Pathogenesis of West Nile Virus Lineage 2 in Domestic Geese after Experimental Infection

被引:7
作者
Reemtsma, Hannah [1 ]
Holicki, Cora M. [1 ]
Fast, Christine [1 ]
Bergmann, Felicitas [1 ]
Eiden, Martin [1 ]
Groschup, Martin H. [1 ]
Ziegler, Ute [1 ]
机构
[1] Friedrich Loeffler Inst, Fed Res Inst Anim Hlth, Inst Novel & Emerging Infect Dis, D-17493 Greifswald, Germany
来源
VIRUSES-BASEL | 2022年 / 14卷 / 06期
关键词
West Nile virus; lineage; 2; Germany; geese; pathogenesis; experimental infection; ANSER-ANSER-DOMESTICUS; NEW-YORK-CITY; SEROLOGIC EVIDENCE; CLIMATE-CHANGE; CARRION CROWS; OUTBREAK; BIRDS; TRANSMISSION; SUSCEPTIBILITY; ENCEPHALITIS;
D O I
10.3390/v14061319
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
West Nile virus (WNV) is an emerging infectious pathogen circulating between mosquitoes and birds but also infecting mammals. WNV has become autochthonous in Germany, causing striking mortality rates in avifauna and occasional diseases in humans and horses. We therefore wanted to assess the possible role of free-ranging poultry in the WNV transmission cycle and infected 15 goslings with WNV lineage 2 (German isolate). The geese were monitored daily and sampled regularly to determine viremia, viral shedding, and antibody development by molecular and serological methods. Geese were euthanized at various time points post-infection (pi). All infected geese developed variable degrees of viremia from day 1 to day 10 (maximum) and actively shed virus from days 2 to 7 post-infection. Depending on the time of death, the WN viral genome was detected in all examined tissue samples in at least one individual by RT-qPCR and viable virus was even re-isolated, except for in the liver. Pathomorphological lesions as well as immunohistochemically detectable viral antigens were found mainly in the brain. Furthermore, all of the geese seroconverted 6 days pi at the latest. In conclusion, geese are presumably not functioning as important amplifying hosts but are suitable sentinel animals for WNV surveillance.
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页数:20
相关论文
共 77 条
[1]   Limited efficacy of West Nile virus vaccines in large falcons (Falco spp.) [J].
Angenvoort, Joke ;
Fischer, Dominik ;
Fast, Christine ;
Ziegler, Ute ;
Eiden, Martin ;
Garcia de la Fuente, Jorge ;
Lierz, Michael ;
Groschup, Martin H. .
VETERINARY RESEARCH, 2014, 45
[2]  
Austin RJ, 2004, CAN VET J, V45, P117
[3]  
Bakonyi T, 2006, EMERG INFECT DIS, V12, P618
[4]   Direct (non-vector) transmission of West Nile virus in geese [J].
Banet-Noach, C ;
Simanov, L ;
Malkinson, M .
AVIAN PATHOLOGY, 2003, 32 (05) :489-494
[5]  
Beeman SP, 2022, J AM MOSQUITO CONTR, V38, P1, DOI [10.5487/j.amer.5487, 10.2987/21-7049]
[6]  
Bin H, 2001, ANN NY ACAD SCI, V951, P127
[7]   Comparative Pathology of West Nile Virus in Humans and Non-Human Animals [J].
Byas, Alex D. ;
Ebel, Gregory D. .
PATHOGENS, 2020, 9 (01)
[8]   The knowns and unknowns of West Nile virus in Europe: what did we learn from the 2018 outbreak? [J].
Camp, Jeremy V. ;
Nowotny, Norbert .
EXPERT REVIEW OF ANTI-INFECTIVE THERAPY, 2020, 18 (02) :145-154
[9]   Epidemiological survey of zoonotic pathogens in feral pigeons (Columba livia var. domestica) and sympatric zoo species in Southern Spain [J].
Cano-Terriza, David ;
Guerra, Rafael ;
Lecollinet, Sylvie ;
Cerda-Cuellar, Marta ;
Cabezon, Oscar ;
Almeria, Sonia ;
Garcia-Bocanegra, Ignacio .
COMPARATIVE IMMUNOLOGY MICROBIOLOGY AND INFECTIOUS DISEASES, 2015, 43 :22-27
[10]   Continued transmission of West Nile virus to humans in southeastern Romania, 1997-1998 [J].
Cernescu, C ;
Nedelcu, NI ;
Tardei, G ;
Ruta, S ;
Tsai, TF .
JOURNAL OF INFECTIOUS DISEASES, 2000, 181 (02) :710-712