Classical swine fever outbreak containment using antiviral supplementation: A potential alternative to emergency vaccination and stamping-out

被引:16
作者
Ribbens, S. [1 ]
Goris, N. [2 ]
Neyts, J. [3 ]
Dewulf, J. [1 ]
机构
[1] Univ Ghent, Fac Vet Med, Dept Obstet Reprod & Herd Hlth, Unit Vet Epidemiol, B-9820 Merelbeke, Belgium
[2] Okapi Sci NV, B-3001 Heverlee, Belgium
[3] Katholieke Univ Leuven, Dept Microbiol & Immunol, Rega Inst Med Res, B-3000 Louvain, Belgium
关键词
Classical swine fever; Stochastic model; Antiviral; Control strategy; Vaccination; REDUCING HORIZONTAL TRANSMISSION; EXPERIMENTAL-INFECTION; WILD-BOAR; STOCHASTIC SIMULATION; VIRUS; EPIDEMIC; DISEASE; NETHERLANDS; PIGS; STRATEGIES;
D O I
10.1016/j.prevetmed.2012.03.002
中图分类号
S85 [动物医学(兽医学)];
学科分类号
0906 ;
摘要
Classical swine fever (CSF) outbreaks may result in huge economic losses to countries with densely populated pig areas (DPLAs). The EU minimum control measures require depopulation of infected farms, movement restrictions, zoning and surveillance (EU Minimum strategy). Emergency vaccination is authorised for DPLAs although the EU Minimum strategy plus culling in a 1-km ring around infected premises is preferred. Nonetheless, vaccination in a 2-km ring has been found equally effective as 1-km ring culling using stochastic modelling. Alternatives control measures (e.g. antiviral agents, in particular small molecule inhibitors of the CSFV replication) are being explored. Hence, the present study was set up to simulate inter-herd CSFV spread when antiviral molecules are supplemented to pig feed in a 1-km ring around infected farms. The effectiveness of the antiviral strategy for containing CSF outbreaks was compared to six other control scenarios including the EU Minimum strategy, the EU preferred policy for DPLAs and the use of 2-km ring vaccination. The InterSpread Plus model was adapted to the 2006 Belgian pig population and outbreak simulations were performed with a fast spreading CSFV strain entering a DPLA in Belgium. Four out of the seven control strategies resulted in outbreaks that were controlled by the end of the simulation period (i.e. 365 days). The distributions of the number of infected herds and the duration of the predicted outbreaks for these four control strategies were not different. This is the first report investigating CSF outbreak containment using antiviral molecules. Although antiviral supplementation was not found to perform any better than some other conventional strategies, such as pre-emptive culling and emergency vaccination, it might be worthwhile considering it further as additional tool in a response to CSF outbreaks. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:34 / 41
页数:8
相关论文
共 33 条
[1]   Modelling the effectiveness and risks of vaccination strategies to control classical swine fever epidemics [J].
Backer, Jantien A. ;
Hagenaars, Thomas J. ;
van Roermund, Herman J. W. ;
de Jong, Mart C. M. .
JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2009, 6 (39) :849-861
[2]   Simulating the spread of classical swine fever virus between a hypothetical wild-boar population and domestic pig herds in Denmark [J].
Boklund, A. ;
Goldbach, S. G. ;
Uttenthal, A. ;
Alban, L. .
PREVENTIVE VETERINARY MEDICINE, 2008, 85 (3-4) :187-206
[3]   Comparing the epidemiological and economic effects of control strategies against classical swine fever in Denmark [J].
Boklund, A. ;
Toft, N. ;
Alban, L. ;
Uttenthal, A. .
PREVENTIVE VETERINARY MEDICINE, 2009, 90 (3-4) :180-193
[4]   Determination of the onset of the herd-immunity induced by the E2 sub-unit vaccine against classical swine fever virus [J].
Bouma, A ;
De Smit, AJ ;
De Jong, MCM ;
De Kluijver, EP ;
Moormann, RJM .
VACCINE, 2000, 18 (14) :1374-1381
[5]   Efficacy of E2-sub-unit marker and C-strain vaccines in reducing horizontal transmission of classical swine fever virus in weaner pigs [J].
Dewulf, J ;
Laevens, H ;
Koenen, F ;
Mintiens, K ;
de Kruif, A .
PREVENTIVE VETERINARY MEDICINE, 2004, 65 (3-4) :121-133
[6]   An experimental infection with classical swine fever virus in pregnant sows: Transmission of the virus, course of the disease, antibody response and effect on gestation [J].
Dewulf, J ;
Laevens, H ;
Koenen, F ;
Mintiens, K ;
De Kruif, A .
JOURNAL OF VETERINARY MEDICINE SERIES B-INFECTIOUS DISEASES AND VETERINARY PUBLIC HEALTH, 2001, 48 (08) :583-591
[7]  
Dewulf J, 2000, VET REC, V147, P735
[8]  
Dewulf J., 2005, P C SOC VET EP PREV, P68
[9]   Efficacy of intradermally administrated E2 subunit vaccines in reducing horizontal transmission of classical swine fever virus [J].
Dortmans, J. C. F. M. ;
Loeffen, W. L. A. ;
Weerdmeester, K. ;
van der Poel, W. H. M. ;
de Bruin, M. G. M. .
VACCINE, 2008, 26 (09) :1235-1242
[10]   The classical swine fever epidemic 1997-1998 in the Netherlands: descriptive epidemiology [J].
Elbers, ARW ;
Stegeman, A ;
Moser, H ;
Ekker, HM ;
Smak, JA ;
Pluimers, FH .
PREVENTIVE VETERINARY MEDICINE, 1999, 42 (3-4) :157-184