Literature DB >> 35515335

Epidemiological analyses of African swine fever in the European Union: (September 2020 to August 2021).

Joaquín Vicente Baños, Anette Boklund, Andrey Gogin, Christian Gortázar, Vittorio Guberti, Georgina Helyes, Maria Kantere, Daniela Korytarova, Annick Linden, Marius Masiulis, Aleksandra Miteva, Ioana Neghirla, Edvins Oļševskis, Sasa Ostojic, Satran Petr, Christoph Staubach, Hans-Hermann Thulke, Arvo Viltrop, Grzegorz Wozniakowski, Alessandro Broglia, José Abrahantes Cortiñas, Sofie Dhollander, Lina Mur, Alexandra Papanikolaou, Yves Van der Stede, Gabriele Zancanaro, Karl Ståhl.   

Abstract

This report provides a descriptive analysis of the African swine fever (ASF) Genotype II epidemic in the affected Member States in the EU and two neighbouring countries for the period from 1 September 2020 to 31 August 2021. ASF continued to spread in wild boar in the EU, it entered Germany in September 2020, while Belgium became free from ASF in October 2020. No ASF outbreaks in domestic pigs nor cases in wild boar have been reported in Greece since February 2020. In the Baltic States, overall, there has been a declining trend in proportions of polymerase chain reaction (PCR)-positive samples from wild boar carcasses in the last few years. In the other countries, the proportions of PCR-positive wild boar carcasses remained high, indicating continuing spread of the disease. A systematic literature review revealed that the risk factors most frequently significantly associated with ASF in domestic pigs were pig density, low levels of biosecurity and socio-economic factors. For wild boar, most significant risk factors were related to habitat, socio-economic factors and wild boar management. The effectiveness of different control options in the so-named white zones, areas where wild boar densities have been drastically reduced to avoid further spread of ASF after a new introduction, was assessed with a stochastic model. Important findings were that establishing a white zone is much more challenging when the area of ASF incursion is adjacent to an area where limited control measures are in place. Very stringent wild boar population reduction measures in the white zone are key to success. The white zone needs to be far enough away from the affected core area so that the population can be reduced in time before the disease arrives and the timing of this will depend on the wild boar density and the required population reduction target in the white zone. Finally, establishing a proactive white zone along the demarcation line of an affected area requires higher culling efforts, but has a higher chance of success to stop the spread of the disease than establishing reactive white zones after the disease has already entered in the area.
© 2022 Wiley‐VCH Verlag GmbH & Co. KgaA on behalf of the European Food Safety Authority.

Entities:  

Keywords:  ASF; EU; control; domestic pigs; epidemiology; prevention; white zones; wild boar

Year:  2022        PMID: 35515335      PMCID: PMC9066549          DOI: 10.2903/j.efsa.2022.7290

Source DB:  PubMed          Journal:  EFSA J        ISSN: 1831-4732


  43 in total

1.  Spatial epidemiology of African swine fever: Host, landscape and anthropogenic drivers of disease occurrence in wild boar.

Authors:  Tomasz Podgórski; Tomasz Borowik; Magdalena Łyjak; Grzegorz Woźniakowski
Journal:  Prev Vet Med       Date:  2019-05-15       Impact factor: 2.670

2.  Statistical Exploration of Local Transmission Routes for African Swine Fever in Pigs in the Russian Federation, 2007-2014.

Authors:  T Vergne; A Gogin; D U Pfeiffer
Journal:  Transbound Emerg Dis       Date:  2015-07-20       Impact factor: 5.005

3.  Risk factors associated with occurrence of African swine fever outbreaks in smallholder pig farms in four districts along the Uganda-Kenya border.

Authors:  Noelina Nantima; Michael Ocaido; Emily Ouma; Jocelyn Davies; Michel Dione; Edward Okoth; Anthony Mugisha; Richard Bishop
Journal:  Trop Anim Health Prod       Date:  2015-01-24       Impact factor: 1.559

4.  Epidemiological analysis of the 2015-2017 African swine fever outbreaks in Estonia.

Authors:  Imbi Nurmoja; Kerli Mõtus; Maarja Kristian; Tarmo Niine; Katja Schulz; Klaus Depner; Arvo Viltrop
Journal:  Prev Vet Med       Date:  2018-10-09       Impact factor: 2.670

5.  A survey on biosecurity and management practices in Belgian pig herds.

Authors:  S Ribbens; J Dewulf; F Koenen; K Mintiens; L De Sadeleer; A de Kruif; D Maes
Journal:  Prev Vet Med       Date:  2007-09-11       Impact factor: 2.670

6.  Behaviour of free ranging wild boar towards their dead fellows: potential implications for the transmission of African swine fever.

Authors:  Carolina Probst; Anja Globig; Bent Knoll; Franz J Conraths; Klaus Depner
Journal:  R Soc Open Sci       Date:  2017-05-31       Impact factor: 2.963

7.  Spatiotemporal clustering and Random Forest models to identify risk factors of African swine fever outbreak in Romania in 2018-2019.

Authors:  Mathieu Andraud; Stéphanie Bougeard; Theodora Chesnoiu; Nicolas Rose
Journal:  Sci Rep       Date:  2021-01-22       Impact factor: 4.379

8.  Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement.

Authors:  David Moher; Alessandro Liberati; Jennifer Tetzlaff; Douglas G Altman
Journal:  PLoS Med       Date:  2009-07-21       Impact factor: 11.069

9.  Estimating the Postmortem Interval of Wild Boar Carcasses.

Authors:  Carolina Probst; Jörn Gethmann; Jens Amendt; Lena Lutz; Jens Peter Teifke; Franz J Conraths
Journal:  Vet Sci       Date:  2020-01-05

10.  Ecological drivers of African swine fever virus persistence in wild boar populations: Insight for control.

Authors:  Kim M Pepin; Andrew J Golnar; Zaid Abdo; Tomasz Podgórski
Journal:  Ecol Evol       Date:  2020-02-18       Impact factor: 2.912

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  2 in total

1.  Epidemiological analyses of African swine fever in the European Union: (September 2020 to August 2021).

Authors:  Joaquín Vicente Baños; Anette Boklund; Andrey Gogin; Christian Gortázar; Vittorio Guberti; Georgina Helyes; Maria Kantere; Daniela Korytarova; Annick Linden; Marius Masiulis; Aleksandra Miteva; Ioana Neghirla; Edvins Oļševskis; Sasa Ostojic; Satran Petr; Christoph Staubach; Hans-Hermann Thulke; Arvo Viltrop; Grzegorz Wozniakowski; Alessandro Broglia; José Abrahantes Cortiñas; Sofie Dhollander; Lina Mur; Alexandra Papanikolaou; Yves Van der Stede; Gabriele Zancanaro; Karl Ståhl
Journal:  EFSA J       Date:  2022-05-04

2.  First Report of a Complete Genome Sequence of a Variant African Swine Fever Virus in the Mekong Delta, Vietnam.

Authors:  Nguyen Duc Hien; Lam Thanh Nguyen; Le Trung Hoang; Nguyen Ngoc Bich; To My Quyen; Norikazu Isoda; Yoshihiro Sakoda
Journal:  Pathogens       Date:  2022-07-15
  2 in total

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