Local-scale diversity and between-year "frozen evolution" of avian influenza A viruses in nature

. 2014 ; 9 (7) : e103053. [epub] 20140730

Jazyk angličtina Země Spojené státy americké Médium electronic-ecollection

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid25075739

Influenza A virus (IAV) in wild bird reservoir hosts is characterized by the perpetuation in a plethora of subtype and genotype constellations. Multiyear monitoring studies carried out during the last two decades worldwide have provided a large body of knowledge regarding the ecology of IAV in wild birds. Nevertheless, other issues of avian IAV evolution have not been fully elucidated, such as the complexity and dynamics of genetic interactions between the co-circulating IAV genomes taking place at a local-scale level or the phenomenon of frozen evolution. We investigated the IAV diversity in a mallard population residing in a single pond in the Czech Republic. Despite the relative small number of samples collected, remarkable heterogeneity was revealed with four different IAV subtype combinations, H6N2, H6N9, H11N2, and H11N9, and six genomic constellations in co-circulation. Moreover, the H6, H11, and N2 segments belonged to two distinguishable sub-lineages. A reconstruction of the pattern of genetic reassortment revealed direct parent-progeny relationships between the H6N2, H11N9 and H6N9 viruses. Interestingly the IAV, with the H6N9 subtype, was re-detected a year later in a genetically unchanged form in the close proximity of the original sampling locality. The almost absolute nucleotide sequence identity of all the respective genomic segments between the two H6N9 viruses indicates frozen evolution as a result of prolonged conservation in the environment. The persistence of the H6N9 IAV in various abiotic and biotic environmental components was also discussed.

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Webster RG, Bean WJ, Gorman OT, Chambers TM, Kawaoka Y (1992) Evolution and ecology of influenza A viruses. Microbiol Rev 56: 152–179. PubMed PMC

Olsen B, Munster VJ, Wallensten A, Waldenstrom J, Osterhaus AD, et al. (2006) Global patterns of influenza a virus in wild birds. Science 312: 384–388. PubMed

Munster VJ, Baas C, Lexmond P, Waldenstrom J, Wallensten A, et al. (2007) Spatial, temporal, and species variation in prevalence of influenza A viruses in wild migratory birds. PLoS Pathog 3: e61. PubMed PMC

Wallensten A, Munster VJ, Latorre-Margalef N, Brytting M, Elmberg J, et al. (2007) Surveillance of influenza A virus in migratory waterfowl in northern Europe. Emerg Infect Dis 13: 404–411. PubMed PMC

Krauss S, Obert CA, Franks J, Walker D, Jones K, et al. (2007) Influenza in migratory birds and evidence of limited intercontinental virus exchange. PLoS Pathog 3: e167. PubMed PMC

Wilcox BR, Knutsen GA, Berdeen J, Goekjian V, Poulson R, et al. (2011) Influenza-A viruses in ducks in northwestern Minnesota: fine scale spatial and temporal variation in prevalence and subtype diversity. PLoS One 6: e24010. PubMed PMC

Hatchette TF, Walker D, Johnson C, Baker A, Pryor SP, et al. (2004) Influenza A viruses in feral Canadian ducks: extensive reassortment in nature. J Gen Virol 85: 2327–2337. PubMed

Dugan VG, Chen R, Spiro DJ, Sengamalay N, Zaborsky J, et al. (2008) The evolutionary genetics and emergence of avian influenza viruses in wild birds. PLoS Pathog 4: e1000076. PubMed PMC

Chen R, Holmes EC (2006) Avian influenza virus exhibits rapid evolutionary dynamics. Mol Biol Evol 23: 2336–2341. PubMed

Globig A, Fereidouni SR, Harder TC, Grund C, Beer M, et al. (2013) Consecutive natural influenza a virus infections in sentinel mallards in the evident absence of subtype-specific hemagglutination inhibiting antibodies. Transbound Emerg Dis 60: 395–402. PubMed

Wille M, Tolf C, Avril A, Latorre-Margalef N, Wallerstrom S, et al. (2013) Frequency and patterns of reassortment in natural influenza A virus infection in a reservoir host. Virology 443: 150–160. PubMed

Tolf C, Latorre-Margalef N, Wille M, Bengtsson D, Gunnarsson G, et al. (2013) Individual variation in influenza A virus infection histories and long-term immune responses in Mallards. PLoS One 8: e61201. PubMed PMC

Hayashida H, Toh H, Kikuno R, Miyata T (1985) Evolution of influenza virus genes. Mol Biol Evol 2: 289–303. PubMed

Endo A, Pecoraro R, Sugita S, Nerome K (1992) Evolutionary pattern of the H 3 haemagglutinin of equine influenza viruses: multiple evolutionary lineages and frozen replication. Arch Virol 123: 73–87. PubMed

Bountouri M, Fragkiadaki E, Ntafis V, Kanellos T, Xylouri E (2011) Phylogenetic and molecular characterization of equine H3N8 influenza viruses from Greece (2003 and 2007): evidence for reassortment between evolutionary lineages. Virol J 8: 350. PubMed PMC

Chambers TM (2013) Equine/Canine/Feline/Seal influenza. 207. In: Webster RG, Monto AS, Braciale TJ, Lamb RA. Textbook of Influenza, 2nd Edition, p. 207.

Webster RG (1998) Influenza: an emerging disease. Emerg Infect Dis 4: 436–441. PubMed PMC

Krasnitz M, Levine AJ, Rabadan R (2008) Anomalies in the influenza virus genome database: new biology or laboratory errors? J Virol 82: 8947–8950. PubMed PMC

Worobey M (2008) Phylogenetic evidence against evolutionary stasis and natural abiotic reservoirs of influenza A virus. J Virol 82: 3769–3774. PubMed PMC

Nagy A, Vostinakova V, Pirchanova Z, Cernikova L, Dirbakova Z, et al. (2010) Development and evaluation of a one-step real-time RT-PCR assay for universal detection of influenza A viruses from avian and mammal species. Arch Virol 155: 665–673. PubMed PMC

Fereidouni SR, Starick E, Grund C, Globig A, Mettenleiter TC, et al. (2009) Rapid molecular subtyping by reverse transcription polymerase chain reaction of the neuraminidase gene of avian influenza A viruses. Vet Microbiol 135: 253–260. PubMed

Anonymous (2006) Comission Decision 2006/437/EC approving a diagnostic manual for avian influenza as provided in Council Directive 2005/94/EC. Off J Eur Commun L237: 1–27.

Monne I, Ormelli S, Salviato A, De Battisti C, Bettini F, et al. (2008) Development and validation of a one-step real-time PCR assay for simultaneous detection of subtype H5, H7, and H9 avian influenza viruses. J Clin Microbiol 46: 1769–1773. PubMed PMC

Phipps LP, Essen SC, Brown IH (2004) Genetic subtyping of influenza A viruses using RT-PCR with a single set of primers based on conserved sequences within the HA2 coding region. J Virol Methods 122: 119–122. PubMed

Altschul SF, Gish W, Miller W, Myers EW, Lipman DJ (1990) Basic local alignment search tool. J Mol Biol 215: 403–410. PubMed

Hoffmann E, Stech J, Guan Y, Webster RG, Perez DR (2001) Universal primer set for the full-length amplification of all influenza A viruses. Arch Virol 146: 2275–2289. PubMed

Qiu BF, Liu WJ, Peng DX, Hu SL, Tang YH, et al. (2009) A reverse transcription-PCR for subtyping of the neuraminidase of avian influenza viruses. J Virol Methods 155: 193–198. PubMed

Li OT, Barr I, Leung CY, Chen H, Guan Y, et al. (2007) Reliable universal RT-PCR assays for studying influenza polymerase subunit gene sequences from all 16 haemagglutinin subtypes. J Virol Methods 142: 218–222. PubMed

Katoh K, Misawa K, Kuma K, Miyata T (2002) MAFFT: a novel method for rapid multiple sequence alignment based on fast Fourier transform. Nucleic Acids Res 30: 3059–3066. PubMed PMC

Hall TA (1999) BioEdit: a user friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucl Acid Symp Ser 41: 95–98.

Tamura K, Stecher G, Peterson D, Filipski A, Kumar S (2013) MEGA6: Molecular Evolutionary Genetics Analysis version 6.0. Mol Biol Evol 30: 2725–2729. PubMed PMC

Nagy A, Cernikova L, Krivda V, Hornickova J (2012) Digital genotyping of avian influenza viruses of H7 subtype detected in central Europe in 2007–2011. Virus Res 165: 126–133. PubMed

Sharp GB, Kawaoka Y, Jones DJ, Bean WJ, Pryor SP, et al. (1997) Coinfection of wild ducks by influenza A viruses: distribution patterns and biological significance. J Virol 71: 6128–6135. PubMed PMC

Wang R, Soll L, Dugan V, Runstadler J, Happ G, et al. (2008) Examining the hemagglutinin subtype diversity among wild duck-origin influenza A viruses using ethanol-fixed cloacal swabs and a novel RT-PCR method. Virology 375: 182–189. PubMed PMC

Lindsay LL, Kelly TR, Plancarte M, Schobel S, Lin X, et al. (2013) Avian influenza: mixed infections and missing viruses. Viruses 5: 1964–1977. PubMed PMC

Shoham D, Jahangir A, Ruenphet S, Takehara K (2012) Persistence of avian influenza viruses in various artificially frozen environmental water types. Influenza Res Treat 2012: 912326. PubMed PMC

Henaux V, Samuel MD, Dusek RJ, Fleskes JP, Ip HS (2012) Presence of avian influenza viruses in waterfowl and wetlands during summer 2010 in California: are resident birds a potential reservoir? PLoS One 7: e31471. PubMed PMC

Keeler SP, Lebarbenchon C, Stallknecht DE (2013) Strain-related variation in the persistence of influenza A virus in three types of water: distilled water, filtered surface water, and intact surface water. Virol J 10: 13. PubMed PMC

Nazir J, Haumacher R, Ike AC, Marschang RE (2011) Persistence of avian influenza viruses in lake sediment, duck feces, and duck meat. Appl Environ Microbiol 77: 4981–4985. PubMed PMC

Lang AS, Kelly A, Runstadler JA (2008) Prevalence and diversity of avian influenza viruses in environmental reservoirs. J Gen Virol 89: 509–519. PubMed

Lebarbenchon C, Sreevatsan S, Lefevre T, Yang M, Ramakrishnan MA, et al. (2012) Reassortant influenza A viruses in wild duck populations: effects on viral shedding and persistence in water. Proc Biol Sci 279: 3967–3975. PubMed PMC

Stumpf P, Failing K, Papp T, Nazir J, Bohm R, et al. (2010) Accumulation of a low pathogenic avian influenza virus in zebra mussels (Dreissena polymorpha). Avian Dis 54: 1183–1190. PubMed

Faust C, Stallknecht D, Swayne D, Brown J (2009) Filter-feeding bivalves can remove avian influenza viruses from water and reduce infectivity. Proc Biol Sci 276: 3727–3735. PubMed PMC

Huyvaert KP, Carlson JS, Bentler KT, Cobble KR, Nolte DL, et al. (2012) Freshwater clams as bioconcentrators of avian influenza virus in water. Vector Borne Zoonotic Dis 12: 904–906. PubMed

Oesterle PT (2011) The role of freshwater snails in the transmission of influenza A viruses. Dissertation, Colorado State University.

Horm VS, Gutierrez RA, Nicholls JM, Buchy P (2012) Highly pathogenic influenza A(H5N1) virus survival in complex artificial aquatic biotopes. PLoS One 7: e34160. PubMed PMC

Meixell BW, Borchardt MA, Spencer SK (2013) Accumulation and inactivation of avian influenza virus by the filter-feeding invertebrate Daphnia magna. Appl Environ Microbiol 79: 7249–7255. PubMed PMC

Delogu M, De Marco MA, Di Trani L, Raffini E, Cotti C, et al. (2010) Can preening contribute to influenza A virus infection in wild waterbirds? PLoS One 5: e11315. PubMed PMC

Delogu M, De Marco MA, Cotti C, Di Trani L, Raffini E, et al. (2012) Human and animal integrated influenza surveillance: a novel sampling approach for an additional transmission way in the aquatic bird reservoir. Italian Journal of Public Health 9: 29–36.

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