dc.creatorMastrangelo T.
dc.creatorFresia P.
dc.creatorLyra M.L.
dc.creatorRodrigues R.A.
dc.creatorAzeredo-Espin A.M.L.
dc.date2014
dc.date2015-06-25T17:56:10Z
dc.date2015-11-26T14:42:55Z
dc.date2015-06-25T17:56:10Z
dc.date2015-11-26T14:42:55Z
dc.date.accessioned2018-03-28T21:50:47Z
dc.date.available2018-03-28T21:50:47Z
dc.identifier
dc.identifierActa Tropica. Elsevier, v. 138, n. , p. 26 - 33, 2014.
dc.identifier0001706X
dc.identifier10.1016/j.actatropica.2014.04.002
dc.identifierhttp://www.scopus.com/inward/record.url?eid=2-s2.0-84907595818&partnerID=40&md5=a8f56bf29ae2d1230f953569a47df942
dc.identifierhttp://www.repositorio.unicamp.br/handle/REPOSIP/86970
dc.identifierhttp://repositorio.unicamp.br/jspui/handle/REPOSIP/86970
dc.identifier2-s2.0-84907595818
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1251472
dc.descriptionCochliomyia hominivorax (Coquerel) is a myiasis fly that causes economic losses to livestock farmers in warmer American regions. Previous studies of this pest had found population structure at north and south of the Amazon Basin, which was considered to be a barrier to dispersal. The present study analyzed three mitochondrial DNA (mtDNA) markers and eight nuclear microsatellite loci to investigate for the first time the genetic diversity and population structure across the Brazilian Amazon region (Amazonia). Both mtDNA and microsatellite data supported the existence of much diversity and significant population structure among nine regional populations of C. hominivorax, which was found to be surprisingly common in Amazonia. Forty-six mtDNA haplotypes were identified, of which 39 were novel and seven had previously been found only at south of Amazonia. Seventy microsatellite alleles were identified by size, moderate to high values of heterozygosity were discovered in all regions, and a Bayesian clustering analysis identified four genetic groups that were not geographically distributed. Reproductive compatibility was also investigated by laboratory crossing, but no evidence of hybrid dysgenesis was found between an Amazonian colony and one each of from Northeast and Southeast Brazil. The results have important implications for area-wide control by the Sterile Insect Technique. © 2014 International Atomic Energy Agency 2014.
dc.description138
dc.description
dc.description26
dc.description33
dc.descriptionAzeredo-Espin, A.M.L., Lessinger, A.C., Genetic approaches for studying myiasis-causing flies: molecular markers and mitochondrial genomics (2006) Genetica, 126, pp. 111-131
dc.descriptionBaumhover, A.H., Husman, C.N., Graham, A.J., Screwworms (1966) Insect Colonization and Mass Production, pp. 533-554. , Academic Press, New York, C.N. Smith (Ed.)
dc.descriptionBerkebile, D.R., Skoda, S.R., Chemicals useful for separating egg masses of the screwworm (2002) Southw. Entomol., 27, pp. 297-299
dc.descriptionBrenner, R.J., Distribution of screwworms (Diptera: Calliphoridae) relative to land use and topography in the humid tropics of Southern Mexico (1985) Ann. Entomol. Soc. Am., 78, pp. 433-439
dc.descriptionCansi, E.R., (2011) Caracterização das Miíases em animais nas cidades de Brasília (Distrito Federal) e Formosa (Goiás), p. 108. , PhD Thesis, Brasília
dc.descriptionCansi, E.R., Bonorino, R., Ataíde, H.S., Pujol-Luz, J.R., Myiasis by screw worm Cochliomyia hominivorax (Coquerel) (Diptera: Calliphoridae) in a wild maned wolf Chrysocyon brachyurus (Mammalia: Canidae), in Brasília, Brazil (2011) Neotrop. Entomol., 40, pp. 150-151
dc.descriptionCastelloe, J., Templeton, A.R., Root probabilities for intraspecific gene trees under neutral coalescent theory (1994) Mol. Phylogenet. Evol., 3, pp. 102-113
dc.descriptionCoquerel, C., Des larves de dìpteres developés dans lês sinus fronteur et lês fosses nasales de l'homme à Cayenne (1858) Arch. Gen. Med., 5, pp. 513-528
dc.descriptionDieringer, D., Schlotterer, C., Microsatellite analyser (MSA): a platform independent analysis tool for large microsatellite data sets (2003) Mol. Ecol. Notes, 3, pp. 167-169
dc.descriptionEarl, D., von Holdt, B., STRUCTURE HARVESTER: a website and program for visualizing structure output and implementing the Evanno method (2012) Conserv. Genet. Resour., 4, pp. 359-361
dc.descriptionEvanno, G., Regnaut, S., Goudet, J., Detecting the number of clusters of individuals using the software STRUCTURE: a simulation study (2005) Mol. Ecol., 14, pp. 2611-2620
dc.descriptionExcoffier, L., Smouse, P., Quattro, J., Analysis of molecular variance inferred from metric distances among DNA haplotypes: application to human mitochondrial DNA restriction data (1992) Genetics, 131, pp. 479-491
dc.descriptionExcoffier, L., Foll, M., Petit, R.J., Genetic consequences of range expansions (2009) Annu. Rev. Ecol. Evol. Syst., 40, pp. 481-501
dc.descriptionExcoffier, L., Lischer, H.E.L., Arlequin suite ver. 3.5: a new series of programs to perform population genetics analyses under Linux and Windows (2010) Mol. Ecol. Res., 10, pp. 564-567
dc.descriptionFigueiredo, M.A.P., Santos, A.C.G., Guerra, R.M.S.N.C., Ectoparasitos de animais silvestres no Maranhão (2010) Pesq. Vet. Bras., 30, pp. 988-990
dc.descriptionFraiha, H., Leão, R.N.Q., (1986) 50 anos de contribuição às ciências biológicas e à medicina tropical. Instituto Evandro Chagas Belém, , Fundação Serviços de Saúde Pública, Belém, Pará
dc.descriptionFresia, P., Lyra, M.L., Coronado, A., Azeredo-Espin, A.M.L., Genetic structure and demographic history of new world screwworm across its current geographic range (2011) J. Med. Entomol., 48, pp. 280-290
dc.descriptionFresia, P., Azeredo-Espin, A.M.L., Lyra, M.L., The phylogeographic history of the new world screwworm fly, inferred by approximate Bayesian computation analysis (2013) PLoS One, 8 (10), pp. e76168
dc.descriptionGascon, C., Malcolm, J.R., Patton, J.L., Silva, M.N.F., Bogarti, J.P., Lougheed, S.C., Peres, C.A., Boag, P.T., Riverine barriers and the geographic distribution of Amazonian species (2000) Proc. Natl. Acad. Sci. U.S.A., 97, pp. 13672-13677
dc.descriptionGlaubitz, J.C., CONVERT: a user-friendly program to reformat diploid genotypic data for commonly used population genetic software packages (2004) Mol. Ecol. Notes, 4, pp. 309-310
dc.descriptionGriffiths, A.M., Evans, L.M., Stevens, J.R., Characterization and utilization of microsatellite loci in the New World screwworm fly Cochliomyia hominivorax (2009) Med. Vet. Entomol., 23 (SUPPL. 1), pp. 8-13
dc.descriptionHartl, D.L., Clark, A.G., (1997) Principles of Population Genetics, , Sinauer Associates, Inc., Sunderland, MA
dc.descriptionHightower, B.G., Adams, A.L., Alley, D.A., Dispersal of released irradiated laboratory-reared screw-worm flies (1965) J. Econ. Entomol., 58, pp. 373-374
dc.descriptionHightower, B.G., Spates Junior, G.E., Garcia, J.J., Growth and critical size at pupation for larvae of the screwworm developing in fresh wounds (1972) J. Econ. Entomol., 65, pp. 1349-1352
dc.description(2012) Síntese de Indicadores Sociais: Uma análise das condições de vida da população brasileira, p. 293. , Informação Demográfica e SocioeconÔmica n°29, Rio de Janeiro, IBGE (Instituto Brasileiro de Geografia e Estatística)
dc.descriptionIrwin, D.E., Phylogeographic breaks without geographic barriers to gene flow (2002) Evolution, 56, pp. 2383-2394
dc.descriptionJakobsson, M., Rosenberg, N.A., CLUMPP: a cluster matching and permutation program for dealing with label switching and multimodality in analysis of population structure (2007) Bioinformatics, 23, pp. 1801-1806
dc.descriptionKnipling, E.F., Possibilities of insect control or eradication through the use of sexually sterile males (1955) J. Econ. Entomol., 48, pp. 459-462
dc.descriptionLa Condamine, C.M., (1745) Viagem na América Meridional descendo o rio das Amazonas, p. 1944. , Pan-Americana, Rio de Janeiro
dc.descriptionLabovitz, S., Criteria for selecting a significance level: a note on the sacredness of .05 (1968) Am. Sociol., 3, pp. 220-222
dc.descriptionLeão, R.N.Q., (1997) Doenças Infecciosas e Parasitárias: Enfoque AmazÔnico, , Instituto Evandro Chagas, CEJUP: UEPA, Belém
dc.descriptionLyra, M.L., Fresia, P., Gama, S., Cristina, J., Klaczko, L.B., Azeredo-Espin, A.M.L., Analysis of mitochondrial DNA variability and genetic structure in populations of New World screwworm flies (Diptera: Calliphoridae) from Uruguay (2005) J. Med. Entomol., 42, pp. 589-595
dc.descriptionLyra, M.L., Klaczko, L.B., Azeredo-Espin, A.M.L., Complex pattern of genetic distribution in populations of the New World screwworm fly revealed by mitochondrial DNA markers (2009) Med. Vet. Entomol., 23, pp. 32-42
dc.descriptionMangan, R.L., Thomas, D.B., Habitat preferences and dispersal patterns in native screwworm flies (Diptera: Calliphoridae) (1989) Ann. Entomol. Soc. Am., 82, pp. 332-339
dc.descriptionMastrangelo, T., Welch, J.B., An overview of the components of AW-IPM campaigns against the New World screwworm (2012) Insects, 3, pp. 930-955
dc.descriptionMastrangelo, T., Chaudhury, M.F., Skoda, S.R., Welch, J.B., Sagel, A., Walder, J.M.M., Feasibility of using a Caribbean screwworm for SIT campaigns in Brazil (2012) J. Med. Entomol., 49, pp. 1495-1501
dc.descriptionMatta, A.A., Myiases no Amazonas (notas clínicas) (1911) Revista Médica de São Paulo, 14, pp. 377-379
dc.descriptionMayer, D.G., Atzeni, M.G., Estimation of dispersal distances for Cochliomyia hominivorax (Diptera: Calliphoridae) (1993) Environ. Entomol., 22, pp. 368-374
dc.descriptionMilton, T., Mitochondrial DNA heteroplasmy (2004) Forensic Sci. Rev., 16, pp. 1-20
dc.descriptionMoritz, C., Patton, J.L., Schneider, C.J., Smith, T.B., Diversification of rainforest faunas: an integrated molecular approach (2000) Ann. Rev. Ecol. Syst., 31, pp. 533-563
dc.descriptionPapadopoulou, A., Bergsten, J., Fujisawa, T., Monaghan, M.T., Barraclough, T.G., Vogler, A.P., Speciation and DNA barcodes: testing the effects of dispersal on the formation of discrete sequence clusters (2008) Phil. Trans. R. Soc. B, 363, pp. 2987-2996
dc.descriptionPapavero, N., Couri, M.S., Essays on the history of Brazilian dipterology III. Three remarkable notices from the 18th century, mainly related to myiasis-producing flies (Cochliomyia and Dermatobia) (2012) Ver. Bras. Entomol., 56, pp. 393-398
dc.descriptionPeakall, R., Smouse, P.E., GenAlEx 6.5: genetic analysis in Excel. Population genetic software for teaching and research-an update (2012) Bioinformatics, 28, pp. 2537-2539
dc.descriptionPedro, P.M., Sallum, M.A.M., Spatial expansion and population structure of the neotropical malaria vector, Anopheles darlingi (Diptera: Culicidae) (2009) Biol. J. Linn. Soc., 97, pp. 854-866
dc.descriptionPulgar, E., Quijada, J., Bethencourt, A., Román, E.M., Reporte de un caso de miasis por Cochliomyia hominivorax (Coquerel, 1858) (Diptera: Calliphoridae) en un cunaguaro (Leopardus pardalis, Linnaeus, 1758) en cautiverio tratado con Doramectina (2009) Entomotropica, 24, pp. 129-133
dc.descriptionPritchard, J.K., Stephens, M., Donnelly, P., Inference of population structure using multilocus genotype data (2000) Genetics, 155, pp. 945-959
dc.description(1980) Rand McNally Encyclopedia of World Rivers, , University of Michigan, Ann Arbor, MI, Rand McNally and Co
dc.descriptionReynolds, J., Weir, B.S., Cockerham, C.C., Estimation for the coancestry coefficient: basis for a short term genetic distance (1983) Genetics, 105, pp. 767-779
dc.descriptionRobinson, A.S., Vreysen, M.J.B., Hendrichs, J., Feldmann, U., Enabling technologies to improve area-wide integrated pest management programmes for the control of screwworms (2009) Med. Vet. Entomol., 23, pp. 1-7
dc.description(2003) Statistical Analysis System Version 9.1, , SAS Institute, Cary, NC, SAS Institute
dc.descriptionSereno, J.R.B., Catto, J.B., Sereno, F.T.P.S., (1996) Prevenção de miíases umbilicais em bezerros criados extensivamente, no Pantanal, através da utilização de ivermectin, p. 5. , EMBRAPA, CPAP, Corumbá. (Comunicado Técnico, 16)
dc.descriptionSilva, M., Patton, J.L., Molecular phylogeography and the evolution and conservation of Amazonian mammals (1998) Mol. Ecol., 7, pp. 475-486
dc.descriptionScarpassa, V.M., Alencar, R.B., Lutzomyia umbratilis, the main vector of Leishmania guyanensis, represents a novel species complex? (2012) PLoS One, 7 (5), pp. e37341
dc.descriptionSchmitt, M.W., Kennedy, S.R., Salk, J.J., Fox, E.J., Hiatt, J.B., Loeb, L.A., Detection of ultra-rare mutations by next-generation sequencing (2012) Proc. Natl. Acad. Sci. U.S.A., 109, pp. 14508-14513
dc.descriptionSlatkin, M., A measure of population subdivision based on microsatellite allele frequencies (1995) Genetics, 139, pp. 457-462
dc.descriptionStork, N.E., Hamilton, A.J., Narrowing global species estimates (2013) Springer, New York, Treetops at Risk, pp. 97-102. , M. Lowman, S. Devy, T. Ganesh (Eds.)
dc.descriptionTamura, K., Peterson, D., Peterson, N., Stecher, G., Nei, M., Kumar, S., MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods (2011) Mol. Biol. Evol., 28, pp. 2731-2739
dc.descriptionTaylor, D.B., Hammack, L., Roehrdanz, R.L., Reproductive compatibility and mitochondrial DNA restriction site analysis of New World Screwworm Cochliomyia hominivorax, from North Africa and Central America (1991) Med. Vet. Entomol., 5, pp. 145-152
dc.descriptionTorres, T.T., Brondani, R.P.V., Garcia, J.E., Azeredo-Espin, A.M.L., Isolation and characterization of microsatellite markers in the New World screw-worm Cochliomyia hominivorax (Diptera: Calliphoridae) (2004) Mol. Ecol. Notes, 4, pp. 182-184
dc.descriptionTorres, T.T., Azeredo-Espin, A.M.L., Development of new polymorphic microsatellite markers for the New World screw-worm Cochliomyia hominivorax (Diptera: Calliphoridae) (2005) Mol. Ecol. Notes, 5, pp. 815-817
dc.descriptionTorres, T.T., Lyra, M.L., Fresia, P., Azeredo-Espin, A.M.L., Assessing genetic variation in the New World screwworm Cochliomyia hominivorax populations from Uruguay (2007) Area-wide Control of Insect Pests: From Research to Field Implementation, pp. 183-191. , Springer, Dordrecht, M.J.B. Vreysen, A.S. Robinson, J. Hendrichs (Eds.)
dc.descriptionTorres, T.T., Azeredo-Espin, A.M.L., Population structuring in new world screw-worm populations from the Caribbean: insights from microsatellite data (2009) Med. Vet. Entomol., 23, pp. 23-31
dc.descriptionThomas, D.B., Mangan, R.L., Oviposition and wound-visiting behaviour of the screwworm fly Cochliomyia hominivorax (Diptera: Calliphoridae) (1989) Ann. Entomol. Soc. Am., 82, pp. 526-534
dc.descriptionThompson, J.D., Gibson, T.J., Plewniak, F., Jeanmougin, F., Higgins, D.G., The CLUSTAL_X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools (1997) Nucleic Acids Res., 25, pp. 4876-4882
dc.descriptionVan Oosterhout, C., Hutchinson, W.F., Wills, D.P.M., Shipley, P., Micro-checker: software for identifying and correcting genotyping errors in microsatellite data (2004) Mol. Ecol. Notes, 4, pp. 535-538
dc.descriptionVillesen, P., FaBox: an online toolbox for fasta sequences (2007) Mol. Ecol. Notes, 7, pp. 965-968
dc.descriptionWallace, A.R., On the monkeys of the Amazon (1852) Proc. Zool. Soc. Lond., 20, pp. 107-110
dc.descriptionWyss, J.H., Screw-worm eradication in the Americas - overview (2000) Area-wide Control of Fruit Flies and Other Insect Pests, pp. 79-86. , Penebit Universiti Sains Malaysia, Pulau Pinang, K.H. Tan (Ed.)
dc.descriptionWright, S., (1978) Evolution and the Genetics of Population, Variability Within and Among Natural Populations, , The University of Chicago Press, Chicago
dc.languageen
dc.publisherElsevier
dc.relationActa Tropica
dc.rightsfechado
dc.sourceScopus
dc.titleGenetic Diversity And Population Structure Of The New World Screwworm Fly From The Amazon Region Of Brazil
dc.typeArtículos de revistas


Este ítem pertenece a la siguiente institución