Literature DB >> 18639355

A wind density model to quantify the airborne spread of Culicoides species during north-western Europe bluetongue epidemic, 2006.

Guy Hendrickx1, Marius Gilbert, Christoph Staubach, Armin Elbers, Koen Mintiens, Guillaume Gerbier, Els Ducheyne.   

Abstract

Increased transport and trade as well as climate shifts play an important role in the introduction, establishment and spread of new pathogens. Arguably, the introduction of bluetongue virus (BTV) serotype 8 in Benelux, Germany and France in 2006 is such an example. After its establishment in receptive local vector and host populations the continued spread of such a disease in a suitable environment will mainly depend on movement of infected vectors and animals. In this paper we explore how wind models can contribute to explain the spread of BTV in a temperate eco-climatic setting. Based on previous work in Greece and Bulgaria filtered wind density maps were computed using data from the European Centre for Medium-Range Weather Forecasts (ECMWF). Six hourly forward wind trajectories were computed at pressure levels of 850 hPa for each infected farm as from the recorded onset of symptoms. The trajectories were filtered to remove wind events that do not contribute to possible spread of the vector. The suitable wind events were rastered and aggregated on a weekly basis to obtain weekly wind density maps. Next to this, cumulated wind density maps were also calculated to assess the overall impact of wind dispersal of vectors. A strong positive correlation was established between wind density data and the horizontal asymmetrical spread pattern of the 2006 BTV8 epidemic. It was shown that short (<5 km), medium (5-31 km) and long (>31 km) distance spread had a different impact on disease spread. Computed wind densities were linked to the medium/long-distance spread whilst short range spread was mainly driven by active Culicoides flight. Whilst previous work in the Mediterranean basin showed that wind driven spread of Culicoides over sea occurred over distances of up to 700 km, this phenomenon was not observed over land. Long-distance spread over land followed a hopping pattern, i.e. with intermediary stops and establishment of local virus circulation clusters at distances of 35-85 km. Despite suitable wind densities, no long range spread was recorded over distances of 300-400 km. Factors preventing spread Eastwards to the UK and Northwards to Denmark during the 2006 epidemic are discussed. Towards the east both elevation and terrain roughness, causing air turbulences and drop down of Culicoides, were major factors restricting spread. It is concluded that the proposed approach opens new avenues for understanding the spread of vector-borne viruses in Europe. Future developments should take into consideration both physical and biological factors affecting spread.

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Year:  2008        PMID: 18639355     DOI: 10.1016/j.prevetmed.2008.06.009

Source DB:  PubMed          Journal:  Prev Vet Med        ISSN: 0167-5877            Impact factor:   2.670


  45 in total

1.  Three years of bluetongue disease in central Europe with special reference to Germany: what lessons can be learned?

Authors:  Helge Kampen; Doreen Werner
Journal:  Wien Klin Wochenschr       Date:  2010-10       Impact factor: 1.704

Review 2.  The arrival, establishment and spread of exotic diseases: patterns and predictions.

Authors:  Sarah E Randolph; David J Rogers
Journal:  Nat Rev Microbiol       Date:  2010-04-07       Impact factor: 60.633

3.  A new algorithm quantifies the roles of wind and midge flight activity in the bluetongue epizootic in northwest Europe.

Authors:  Luigi Sedda; Heidi E Brown; Bethan V Purse; Laura Burgin; John Gloster; David J Rogers
Journal:  Proc Biol Sci       Date:  2012-02-08       Impact factor: 5.349

4.  Combining dispersion modelling with synoptic patterns to understand the wind-borne transport into the UK of the bluetongue disease vector.

Authors:  Laura Burgin; Marie Ekström; Suraje Dessai
Journal:  Int J Biometeorol       Date:  2017-01-14       Impact factor: 3.787

5.  First record of autochthonous canine leishmaniasis in Hungary.

Authors:  Balázs Tánczos; Nándor Balogh; László Király; Imre Biksi; Levente Szeredi; Monika Gyurkovsky; Aldo Scalone; Eleonora Fiorentino; Marina Gramiccia; Róbert Farkas
Journal:  Vector Borne Zoonotic Dis       Date:  2012-05-18       Impact factor: 2.133

6.  Scientific Opinion on the assessment of the control measures of the category A diseases of Animal Health Law: African Horse Sickness.

Authors:  Søren Saxmose Nielsen; Julio Alvarez; Dominique Joseph Bicout; Paolo Calistri; Klaus Depner; Julian Ashley Drewe; Bruno Garin-Bastuji; José Luis Gonzales Rojas; Christian Gortázar Schmidt; Mette Herskin; Virginie Michel; Miguel Ángel Miranda Chueca; Paolo Pasquali; Helen Clare Roberts; Liisa Helena Sihvonen; Hans Spoolder; Karl Ståhl; Antonio Velarde; Arvo Viltrop; Christoph Winckler; Kris De Clercq; Eyal Klement; Jan Arend Stegeman; Simon Gubbins; Sotiria-Eleni Antoniou; Alessandro Broglia; Yves Van der Stede; Gabriele Zancanaro; Inma Aznar
Journal:  EFSA J       Date:  2021-02-03

7.  Characteristics of Wind-Infective Farms of the 2006 Bluetongue Serotype 8 Epidemic in Northern Europe.

Authors:  Luigi Sedda; David Morley; Heidi E Brown
Journal:  Ecohealth       Date:  2015-01-01       Impact factor: 3.184

Review 8.  Present and future arboviral threats.

Authors:  Scott C Weaver; William K Reisen
Journal:  Antiviral Res       Date:  2009-10-24       Impact factor: 5.970

Review 9.  Bluetongue in Europe: past, present and future.

Authors:  Anthony J Wilson; Philip S Mellor
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2009-09-27       Impact factor: 6.237

10.  A modeling framework to describe the transmission of bluetongue virus within and between farms in Great Britain.

Authors:  Camille Szmaragd; Anthony J Wilson; Simon Carpenter; James L N Wood; Philip S Mellor; Simon Gubbins
Journal:  PLoS One       Date:  2009-11-05       Impact factor: 3.240

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