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Erschienen in: Archives of Virology 4/2010

01.04.2010 | Annotated Sequence Record

A new isolate of beak and feather disease virus from endemic wild red-fronted parakeets (Cyanoramphus novaezelandiae) in New Zealand

verfasst von: Luis Ortiz-Catedral, Brigitta Kurenbach, Melanie Massaro, Kate McInnes, Dianne H. Brunton, Mark E. Hauber, Darren P. Martin, Arvind Varsani

Erschienen in: Archives of Virology | Ausgabe 4/2010

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Abstract

Psittacine beak and feather disease (PBFD) is a viral disease distributed worldwide with a potentially critical impact on many rare parrots. While efforts have been made to determine its prevalence in wild and captive psittacines, only limited work has been done to document complete genomes of its causative agent, beak and feather disease virus (BFDV). Here, we describe five full genomes of BFDV isolated from wild specimens of an endemic New Zealand parrot, the red-fronted parakeet (Cyanoramphus novaezelandiae). The isolates share >99% nucleotide similarity amongst themselves and ~91–92% similarity to BFDV isolates from southern Africa, Europe and Australia. A maximum-likelihood (ML) phylogenetic tree including 42 other full-genome sequences indicated that the five isolates from red-fronted parakeets represent an undescribed genotype of BFDV. These isolates are evolutionarily most closely related to the Cacatuini isolates from Thailand and the Lorinae isolates from Australia in the rep gene ML tree; however, in the cp ML tree, the evolutionary relationship is closer to viruses found in the Psittacini.
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Literatur
1.
Zurück zum Zitat Duffy S, Shackelton LA, Holmes EC (2008) Rates of evolutionary change in viruses: patterns and determinants. Nat Rev Genet 9:267–276CrossRefPubMed Duffy S, Shackelton LA, Holmes EC (2008) Rates of evolutionary change in viruses: patterns and determinants. Nat Rev Genet 9:267–276CrossRefPubMed
2.
Zurück zum Zitat Fauquet CM, Briddon RW, Brown JK, Moriones E, Stanley J, Zerbini M, Zhou X (2008) Geminivirus strain demarcation and nomenclature. Arch Virol 153:783–821CrossRefPubMed Fauquet CM, Briddon RW, Brown JK, Moriones E, Stanley J, Zerbini M, Zhou X (2008) Geminivirus strain demarcation and nomenclature. Arch Virol 153:783–821CrossRefPubMed
3.
Zurück zum Zitat Firth C, Charleston MA, Duffy S, Shapiro B, Holmes EC (2009) Insights into the evolutionary history of an emerging livestock pathogen: porcine circovirus 2. J Virol 83:12813–12821CrossRefPubMed Firth C, Charleston MA, Duffy S, Shapiro B, Holmes EC (2009) Insights into the evolutionary history of an emerging livestock pathogen: porcine circovirus 2. J Virol 83:12813–12821CrossRefPubMed
4.
Zurück zum Zitat Gerlach H (1994) Circoviridae-psittacine beak and feather disease virus. In: Ritchie BW, Harrison GT, Harrison LR (eds) Avian medicine: principles and practice. Wingers Publishing Incorporation, Lake Worth, FL, pp 894–903 Gerlach H (1994) Circoviridae-psittacine beak and feather disease virus. In: Ritchie BW, Harrison GT, Harrison LR (eds) Avian medicine: principles and practice. Wingers Publishing Incorporation, Lake Worth, FL, pp 894–903
5.
Zurück zum Zitat Guindon S, Gascuel O (2003) A simple, fast, and accurate algorithm to estimate large phylogenies by maximum likelihood. Syst Biol 52:696–704CrossRefPubMed Guindon S, Gascuel O (2003) A simple, fast, and accurate algorithm to estimate large phylogenies by maximum likelihood. Syst Biol 52:696–704CrossRefPubMed
6.
Zurück zum Zitat Ha HJ, Anderson IL, Alley MR, Springett BP, Gartrell BD (2007) The prevalence of beak and feather disease virus infection in wild populations of parrots and cockatoos in New Zealand. New Zeal Vet J 55:235–238 Ha HJ, Anderson IL, Alley MR, Springett BP, Gartrell BD (2007) The prevalence of beak and feather disease virus infection in wild populations of parrots and cockatoos in New Zealand. New Zeal Vet J 55:235–238
7.
Zurück zum Zitat Hale KA, Briskie JV (2007) Decreased immunocompetence in a severely bottlenecked population of an endemic New Zealand bird. Anim Conserv 10:2–10CrossRef Hale KA, Briskie JV (2007) Decreased immunocompetence in a severely bottlenecked population of an endemic New Zealand bird. Anim Conserv 10:2–10CrossRef
8.
Zurück zum Zitat Heath L, Martin DP, Warburton L, Perrin M, Horsfield W, Kingsley C, Rybicki EP, Williamson AL (2004) Evidence of unique genotypes of beak and feather disease virus in southern Africa. J Virol 78:9277–9284CrossRefPubMed Heath L, Martin DP, Warburton L, Perrin M, Horsfield W, Kingsley C, Rybicki EP, Williamson AL (2004) Evidence of unique genotypes of beak and feather disease virus in southern Africa. J Virol 78:9277–9284CrossRefPubMed
9.
Zurück zum Zitat Heath L, Williamson AL, Rybicki EP (2006) The capsid protein of beak and feather disease virus binds to the viral DNA and is responsible for transporting the replication-associated protein into the nucleus. J Virol 80:7219–7225CrossRefPubMed Heath L, Williamson AL, Rybicki EP (2006) The capsid protein of beak and feather disease virus binds to the viral DNA and is responsible for transporting the replication-associated protein into the nucleus. J Virol 80:7219–7225CrossRefPubMed
10.
Zurück zum Zitat Kock ND, Hangartnar PU, Lucke V (1993) Variation in clinical disease and species susceptibility to psittacine beak and feather disease in Zimbabwean lovebirds. Onderstepoort J Vet Res 60:159–161PubMed Kock ND, Hangartnar PU, Lucke V (1993) Variation in clinical disease and species susceptibility to psittacine beak and feather disease in Zimbabwean lovebirds. Onderstepoort J Vet Res 60:159–161PubMed
11.
Zurück zum Zitat Lefeuvre P, Lett JM, Varsani A, Martin DP (2009) Widely conserved recombination patterns among single-stranded DNA viruses. J Virol 83:2697–2707CrossRefPubMed Lefeuvre P, Lett JM, Varsani A, Martin DP (2009) Widely conserved recombination patterns among single-stranded DNA viruses. J Virol 83:2697–2707CrossRefPubMed
12.
Zurück zum Zitat Martin DP, Williamson C, Posada D (2005) RDP2: recombination detection and analysis from sequence alignments. Bioinformatics 21:260–262CrossRefPubMed Martin DP, Williamson C, Posada D (2005) RDP2: recombination detection and analysis from sequence alignments. Bioinformatics 21:260–262CrossRefPubMed
13.
Zurück zum Zitat Meehan BM, Creelan JL, McNulty MS, Todd D (1997) Sequence of porcine circovirus DNA: affinities with plant circoviruses. J Gen Virol 78:221–227PubMed Meehan BM, Creelan JL, McNulty MS, Todd D (1997) Sequence of porcine circovirus DNA: affinities with plant circoviruses. J Gen Virol 78:221–227PubMed
14.
Zurück zum Zitat Niagro FD, Forsthoefel AN, Lawther RP, Kamalanathan L, Ritchie BW, Latimer KS, Lukert PD (1998) Beak and feather disease virus and porcine circovirus genomes: intermediates between the geminiviruses and plant circoviruses. Arch Virol 143:1723–1744CrossRefPubMed Niagro FD, Forsthoefel AN, Lawther RP, Kamalanathan L, Ritchie BW, Latimer KS, Lukert PD (1998) Beak and feather disease virus and porcine circovirus genomes: intermediates between the geminiviruses and plant circoviruses. Arch Virol 143:1723–1744CrossRefPubMed
15.
Zurück zum Zitat Ortiz-Catedral L, McInnes K, Hauber ME, Brunton DH (2009) First report of psittacine beak and feather disease (PBFD) in wild red-crowned parakeets (Cyanoramphus novaezelandiae) in New Zealand. Emu 109:244–247CrossRef Ortiz-Catedral L, McInnes K, Hauber ME, Brunton DH (2009) First report of psittacine beak and feather disease (PBFD) in wild red-crowned parakeets (Cyanoramphus novaezelandiae) in New Zealand. Emu 109:244–247CrossRef
16.
Zurück zum Zitat Pass DA, Perry RA (1984) The pathology of psittacine beak and feather disease. Aust Vet J 61:69–74CrossRefPubMed Pass DA, Perry RA (1984) The pathology of psittacine beak and feather disease. Aust Vet J 61:69–74CrossRefPubMed
17.
Zurück zum Zitat Perrin M, Downs C, Symes C (1999) Final blows for the cape parrot? PsittaScene 11:12–13 Perrin M, Downs C, Symes C (1999) Final blows for the cape parrot? PsittaScene 11:12–13
18.
Zurück zum Zitat Posada D (2006) ModelTest Server: a web-based tool for the statistical selection of models of nucleotide substitution online. Nucleic Acids Res 34:W700–W703CrossRefPubMed Posada D (2006) ModelTest Server: a web-based tool for the statistical selection of models of nucleotide substitution online. Nucleic Acids Res 34:W700–W703CrossRefPubMed
19.
Zurück zum Zitat Raidal S, McElnea CL, Cross GM (2008) Seroprevalence of psittacine beak and feather disease in wild psittacine birds in New South Wales. Aust Vet J 70:137–139CrossRef Raidal S, McElnea CL, Cross GM (2008) Seroprevalence of psittacine beak and feather disease in wild psittacine birds in New South Wales. Aust Vet J 70:137–139CrossRef
20.
Zurück zum Zitat Ritchie BW, Niagro FD, Lukert PD, Steffens WL, Latimer KS (1989) Characterization of a new virus from cockatoos with psittacine beak and feather disease. Virology 171:83–88CrossRefPubMed Ritchie BW, Niagro FD, Lukert PD, Steffens WL, Latimer KS (1989) Characterization of a new virus from cockatoos with psittacine beak and feather disease. Virology 171:83–88CrossRefPubMed
21.
Zurück zum Zitat Ritchie PA, Anderson IL, Lambert DM (2003) Evidence for specificity of psittacine beak and feather disease viruses among avian hosts. Virology 306:109–115CrossRefPubMed Ritchie PA, Anderson IL, Lambert DM (2003) Evidence for specificity of psittacine beak and feather disease viruses among avian hosts. Virology 306:109–115CrossRefPubMed
22.
Zurück zum Zitat Seutin G, White BN, Boag PT (1991) Preservation of avian blood and tissue samples for DNA analyses. Can J Zool—Rev Can Zool 69:82–90CrossRef Seutin G, White BN, Boag PT (1991) Preservation of avian blood and tissue samples for DNA analyses. Can J Zool—Rev Can Zool 69:82–90CrossRef
23.
Zurück zum Zitat Shepherd DN, Martin DP, Lefeuvre P, Monjane AL, Owor BE, Rybicki EP, Varsani A (2008) A protocol for the rapid isolation of full geminivirus genomes from dried plant tissue. J Virol Methods 149:97–102CrossRefPubMed Shepherd DN, Martin DP, Lefeuvre P, Monjane AL, Owor BE, Rybicki EP, Varsani A (2008) A protocol for the rapid isolation of full geminivirus genomes from dried plant tissue. J Virol Methods 149:97–102CrossRefPubMed
24.
Zurück zum Zitat Tamura K, Dudley J, Nei M, Kumar S (2007) MEGA4: Molecular Evolutionary Genetics Analysis (MEGA) software version 4.0. Mol Biol Evol 24:1596–1599CrossRefPubMed Tamura K, Dudley J, Nei M, Kumar S (2007) MEGA4: Molecular Evolutionary Genetics Analysis (MEGA) software version 4.0. Mol Biol Evol 24:1596–1599CrossRefPubMed
25.
Zurück zum Zitat Thompson JD, Higgins DG, Gibson TJ (1994) Clustal-W—improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. Nucleic Acids Res 22:4673–4680CrossRefPubMed Thompson JD, Higgins DG, Gibson TJ (1994) Clustal-W—improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. Nucleic Acids Res 22:4673–4680CrossRefPubMed
26.
Zurück zum Zitat Todd D (2000) Circoviruses: immunosuppressive threats to avian species: a review. Avian Pathol 29:373–394CrossRefPubMed Todd D (2000) Circoviruses: immunosuppressive threats to avian species: a review. Avian Pathol 29:373–394CrossRefPubMed
27.
Zurück zum Zitat Tompkins DM, Mitchell RA, Bryant DM (2006) Hybridization increases measures of innate and cell-mediated immunity in an endangered bird species. J Anim Ecol 75:559–564CrossRefPubMed Tompkins DM, Mitchell RA, Bryant DM (2006) Hybridization increases measures of innate and cell-mediated immunity in an endangered bird species. J Anim Ecol 75:559–564CrossRefPubMed
28.
Zurück zum Zitat Vega-Rocha S, Gronenborn B, Gronenborn AM, Campos-Olivas R (2007) Solution structure of the endonuclease domain from the master replication initiator protein of the nanovirus faba bean necrotic yellows virus and comparison with the corresponding geminivirus and circovirus structures. Biochemistry (US) 46:6201–6212CrossRef Vega-Rocha S, Gronenborn B, Gronenborn AM, Campos-Olivas R (2007) Solution structure of the endonuclease domain from the master replication initiator protein of the nanovirus faba bean necrotic yellows virus and comparison with the corresponding geminivirus and circovirus structures. Biochemistry (US) 46:6201–6212CrossRef
Metadaten
Titel
A new isolate of beak and feather disease virus from endemic wild red-fronted parakeets (Cyanoramphus novaezelandiae) in New Zealand
verfasst von
Luis Ortiz-Catedral
Brigitta Kurenbach
Melanie Massaro
Kate McInnes
Dianne H. Brunton
Mark E. Hauber
Darren P. Martin
Arvind Varsani
Publikationsdatum
01.04.2010
Verlag
Springer Vienna
Erschienen in
Archives of Virology / Ausgabe 4/2010
Print ISSN: 0304-8608
Elektronische ISSN: 1432-8798
DOI
https://doi.org/10.1007/s00705-010-0607-2

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