H2020Individual fellowship2020–2022

SENTIMOUV · Spatial and demographic dynamics of disease transfer at the wildlife-human interface

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2020-01-01 → 2022-04-22
EU contribution
€196,708
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Spatial and demographic dynamics of disease transfer at the wildlife-human interface

Infectious diseases are a significant threat to public health, livestock production, and biodiversity conservation. Increasing human population densities, land use change, biodiversity loss, and climate change have accelerated the emergence and spread of new and existing diseases. Free-ranging wildlife populations, particuarly cosmopolitan wildlife species living in human-dominated habitats, act as reservoirs for the spread of disease and are key for predicting current and future disease dynamics. At the same time, wildlife populations in urban areas are often the targets of management actions due to perceived threats to human health, safety, and livelihoods. Since management can alter individual movements, energetic expenditure, and behavior, with effects on wildlife-pathogen interactions, a comprehensive understanding of wildlife-pathogen systems is key to selecting appropriate management actions. Due to their global distribution and wide-ranging movements, seabirds are important vectors for the spread of pathogens across continents and oceans. Generalist coastal seabirds, which exploit anthropogenic food sources, are particularly likely to interact with zoonotic pathogens, making them useful for monitoring disease prevalence. However, many factors mediating interactions between seabirds and pathogens remain unknown or poorly understood. The effects and duration of early-life exposure may play a key role in later disease states, but the dynamics of developmental exposure are complex. Subsequently, large-scale movement patterns, including migration, dispersal, and foraging, mediate exposure to infectious agents and may vary widely between individuals. Improved understanding of disease exposure across life stages and heterogeneous environments is required to understand disease dynamics in wide-ranging seabirds. Our study combined field study, laboratory analysis, and modeling to explore prevalence and transmission of zoonotic pathogens by brown skuas (Stercorarius antarcticus) and yellow-legged gulls (Larus michahellis), two scavenging and predatory seabirds that forage in marine and terrestrial environments and nest among other marine birds, making them key reservoirs for diease transmission and spread to avian and human populations. These complementary studies allowed us to describe exposure pathways and probabilities across individuals and life stages, evaluate spatial dynamics of adults, assess potential effects of management on local disease circulation, and develop guidelines for management and monitoring.

Data: CORDIS, © European Union

Project objective

Infectious diseases present a significant and growing threat to public health, domestic livestock production, and biodiversity conservation. Due to their global distribution and wide-ranging movements, seabirds are important vectors for the spread of pathogens across continents and ocean basins. Coastal seabirds, which associate with and exploit anthropogenic food sources, are particularly likely to interact with human-associated pathogens and zoonotic agents, making them useful candidates for monitoring disease prevalence. However, many factors mediating the interactions between seabirds and pathogens remain unknown or poorly understood. Our study will combine targeted field data collection, laboratory analysis, and quantitative modeling to develop a mechanistic understanding of the factors affecting prevalence and transmission of infectious diseases by seabirds at the wildlife-human interface. We will explore spatial and demographic factors affecting exposure and transmission rates for two key zoonotic diseases, toxoplasmosis and avian influenza, by a generalist coastal seabird, the yellow-legged gull (Larus michahellis) in the western Mediterranean basin. Within this study system, we will combine movement analysis using biologging, serological sampling, habitat and demographic analysis, and agent-based models to develop a comprehensive understanding of epidemiological dynamics. We will also use experimental studies to directly test the development of disease immunity in nestling birds and the effects of management actions on disease transfer. We will then apply scenario planning to study the effects of both management and habitat change on disease dynamics. Our results will not only improve understanding of gulls as vectors for infectious agents, but also provide a comprehensive quantitative framework for modeling disease dynamics that can be adapted to predicting and managing the spread of infectious disease at the wildlife-human interface.

Original text from CORDIS.

Participants

  • CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisCoordinatorFrance

Links

Data: CORDIS, © European Union