Literature DB >> 29102127

Transmission of African swine fever virus from infected pigs by direct contact and aerosol routes.

Ann Sofie Olesen1, Louise Lohse1, Anette Boklund2, Tariq Halasa2, Carmina Gallardo3, Zygmunt Pejsak4, Graham J Belsham1, Thomas Bruun Rasmussen1, Anette Bøtner5.   

Abstract

In 2014, African swine fever virus (ASFV) was introduced into the Baltic states and Poland. Since then, the disease has continued to spread within these regions, and recently, cases were reported in the Czech Republic and Romania. Currently, there is an increasing risk of ASFV introduction into Western Europe. Hence, there is an urgent need to assess current contingency plans. For this purpose, knowledge of modes-of-transmission and clinical outcome in pigs infected with new European ASFV strains is needed. In the present study, two experiments were conducted in pigs using an isolate of ASFV from Poland (designated here POL/2015/Podlaskie/Lindholm). In both studies, pigs were inoculated intranasally with the virus and contact pigs were exposed to the experimentally infected pigs, either directly (contact within and between pens) or by air. Pigs exposed to the virus by intranasal inoculation, by direct contact to infected animals and by aerosol developed acute disease characterized by viremia, fever and depression. Infectious virus was first detected in blood obtained from the inoculated pigs and then sequentially among the within-pen, between-pen and air-contact pigs. ASFV DNA and occasionally infectious virus was found in nasal-, oral-, and rectal swabs obtained from the pigs, and ASFV DNA was detected in air samples. No anti-ASFV antibodies were detected in sera. In conclusion, the study shows that the currently circulating strain of ASFV can be efficiently transmitted via direct contact and by aerosols. Also, the results provide quantitative transmission parameters and knowledge of infection stages in pigs infected with this ASFV.
Copyright © 2017 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  ASF; Air sampling; Haemorrhagic disease; Poland; Virus transmission

Mesh:

Substances:

Year:  2017        PMID: 29102127     DOI: 10.1016/j.vetmic.2017.10.004

Source DB:  PubMed          Journal:  Vet Microbiol        ISSN: 0378-1135            Impact factor:   3.293


  24 in total

1.  ASF Exit Strategy: Providing cumulative evidence of the absence of African swine fever virus circulation in wild boar populations using standard surveillance measures.

Authors:  Søren Saxmose Nielsen; Julio Alvarez; Dominique Joseph Bicout; Paolo Calistri; Klaus Depner; Julian Ashley Drewe; Bruno Garin-Bastuji; Jose Luis Gonzales Rojas; Christian Gortazar Schmidt; Mette Herskin; Virginie Michel; Miguel Ángel Miranda Chueca; Paolo Pasquali; Helen Clare Roberts; Liisa Helena Sihvonen; Hans Spoolder; Karl Stahl; Antonio Velarde; Christoph Winckler; José Cortiňas Abrahantes; Sofie Dhollander; Corina Ivanciu; Alexandra Papanikolaou; Yves Van der Stede; Sandra Blome; Vittorio Guberti; Federica Loi; Simon More; Edvins Olsevskis; Hans Hermann Thulke; Arvo Viltrop
Journal:  EFSA J       Date:  2021-03-03

2.  Emerging infectious diseases may spread across pig trade networks in Thailand once introduced: a network analysis approach.

Authors:  Anuwat Wiratsudakul; Phrutsamon Wongnak; Weerapong Thanapongtharm
Journal:  Trop Anim Health Prod       Date:  2022-06-10       Impact factor: 1.893

3.  African Swine Fever Outbreak Investigations-The Significance of Disease-Related Anecdotal Information Coming from Laypersons.

Authors:  Kristīne Lamberga; Felix Ardelean; Sandra Blome; Paulius Busauskas; Boban Djuric; Anja Globig; Vittorio Guberti; Aleksandra Miteva; Edvins Oļševskis; Mārtiņš Seržants; Arvo Viltrop; Laura Zani; Anna Zdravkova; Klaus Depner
Journal:  Pathogens       Date:  2022-06-17

4.  Development of A Super-Sensitive Diagnostic Method for African Swine Fever Using CRISPR Techniques.

Authors:  Meishen Ren; Hong Mei; Ming Zhou; Zhen F Fu; Heyou Han; Dingren Bi; Fuhu Peng; Ling Zhao
Journal:  Virol Sin       Date:  2021-01-07       Impact factor: 4.327

5.  African Swine Fever Virus - Persistence in Different Environmental Conditions and the Possibility of its Indirect Transmission.

Authors:  Natalia Mazur-Panasiuk; Jacek Żmudzki; Grzegorz Woźniakowski
Journal:  J Vet Res       Date:  2019-09-13       Impact factor: 1.744

Review 6.  African Swine Fever: Fast and Furious or Slow and Steady?

Authors:  Katja Schulz; Franz Josef Conraths; Sandra Blome; Christoph Staubach; Carola Sauter-Louis
Journal:  Viruses       Date:  2019-09-17       Impact factor: 5.048

Review 7.  African Swine Fever Virus: An Emerging DNA Arbovirus.

Authors:  Natasha N Gaudreault; Daniel W Madden; William C Wilson; Jessie D Trujillo; Juergen A Richt
Journal:  Front Vet Sci       Date:  2020-05-13

Review 8.  Current State of Global African Swine Fever Vaccine Development under the Prevalence and Transmission of ASF in China.

Authors:  Keke Wu; Jiameng Liu; Lianxiang Wang; Shuangqi Fan; Zhaoyao Li; Yuwan Li; Lin Yi; Hongxing Ding; Mingqiu Zhao; Jinding Chen
Journal:  Vaccines (Basel)       Date:  2020-09-15

9.  The impact of African swine fever virus on smallholder village pig production: An outbreak investigation in Lao PDR.

Authors:  Nina Matsumoto; Jarunee Siengsanan-Lamont; Tariq Halasa; James R Young; Michael P Ward; Bounlom Douangngeun; Watthana Theppangna; Syseng Khounsy; Jenny-Ann L M L Toribio; Russell D Bush; Stuart D Blacksell
Journal:  Transbound Emerg Dis       Date:  2021-07-07       Impact factor: 4.521

Review 10.  African Swine Fever: Disease Dynamics in Wild Boar Experimentally Infected with ASFV Isolates Belonging to Genotype I and II.

Authors:  Pedro J Sánchez-Cordón; Alejandro Nunez; Aleksija Neimanis; Emil Wikström-Lassa; María Montoya; Helen Crooke; Dolores Gavier-Widén
Journal:  Viruses       Date:  2019-09-13       Impact factor: 5.048

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