Acta Vet. Brno 2018, 87: 19-26
https://doi.org/10.2754/avb201887010019
Genetic characterisation of small ruminant lentiviruses in sheep and goats from the Czech Republic
References
1. 2006: PCR detection of colostrumassociated Maedi-Visna virus (MVV) infection and relationship with ELISA-antibody status in lambs. Res Vet Sci 80: 226-34
< V, Daltabuit-Test M, Arranz J, Leginagoikoa I, Juste RA, Amorena B, de Andres D, Lujan L, Badiola JJ, Berriatua E https://doi.org/10.1016/j.rvsc.2005.05.008>
2. 2017: Prevalence of lentiviral diseases in small ruminants in the Czech Republic with the use of serologic diagnostic. Veterinářství 67: 227-232
P, Václavek P, Kostková M, Mikulášková K, Šimek B
3. 2004: Transmission of small ruminant lentiviruses. Vet Microbiol 101: 199-208
< BA, Berriatua E, Torsteinsdottir S, Watt NJ, de Andres D, Klein D, Harkiss GD https://doi.org/10.1016/j.vetmic.2004.04.006>
4. Celer V 1997: Diagnostic use of structural proteins of the Maedi-Visna virus (in Czech). Dissertation, University of Veterinary and Pharmaceutical Sciences Brno
5. 1997: Isolation and partial characterization of ovine lentivirus in the Czech Republic. Folia Microbiol (Praha) 42: 395-399
< V Jr, Nĕmcová H, Celer V https://doi.org/10.1007/BF02816956>
6. 2000: The detection of proviral DNA by semi-nested polymerase chain reaction and phylogenetic analysis of Czech Maedi-Visna isolates based on gag gene sequences. J Vet Med B Infect Dis Vet Public Health 47: 203-215
< V Jr, Celer V, Nejedlá E, Bertoni G, Peterhans E, Zanoni RG https://doi.org/10.1046/j.1439-0450.2000.00330.x>
7. 2005: Diagnostic test for small ruminat lentiviruses. Vet Microbiol 107: 49-62
< D, Klein D, Watt NJ, Berriatu A E, Torsteinsdottir S, Blacklaws BA, Harkiss GD https://doi.org/10.1016/j.vetmic.2005.01.012>
8. 2006: Distribution and heterogeneity of small ruminant lentivirus envelope subtypes in naturally infected French sheep. Virus Res 120: 156-162
< K, Valas S https://doi.org/10.1016/j.virusres.2006.03.002>
9. 2012: Viral evolution in deep time: Lentiviruses and mammals. Trends Genet 28: 89-100
< RJ https://doi.org/10.1016/j.tig.2011.11.003>
10. 2007: Natural transmission and comparative analysis of small ruminant lentiviruses in the Norwegian sheep and goat populations. Virus Res 125: 153-156
< B, Jonassen CM, Rimstad E https://doi.org/10.1016/j.virusres.2006.12.014>
11. 2007:Genetic characterization of small ruminant lentivirus in Italian mixed flocks: evidence for a novel genotype circulating in a local goat population. J Gen Virol 88: 3423-3427
< E, Bertolotti L, Quasso A, Profiti M, Lacerenza D, Muz D, Rosati S https://doi.org/10.1099/vir.0.83292-0>
12. 1999: “BioEdit: a user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT”. Nucl Acids Symp Ser 41: 95-98
TA
13. 2016: MEGA7: Molecular Evolutionary Genetics Analysis version 7.0 for bigger datasets. Mol Biol Evol 33: 1870-1874
< S, Stecher G, and Tamura K https://doi.org/10.1093/molbev/msw054>
14. 2011: Molecular characterization and phylogenetic analysis of small ruminant lentiviruses isolated from Canadian sheep and goats. Virol J 8: 271
< Y, Ouardani M, Lévesque V, Bertoni G, Simard C, Pisoni G https://doi.org/10.1186/1743-422X-8-271>
15. 1997: Genomic heterogeneity of small ruminant lentiviruses: Existence of heterogeneous populations in sheep and of the same lentiviral genotypes in sheep and goats. Arch Virol 142: 1125-1137
< C, Chastang, J, Greenland T, Mornex JF https://doi.org/10.1007/s007050050147>
16. 1983: Activation of caprine arthritis-encephalitis virus expression during maturation of monocytesto macrophages. Infect Immun 41: 67-73
O, Kennedy-Stoskopf S, Sheffer D, Griffin DE, Clements JE
17. 1989: Biology and pathogenesis of lentiviruses. J Gen Virol 70: 1617-1639
< O, Clements JE https://doi.org/10.1099/0022-1317-70-7-1617>
18. Nei M, Kumar S 2000: Molecular Evolution and Phylogenetics. Oxford University Press, New York
19. 1998: Maedi-visna virus infection in sheep: a review. Vet Res 29: 341-367
M, Vitu C, Russo P, Mornex JF, Peterhans E
20. 2005: Phylogenetic analysis of the gag region encoding the matrix protein of small ruminant lentiviruses: comparative analysis and molecular epidemiological applications. Virus Res 116: 159-167
< G, Bertoni G, Boettcher P, Ponti W, Moroni P https://doi.org/10.1016/j.virusres.2005.09.012>
21. 2013: Small ruminantlentiviruses: genetic variability, tropism and diagnosis. Viruses 23: 1175-1207
< H, Reina R, Amorena B, de Andrés D, Martínez HA https://doi.org/10.3390/v5041175>
22. 2010: Small ruminant lentivirus genotype E is widespread in Sarda goat. Vet Microbiol 144: 24-31
< R, Bertolotti L, Dei Giudici S, Puggioni G, Ponti N, Profiti M, Patta C, Rosati S https://doi.org/10.1016/j.vetmic.2009.12.020>
23. 2004a: Phylogenetic analysis and reclassification of caprine and ovine lentiviruses based on 104 new isolates: Evidence for regular sheep-to-goat transmission and worldwide propagation through livestock trade. Virology 319: 12-26
< C, Boni J, Huder JB,Vogt HR, Muhlherr J, Zanoni R, Miserez R, Lutz H, Schupbach J https://doi.org/10.1016/j.virol.2003.09.047>
24. 2004b: Direct evidence for natural transmission of small-ruminant lentiviruses of subtype A4 from goats to sheep and vice versa. J Virol 78: 7518-7522
< C, Huder JB, Böni J, Schönmann M, Mühlherr J, Lutz H, Schüpbach J https://doi.org/10.1128/JVI.78.14.7518-7522.2004>
25. 1997: North American and French caprine arthritis-encephalitis viruses emerge from ovine maedi-visna viruses. Virology 237: 307-318
< S, Benoit C, Guionaud C, Perrin G, Mamoun RZ https://doi.org/10.1006/viro.1997.8800>