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Original Article

Geographical structuring of Trypanosoma cruzi populations from Chilean Triatoma infestans triatomines and their genetic relationship with other Latino American counterparts

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Pages 625-646 | Received 04 May 2011, Accepted 13 Oct 2011, Published online: 22 Nov 2013

REFERENCES

  • Apt W, Aguilera X, Arribada A, Gomez L, Miles M, Widmer G. (1987). Epidemiology of Chagas’ disease in northern Chile: isozyme profiles in Trypanosoma cruzi from domestic and sylvatic transmission cycles and their association with cardiopathy. American Journal of Tropical Medicine and Hygiene, 37, 302–307.
  • Bowcock AM, Ruíz-Linares A, Tomfohrde J, Minch E, Kidd JR, Cavalli-Sforza LL. (1994). High resolution human evolutionary trees with polymorphic microsatellites. Nature, 368, 455–457.
  • Brisse S, Barnabé C, Tibayrenc M. (2000). Identification of six Trypanosoma cruzi phylogenetic lineages by random amplified polymorphic DNA and multilocus enzyme electrophoresis. International Journal for Parasitology, 30, 35–44.
  • Cavalli-Sforza LL, Edwards AWF. (1967). Phylogenetic analysis: models and estimation procedures. Evolution, 32, 550–570.
  • Coronado X, Zulantay I, Albrecht H, Rosas M, Apt W, Ortiz S, Rodriguez J, Sanchez G, Solari A. (2006). Variation in Trypanosoma cruzi clonal composition detected in blood patients and xenodiagnosis triatomines: implications in the molecular epidemiology of Chile. American Journal of Tropical Medicine and Hygiene, 74, 1008–1012.
  • Deane MP, Mangia RHR, Pereira NM, Momen H, Gonçalves AM, Morel CM. (1984). Trypanosoma cruzi: strain selection by different schedules of mouse passage of an initially mixed infection. Memories Institute Oswaldo Cruz, 79, 495–497.
  • de Freitas JM, Augusto-Pinto L, Pimenta JR, Bastos-Rodrigues L, Gonçalves VF, Teixeira SMR, Chiari E, Junqueira ACV, Fernandes O, Macedo AM, Machado C. R, Pena SDJ. (2006). Ancestral genomes, sex, and the population structure of Trypanosoma cruzi. PLoS Pathogen, 2, 226–235.
  • Dieringer D, Schlötterer C. (2003). Microsatellite analyser (MSA): a platform independent analysis tool for large microsatellite data sets. Molecular Ecology Notes, 3, 167–169.
  • Dorn PL, Engelke D, Rods A, Rosales R, Melgar S, Braney B, Flores J, Monroy C. (1999). Utility of the polymerase chain reaction in detection of Trypanosoma cruzi in Guatemalan Chagas’ disease vectors. American Journal of Tropical Medicine and Hygiene, 60, 740–745.
  • Excoffier L, Smouse PE, Quattro JM. (1992). Analysis of molecular variance inferred from metric distances among DNA haplotypes: application to human mitochondrial DNA data. Genetics, 131, 479–491.
  • Excoffier L, Laval G, Schneider S. (2005). Arlequin ver. 3.0: an integrated software package for population genetics data analysis. Evolution on Bioinformatic Online, 1, 47–50.
  • Felsenstein J. (1989). PHYLIP — Phylogeny Inference Package (Version 3.2). Cladistics, 5, 164–166.
  • Fernandes O, Souto RP, Castro JA, Pereira JB, Fernandes NC, Junqueira ACV, Naiff RD, Barret TV, Degrave W, Zingales B, Campbell DA, Coura JR. (1998). Brazilian isolates of Trypanosoma cruzi from humans and triatomines classified into two lineages using mini-exon and ribosomal RNA sequences. American Journal of Tropical Medicine and Hygiene, 58, 807–811.
  • Gaunt MW, Yeo M, Frame IA, Stothard JR, Carrasco HJ, Taylor MC, Mena SS, Veazey P, Miles GAJ, Acosta N, de Arias AR, Miles MA. (2003). Mechanism of genetic exchange in American trypanosomes. Nature, 421, 936–939.
  • Goldstein DB, Ruiz-Linares A, Cavalli-Sforza LL, Feldman MW. (1995). Genetic absolute dating based on microsatellites and the origin of modern humans. Proceeding of National Academic of Sciences, 92, 6723–6727.
  • Gou S, Thompson E. (1992). Performing the exact test of Hardy–Weinberg proportion for multiple alleles. Biometrics, 48, 361–372.
  • Junqueira AC, Degrave W, Brandao A. (2005). Minicircle organization and diversity in Trypanosoma cruzi populations. Trends in Parasitology, 21, 270–272.
  • Llewelyn MS, Miles MA, Carrasco HJ, Lewis MD, Yeo M, Segobia M, Vargas J, Torrico F, Diosque P, Valente V, Valente S, Gaunt MW. (2009a). Genome-scale multilocus microsatellite typing of Trypanosoma cruzi discrete typing unit reveals phylogeographic structure and specific genotypes linked to human infection. PLoS Pathogens, 5, 1–9.
  • Llewelyn MS, Lewis MD, Acosta N, Yeo M, Carrasco HJ, Vargas J, Torrico F, Miles MA, Gaunt MW. (2009b). Trypanosoma cruzi IIc: phylogenetic and phylogeographic insights from sequence and microsatellite analysis and potential impact on emergent Chagas disease. PLoS Neglected Tropical Disease, 3, 1–10.
  • Lorca M, García A, Bahamonde MI, Fritz A, Tassara R. (2001). Serological certification of the interruption of the vectorial transmission of Chagas disease in Chile. Revista Medica de Chile, 129, 264–269.
  • Macedo AM, Pena SDJ. (1998). Genetic variability of Trypanosoma cruzi: implications for the pathogenesis of Chagas disease. Parasitology Today, 14, 119–124.
  • Machado CA, Ayala FJ. (2001). Nucleotide sequences provide evidence of genetic exchange among distantly related lineages of Trypanosoma cruzi. Proceeding of National Academy of Sciences, 98, 7396–7401.
  • Mantel N. (1967). The detection of disease clustering and a generalized regression approach. Cancer Research, 27, 209–220.
  • Marcili A, Lima L, Valente VC, Valente SA, Batista JS, Junqueira ACV, Souza AI, Rosa JA, Campaner M, Lewis MD, Llewellyn MS, Miles MA, Teixeira MMG. (2009). Comparative phylogeography of Trypanosoma cruzi TCIIc: new host, association with terrestrial ecotopes, and spacial clustering. Infection Genetic and Evolution, 9, 1265–1274.
  • Miles MA, Toye PJ, Oswald SC, Godfrey DG. (1977). The identification by isoenzyme patterns of two distinct strain groups of Trypanosoma cruzi, circulating independently in a rural area of Brazil. Transaction of Royal Society for Tropical Medicine and Hygiene, 71, 217–225.
  • Miles MA, Llewellyn MS, Lewis MD, Yeo M, Baleela R, Fitzpatrick S, Gaunt MW, Mauricio IL. (2009). The molecular epidemiology and phylogeography of Trypanosoma cruzi and parallel research on Leishmania: looking back and to the future. Parasitology, 136, 1509–1528.
  • Momen H. (1999). Taxonomy of Trypanosoma cruzi: a commentary on characterization and nomenclature. Memorias Instituto Oswaldo Cruz, 94, 181–184.
  • Nei M, Tajima F, Tateno T. (1983). Accuracy of estimated phylogenetic trees from molecular data. Journal of Molecular Evolution, 19, 153–170.
  • Oliveira RP, Broude NE, Macedo AM, Cantor CR, Smith CL, Pena SDJ. (1998). Probing the genetic population structure of Trypanosoma cruzi with polymorphic microsatellites. Proceeding of National Academy of Sciences, 95, 3776–3780.
  • Paetkau D, Calver W, Stirling I, Strobeck C. (1995). Microsatellite analysis of population structure in Canadian polar bears. Molecular Ecology, 4, 347–354.
  • Rannala B, Mountain JL. (1997). Detecting immigration by using multilocus genotypes. Proceeding of National Academy of Sciences, 94, 9197–9201.
  • Rozas M, Botto-Mahan C, Coronado X, Ortiz S, Cattan PE, Solari A. (2007). Coexistence of Trypanosoma cruzi genotypes in wild and periodomestic mammals in Chile. American Journal of Tropical Medicine and Hygiene, 77, 647–653.
  • Raymond M, Rousset F. (1995a). An exact test for population differentiation. Evolution, 49, 1283–1286.
  • Raymond M, Rousset F. (1995b). GENEPOP Version 1.2: population genetics software for exact tests and ecumenicism. Journal of Heredity, 86, 248–249.
  • Saitou N, Nei M. (1987). The neighbor-joining method: a new method for reconstructing phylogenetic trees. Molecular Biology and Evolution, 4, 406–425.
  • Sanchez G, Wallace A, Muñoz S, Venegas J, Ortiz S, Solari A. (1993). Characterization of Trypanosoma cruzi populations by several molecular markers support a clonal mode of reproduction. Biological Research, 26, 167–176.
  • Schneider S, Roessli D, Excoffier L. (2000). Arlequin ver. 2.000: a software for population genetics data analysis. Genetics and Biometry Laboratory, University of Geneva, Geneva, Switzerland.
  • Slatkin M (1995). A measure of population subdivision based on microsatellite allele frequencies. Genetics, 139, 457–462.
  • Solari A, Campillay S, Ortiz S, Wallace A. (2001). Identification of Trypanosoma cruzi genotypes circulating in Chilean chagasic patients. Experimental Parasitology, 97, 226–233.
  • Souto RP, Fernandes O, Macedo AM, Campbell DA, Zingales B. (1996). DNA markers define two major phylogenetic lineages of Trypanosoma cruzi. Molecular Biochemistry and Parasitology, 83, 141–152.
  • Tibayrenc M, Ward P, Moya A, Ayala FJ. (1986). Natural populations of Trypanosoma cruzi, the agent of Chagas disease, have a complex multiclonal structure. Proceeding of National Academy of Sciences, 83, 115–119.
  • Tibayrenc M, Kjellberg F, Ayala FJ (1990). A clonal theory of parasitic protozoa: the population structure of Entamoeba, Giardia, Leishmania, Naegleria, Plasmodium, Trichomonas and Trypanosoma, and its medical and taxonomical consequences. Proceeding of National Academic of Science, 87, 2414–2418.
  • Tibayrenc M. (2003). Genetic subdivisions within Trypanosoma cruzi (Discrete Typing Units) and their relevance for molecular epidemiology and experimental evolution. Kinetoplastid Biology and Disease, 3, 2–12.
  • Telleria J, Lafay B, Virreira M, Barnabé C, Tibayrenc M, Svoboda M. (2006). Trypanosoma cruzi: sequence analysis of the variable region of kinetoplast minicircles. Experimental Parasitology, 114, 279–288.
  • Torres JP, Ortiz S, Munoz S, Solari A. (2004). Trypanosoma cruzi isolates from Chile are heterogeneous and composed of mixed populations when characterized by schizodeme and Southern analyses. Parasitology, 128, 161–168.
  • Venegas J, Coñoepan W, Pichuantes S, Miranda S, Jercic MI, Gajardo M, Sánchez G. (2009a). Phylogenetic analysis of microsatellite markers further supports the two hybridization events hypothesis as the origin of the Trypanosoma cruzi lineages. Parasitology Research, 105, 191–199.
  • Venegas J, Coñoepan W, Pichuantes S, Miranda S, Apt W, Arribada A, Zulantay I, Coronado X, Rodriguez J, Reyes E, Solari A, Sánchez G. (2009b). Differential distribution of Trypanosama cruzi clones in human chronic cardiopathic and non- cardiopathic individuals. Acta Tropica, 109, 187–193.
  • Venegas J, Miranda S, Coñoepan W, Pichuantes S, Jercic MI, González C, Gajardo M, Apt W, Arribada A, Sánchez G. (2010). Microsatellite marker analysis shows differentiation among Trypanosoma cruzi populations of peripheral blood and dejections of Triatoma infestans fed on the same chronic chagasic patients. Parasitology Research, 107, 855–863.
  • Venegas J, Ortiz S, Muñoz S, Solari A. (1997). Molecular karyotype and schizodeme analyses of Trypanosoma cruzi stocks from Chilean triatomines. Parasitology, 115, 41–46.
  • Weir BS, Cockerham CC. (1984). Estimating F-statistics for the analysis of population structure. Evolution, 38, 1358–1370.
  • Westenberger SJ, Barnabé C, Campbell DA, Sturm NR. (2005). Two hybridization events define the population structure of Trypanosoma cruzi. Genetics, 171, 527–543.
  • World Health Organization (WHO). (2007). Report on the Chagas Disease, eds Guhl F, Lazdins-Helds J K. Special Program for the Research and Training of Tropical Diseases (TDR/SWG/09). Geneva: WHO.
  • Yeo M, Acosta N, Llewellyn M, Sanchez H, Adamson S, Miles GAJ, Lopez E, Gonzalez N, Patterson JS, Gaunt MW. (2005). Origins of Chagas disease: Didelphis species are natural hosts of Trypanosoma cruzi I and armadillos hosts of Trypanosoma cruzi II, including hybrids. International Journal for Parasitology, 35, 225–233.
  • Zingales B, Souto RP, Mangia RH, Lisboa CV, Campbell DA, Coura JR, Jansen A, Fernandes O. (1998). Molecular epidemiology of American trypanosomiasis in Brazil based on dimorphisms of rRNA and mini-exon gene sequences. International Journal for Parasitology, 28, 105–112.
  • Zingales B, Andrade SG, Briones MRS, Campbell DA, Chiari E, Fernandes O, Guhl F, Lages-Silva E, Macedo AM, Machado CR, Miles MA, Romanha AJ, Sturm NR, Tibayrenc M, Schijman AG. (2009). A new consensus for Trypanosoma cruzi intraspecific nomenclature: second revision meeting recommends TcI to TcVI. Memorias do Instituto Oswaldo Cruz, 104, 1051–1054.

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