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PLOS ONE  2013 

Chromosome Painting in Three Species of Buteoninae: A Cytogenetic Signature Reinforces the Monophyly of South American Species

DOI: 10.1371/journal.pone.0070071

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Abstract:

Buteoninae (Falconiformes, Accipitridae) consist of the widely distributed genus Buteo, and several closely related species in a group called “sub-buteonine hawks”, such as Buteogallus, Parabuteo, Asturina, Leucopternis and Busarellus, with unsolved phylogenetic relationships. Diploid number ranges between 2n = 66 and 2n = 68. Only one species, L. albicollis had its karyotype analyzed by molecular cytogenetics. The aim of this study was to present chromosomal analysis of three species of Buteoninae: Rupornis magnirostris, Asturina nitida and Buteogallus meridionallis using fluorescence in situ hybridization (FISH) experiments with telomeric and rDNA probes, as well as whole chromosome probes derived from Gallus gallus and Leucopternis albicollis. The three species analyzed herein showed similar karyotypes, with 2n = 68. Telomeric probes showed some interstitial telomeric sequences, which could be resulted by fusion processes occurred in the chromosomal evolution of the group, including the one found in the tassociation GGA1p/GGA6. In fact, this association was observed in all the three species analyzed in this paper, and also in L. albicollis, suggesting that it represents a cytogenetic signature which reinforces the monophyly of Neotropical buteoninae species.

References

[1]  Rieseberg LH (2001) Chromosomal rearrangements and speciation. Trends Ecol Evol 16: 351–358.
[2]  Skinner BM, Griffin DK (2012) Intrachromosomal rearrangements in avian genome evolution: evidence for regions prone to breakpoints. Heredity 108: 37–41.
[3]  Amaral KF, Jorge W (2003) The Chromosomes of the Order Falconiformes: a review. Ararajuba 11: 65–73.
[4]  Storer RW (1971) Classification of birds, p. 1–19. In: Farner DS and King J (eds) Avian biology. Academic Press, New York.
[5]  Thiollay JM (1994) Family Accipitridae, p. 52–205. In: del Hoyo J, Elliot A and Sargatal J (eds.) Handbook of the birds of the world: New world vultures to Guinea fowl, v. 2. Barcelona: Lynx.
[6]  Friedman H (1950) The birds of North and Middle America. Part XI. Cathartidae to Falconidae Volume 50. United States National Museum Bulletin 50. Washington D.C.: Smithsonian Institution.
[7]  Grossman ML, Hamlet J (1964) Birds of Prey of the World. Bonanza Books, New York.
[8]  Amadon D, Bull J (1988) Hawks and owls of the world. A distributional and taxonomic list. Proc West Found Vert Zool 3: 295–357.
[9]  - IUCN (2012) 2012 IUCN Red List of Threatened Species. Available: www.iucnredlist.org. Accessed 2013 March 11.
[10]  Riesing MJ, Kruckenhauser L, Gamauf A, Haring E (2003) Molecular phylogeny of the genus Buteo (Aves: Accipitridae) based on mitochondrial marker sequences. Molecular Phylogenetics and Evolution 27: 328–342.
[11]  Amaral FSR, Miller MJ, Silveira LF, Bermingham E, Wajntal A (2006) Polyphyly of the hawk genera Leucopternis and Buteogallus (Aves, Accipitridae): multiple habitat shifts during the Neotropical buteonine diversification. BMC Evol. Biol. 6: 10.
[12]  Amaral FSR, Sheldon FH, Gamauf A, Haring E, Riesing M, et al. (2009) Patterns and Processes of Diversification in a Widespread and Ecologically Diverse Avian Group, the Buteonine Hawks (Aves, Accipitridae) Molecular Phylogenetics and Evolution 53. (3): 703–715.
[13]  Lerner HRL, Mindel DP (2005) Phylogeny of eagles, Old World vultures, and other Accipitridae based on nuclear and mitochondrial DNA. Molecular Phylogenet Evolut 37: 327–346.
[14]  Griffin DK, Robertson LBW, Tempest HG, Skinner BM (2007) The evolution of the avian genome as revealed by comparative molecular cytogenetics. Cytogenet Genome Res 117: 64–77.
[15]  Lerner HRL, Klaver MC, Mindel DP (2008) Molecular Phylogenetics of the Buteonine Birds of Prey (Accipitridae). The Auk 304(2): 304–315.
[16]  Schmutz SM, Moker JS, Thue TD (1993) Chromoasomes of four North-American Buteoninae hawks. J Raptor Res. 27(4): 196–202.
[17]  de Oliveira EHC, Tagliarini MM, Rissino J, Nagamachi CY, Pieczarka JC, et al. (2010) Reciprocal chromosome painting between white hawk (Leucopternis albicollis) and chicken reveals extensive fusions and fissions during karyotype evolution of Accipitridae (Aves, Falconiformes) Chromosome Res. 18: 349–355.
[18]  de Oliveira EHC, Habermann F, Lacerda O, Sbalqueiro IJ, Wienberg J, et al. (2005) Chromosome reshuffling in birds of prey: the karyotypes of the world’s largest eagle (Harpy eagle, Harpia harpyja) compared to that of the chicken (Gallus gallus). Chromosoma 114: 338–343.
[19]  Nanda I, Karl E, Volobouev V, Griffin DK, Scharlt M, et al. (2006) Extensive gross genomic rearrangements between chicken and Old World vultures (Falconiformes, Accipitridae). Cytogenet Genome Res 112: 286–295.
[20]  Sasaki M, Ikeuchi T, Makino S (1968) A feather pulp culture for avian chromosomes with notes on the chromosomes of the peafowl and the ostrich. Experientia 24: 1923–1929.
[21]  Daniels LM, Delany ME (2003) Molecular and cytogenetic organization of the 5S ribosomal DNA array in chicken (Gallus gallus). Chromosome Res 11: 305–317.
[22]  Nishida C, Ishijima J, Kosaka A, Tanabe H, Habermann FA, et al. (2008) Characterization of chromosome structures of Falconinae (Falconidae, Falconiformes, Aves) by chromosome painting and delineation of chromosome rearrangements during their differentiation. Chromosome Res 16: 171–181.

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