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African swine fever: Why the situation in Germany is not comparable to that in the Czech Republic or Belgium

. 2022 Jul ; 69 (4) : 2201-2208. [epub] 20210722

Language English Country Germany Media print-electronic

Document type Journal Article

After the first occurrence of African swine fever (ASF) in Germany in September 2020, control measures were implemented that resembled those taken in the Czech Republic and Belgium, the only two countries that succeeded in eliminating ASF from their territory so far in the current epidemic. In the present study, the epidemiological course of ASF in the first 6 months since introduction in these three countries is compared. Within 6 months, Germany experienced more cases than the Czech Republic and Belgium. The affected area in Germany, measured using minimal convex polygons, is much larger than the respective areas in the Czech Republic and in Belgium. All cases in the Czech Republic and in Belgium clustered in one single defined area, suggesting point-source introductions, whereas in Germany four distinct spatial clusters were observed, which indicates that multiple incursions had occurred along the border with Poland. While the overall course of the disease was comparable, when individual clusters were considered, the summarized data showed clear differences between the situation in Germany compared to that in the Czech Republic and Belgium. Germany experienced several independent introductions, caused by continuous infection pressure along the border to Poland, while the infection was only introduced on a single occasion each into the Czech Republic and Belgium. These differences may require appropriate adaptation of control measures, in particular concerning fencing along the border.

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Anderson, D. J. (1982). The home range: A new nonparametric estimation technique. Ecology, 63, 103-112.

Boyle, S. A., Lourenço, W. C., da Silva, L. R., & Smith, A. T. (2009). Home range estimates vary with sample size and methods. Folia Primatologica; International Journal of Primatology, 80, 33-42.

Dellicour, S., Desmecht, D., Paternostre, J., Malengreaux, C., Licoppe, A., Gilbert, M., & Linden, A. (2020). Unravelling the dispersal dynamics and ecological drivers of the African swine fever outbreak in Belgium. Journal of Applied Ecology, 57, 1619-1629.

European Food Safety Authority. (2015). Scientific opinion on African swine fever. EFSA Journal, 13(7), 92.

Federal Agency for the Safety of the Food Chain Belgium. (2018). African swine fever in wild boar in Belgium. https://ec.europa.eu/food/sites/food/files/animals/docs/reg-com_ahw_20180919_pres_asf_bel.pdf

Food and Agriculture Organization of the United Nations, World Organisation for Animal Health and European Commission. (2019). African swine fever in wild boar ecology and biosecurity. FAO.

Frant, M., Lyjak, M., Bocian, L., Barszcz, A., Niemczuk, K., & Wozniakowski, G. (2020). African swine fever virus (ASFV) in Poland: Prevalence in a wild boar population (2017-2018). Veterinarni Medicina, 65, 143-158.

Hijmans, R. J., Williams, E., & Vennes, C. (2019). Package ‘Geosphere’-Spherical trigonometry, version 1.5-10, 25.05.2019. https://cran.r-project.org/web/packages/geosphere/geosphere.pdf

Kassambara, A. (2017). Practical guide to clusster analysis in R-Unsupervisded machine learning. STHDA.

Keitt, T. H., Bivand, R., Pebesma, E., & Rowlingson, B. (2010). Rgdal: Bindings for the geospatial data abstraction library. http://www.tinyurl.com/h8w8n29

Kumbhojkar, S., Yosef, R., Mehta, A., & Rakholia, S. (2020). A camera-trap home-range analysis of the Indian leopard (Panthera Pardus Fusca) in Jaipur, India. Animals, 10, 1600.

Linden, A., Licoppe, A., Volpe, R., Paternostre, J., Lesenfants, C., Cassart, D., Garigliany, M., Tignon, M., van den Berg, T., Desmecht, D., & Cay, A. B. (2019). Summer 2018: African swine fever virus hits north-western Europe. Transboundary and Emerging Diseases, 66, 54-55.

Marcon, A., Linden, A., Satran, P., Gervasi, V., Licoppe, A., & Guberti, V. (2020). R-0 Estimation for the African swine fever epidemics in wild boar of Czech Republic and Belgium. Veterinary Sciences, 7, 2.

Mazur-Panasiuk, N., Walczak, M., Juszkiewicz, M., & Woźniakowski, G. (2020). The spillover of African swine fever in western poland revealed its estimated origin on the basis of O174l, K145r, Mgf 505-5r and Igr I73r/I329l genomic sequences. Viruses, 12, 1094.

Nurmoja, I., Schulz, K., Staubach, C., Sauter-Louis, C., Depner, K., Conraths, F. J., & Viltrop, A. (2017). Development of African swine fever epidemic among wild boar in Estonia-Two different areas in the epidemiological focus. Scientific Reports, 7, 12562.

Oļševskis, E., Guberti, V., Serzants, M., Westergaard, J., Gallardo, C., Rodze, I., & Depner, K. (2016). African swine fever virus introduction into the EU in 2014: Experience of Latvia. Research in Veterinary Science, 105, 28-30.

Pebesma, E. J., & Bivand, R. S. (2005). Classes and methods for spatial data in R. R News, 5, 9-13.

Pejsak, Z., Niemczuk, K., Frant, M., Mazur, M., Pomorska-Mol, M., Zietek-Barszcz, A., Bocian, L., Lyjak, M., Borowska, D., & Wozniakowski, G. (2018). Four years of African swine fever in Poland. New insights into epidemiology and prognosis of future disease spread. Polish Journal of Veterinary Sciences, 21, 835-841.

Pejsak, Z., Truszczynski, M., Niemczuk, K., Kozak, E., & Markowska-Daniel, I. (2014). Epidemiology of African swine fever in poland since the detection of the first case. Polish Journal of Veterinary Sciences, 17, 665-672.

Penrith, M. L., Thomson, G. R., & Bastos, A. D. S. (2004). African swine fever (2nd ed.). Oxford University Press.

Podgorski, T., Bas, G., Jedrzejewska, B., Sonnichsen, L., Sniezko, S., Jedrzejewski, W., & Okarma, H. (2013). Spatiotemporal behavioral plasticity of wild boar (Sus Scrofa) under contrasting conditions of human pressure: Primeval forest and metropolitan area. Journal of Mammalogy, 94, 109-119.

Probst, C., Gethmann, J., Hohmann, U., Knoll, B., Amendt, J., Teifke, J. P. and Conraths, F. J. (2020). Zersetzungsstadien Bei Wildschweinkadavern-Und Wie Die Liegezeit Geschätzt Werden Kann. Amtstierärztlicher Dienst und Lebensmittelkontrolle, 27, 85-94.

R Core Team. (2017). R: A language and environment for statistical computing. R Foundation for Statistical Computing.

Rowlands, R. J., Michaud, V., Heath, L., Hutchings, G., Oura, C., Vosloo, W., Dwarka, R., Onashvili, T., Albina, E., & Dixon, L. K. (2008). African swine fever virus isolate, Georgia, 2007. Emerging Infectious Diseases, 14, 1870-1874.

Saegerman, C. (2018). Découverte Inattendue De La Peste Porcine Africaine En Belgique. Épidémiol. et santé anim, 73, 147-164.

Šatrán, P. (2019). From ASF infection in wild boar to eradication and free status recovery in the Czech Republic. Prague, Czech Republic.

Sauter-Louis, C., Forth, J. H., Probst, C., Staubach, C., Hlinak, A., Rudovsky, A., Holland, D., Schlieben, P., Göldner, M., Schatz, J., Bock, S., Fischer, M., Schulz, K., Homeier-Bachmann, T., Plagemann, R., Klaaß, U., Marquart, R., Mettenleiter, T. C., Beer, M., … Blome, S. (2020). Joining the club: First detection of African swine fever in wild boar in Germany. Transboundary Emerging Diseases, 00, 1-9.

Smietanka, K., Wozniakowski, G., Kozak, E., Niemczuk, K., Fraczyk, M., Bocian, L., Kowalczyk, A., & Pejsak, Z. (2016). African swine fever epidemic, Poland, 2014-2015. Emerging Infectious Diseases, 22, 1201-1207.

Wickham, H. (2016). Ggplot2: Elegant graphics for data analysis. Springer-Verlag.

World Organisation for Animal Health. (2020). African swine fever. https://www.oie.int/en/animal-health-in-the-world/animal-diseases/african-swine-fever

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