disease mitigation strategies.
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