English
 
Privacy Policy Disclaimer
  Advanced SearchBrowse

Item

 
 
DownloadE-Mail

Released

Journal Article

Contribution of climate change to the spatial expansion of West Nile virus in Europe

Authors

Erazo,  Diana
External Organizations;

Grant,  Luke
External Organizations;

Ghisbain,  Guillaume
External Organizations;

Marini,  Giovanni
External Organizations;

Colón-González,  Felipe J.
External Organizations;

Wint,  William
External Organizations;

Rizzoli,  Annapaola
External Organizations;

Van Bortel,  Wim
External Organizations;

Vogels,  Chantal B. F.
External Organizations;

Grubaugh,  Nathan D.
External Organizations;

/persons/resource/matthias.mengel

Mengel,  Matthias
Potsdam Institute for Climate Impact Research;

/persons/resource/Katja.Frieler

Frieler,  Katja
Potsdam Institute for Climate Impact Research;

Thiery,  Wim
External Organizations;

Dellicour,  Simon
External Organizations;

External Ressource
No external resources are shared
Fulltext (public)

30323oa.pdf
(Publisher version), 14MB

Supplementary Material (public)
There is no public supplementary material available
Citation

Erazo, D., Grant, L., Ghisbain, G., Marini, G., Colón-González, F. J., Wint, W., Rizzoli, A., Van Bortel, W., Vogels, C. B. F., Grubaugh, N. D., Mengel, M., Frieler, K., Thiery, W., Dellicour, S. (2024): Contribution of climate change to the spatial expansion of West Nile virus in Europe. - Nature Communications, 15, 1196.
https://doi.org/10.1038/s41467-024-45290-3


Cite as: https://publications.pik-potsdam.de/pubman/item/item_30323
Abstract
West Nile virus (WNV) is an emerging mosquito-borne pathogen in Europe where it represents a new public health threat. While climate change has been cited as a potential driver of its spatial expansion on the continent, a formal evaluation of this causal relationship is lacking. Here, we investigate the extent to which WNV spatial expansion in Europe can be attributed to climate change while accounting for other direct human influences such as land-use and human population changes. To this end, we trained ecological niche models to predict the risk of local WNV circulation leading to human cases to then unravel the isolated effect of climate change by comparing factual simulations to a counterfactual based on the same environmental changes but a counterfactual climate where long-term trends have been removed. Our findings demonstrate a notable increase in the area ecologically suitable for WNV circulation during the period 1901–2019, whereas this area remains largely unchanged in a no-climate-change counterfactual. We show that the drastic increase in the human population at risk of exposure is partly due to historical changes in population density, but that climate change has also been a critical driver behind the heightened risk of WNV circulation in Europe.