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Geographical Distribution of Trypanosoma cruzi Genotypes in Venezuela

DOI: 10.1371/journal.pntd.0001707

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Abstract:

Chagas disease is an endemic zoonosis native to the Americas and is caused by the kinetoplastid protozoan parasite Trypanosoma cruzi. The parasite is also highly genetically diverse, with six discrete typing units (DTUs) reported TcI – TcVI. These DTUs broadly correlate with several epidemiogical, ecological and pathological features of Chagas disease. In this manuscript we report the most comprehensive evaluation to date of the genetic diversity of T. cruzi in Venezuela. The dataset includes 778 samples collected and genotyped over the last twelve years from multiple hosts and vectors, including nine wild and domestic mammalian host species, and seven species of triatomine bug, as well as from human sources. Most isolates (732) can be assigned to the TcI clade (94.1%); 24 to the TcIV group (3.1%) and 22 to TcIII (2.8%). Importantly, among the 95 isolates genotyped from human disease cases, 79% belonged to TcI - a DTU common in the Americas, however, 21% belonged to TcIV- a little known genotype previously thought to be rare in humans. Furthermore, were able to assign multiple oral Chagas diseases cases to TcI in the area around the capital, Caracas. We discuss our findings in the context of T. cruzi DTU distributions elsewhere in the Americas, and evaluate the impact they have on the future of Chagas disease control in Venezuela.

References

[1]  Rassi A Jr, Rassi A, Marin-Neto JA (2010) Chagas disease. Lancet 375: 1388–1402. doi: 10.1016/S0140-6736(10)60061-X
[2]  Roellig DM, Brown EL, Barnabe C, Tibayrenc M, Steurer FJ, et al. (2008) Molecular typing of Trypanosoma cruzi isolates, United States. Emerg Infect Dis 14: 1123–1125. doi: 10.3201/eid1407.080175
[3]  Marcet PL, Duffy T, Cardinal MV, Burgos JM, Lauricella MA, et al. (2006) PCR-based screening and lineage identification of Trypanosoma cruzi directly from faecal samples of triatomine bugs from northwestern Argentina. Parasitology 132: 57–65. doi: 10.1017/S0031182005008772
[4]  Yeo M, Acosta N, Llewellyn M, Sanchez H, Adamson S, et al. (2005) Origins of Chagas disease: Didelphis species are natural hosts of Trypanosoma cruzi I and armadillos hosts of Trypanosoma cruzi II, including hybrids. Int J Parasitol 35: 225–233. doi: 10.1016/j.ijpara.2004.10.024
[5]  Lewis MD, Llewellyn MS, Yeo M, Acosta N, Gaunt MW, et al. (2011) Recent, independent and anthropogenic origins of Trypanosoma cruzi hybrids. PLoS Negl Trop Dis 5: e1363. doi: 10.1371/journal.pntd.0001363
[6]  Machado CA, Ayala FJ (2001) Nucleotide sequences provide evidence of genetic exchange among distantly related lineages of Trypanosoma cruzi. Proc Natl Acad Sci U S A 98: 7396–7401. doi: 10.1073/pnas.121187198
[7]  Miles M, Toye P, Oswald S, Godfrey D (1977) The identification by isoenzyme patterns of two distinct strain-groups of Trypanosoma cruzi, circulating independently in a rural area of Brazil. Transactions of the Royal Society for Tropical Medicine and Hygiene 71: 217–225. doi: 10.1016/0035-9203(77)90012-8
[8]  Miles MA, Cedillos RA, Povoa MM, de Souza AA, Prata A, et al. (1981) Do radically dissimilar Trypanosoma cruzi strains (zymodemes) cause Venezuelan and Brazilian forms of Chagas' disease? Lancet 1: 1338–1340. doi: 10.1016/S0140-6736(81)92518-6
[9]  Miles MA, Arias JR, de Souza AA (1983) Chagas' disease in the Amazon basin: V. Periurban palms as habitats of Rhodnius robustus and Rhodnius pictipes–triatomine vectors of Chagas' disease. Mem Inst Oswaldo Cruz 78: 391–398. doi: 10.1590/S0074-02761983000400002
[10]  Brisse S, Verhoef J, Tibayrenc M (2001) Characterisation of large and small subunit rRNA and mini-exon genes further supports the distinction of six Trypanosoma cruzi lineages. Int J Parasitol 31: 1218–1226. doi: 10.1016/S0020-7519(01)00238-7
[11]  Zingales B, Andrade SG, Briones MRS, Campbell DA, Chiari E, et al. (2009) A new consensus for Trypanosoma cruzi intraspecific nomenclature: second revision meeting recommends TcI to TcVI. Mem Inst Oswaldo Cruz 104: 1051–1054. doi: 10.1590/S0074-02762009000700021
[12]  Macedo AM, Machado CR, Oliveira RP, Pena SD (2004) Trypanosoma cruzi: genetic structure of populations and relevance of genetic variability to the pathogenesis of chagas disease Memórias do Instituto. Oswaldo Cruz 99: 1–12.
[13]  Miles MA, Llewellyn MS, Lewis MD, Yeo M, Baleela R, et al. (2009) The molecular epidemiology and phylogeography of Trypanosoma cruzi and parallel research on Leishmania: looking back and to the future. Parasitology 136: 1509–1528. doi: 10.1017/S0031182009990977
[14]  Brisse S, Barnabe 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. doi: 10.1016/S0020-7519(99)00168-X
[15]  Feliciangeli MD, Carrasco H, Patterson JS, Suarez B, Martinez C, et al. (2004) Mixed domestic infestation by Rhodnius prolixus Stal, 1859 and Panstrongylus geniculatus Latreille, 1811, vector incrimination, and seroprevalence for Trypanosoma cruzi among inhabitants in El Guamito, Lara State, Venezuela. Am J Trop Med Hyg 71: 501–505.
[16]  Anez N, Crisante G, da Silva FM, Rojas A, Carrasco H, et al. (2004) Predominance of lineage I among Trypanosoma cruzi isolates from Venezuelan patients with different clinical profiles of acute Chagas' disease. Trop Med Int Health 9: 1319–1326. doi: 10.1111/j.1365-3156.2004.01333.x
[17]  Carrasco HJ, Torrellas A, Garcia C, Segovia M, Feliciangeli MD (2005) Risk of Trypanosoma cruzi I (Kinetoplastida: Trypanosomatidae) transmission by Panstrongylus geniculatus (Hemiptera: Reduviidae) in Caracas (Metropolitan District) and neighboring States, Venezuela. Int J Parasitol 35: 1379–1384. doi: 10.1016/j.ijpara.2005.05.003
[18]  Crisante G, Rojas A, Teixeira MM, Anez N (2006) Infected dogs as a risk factor in the transmission of human Trypanosoma cruzi infection in western Venezuela. Acta Trop 98: 247–254. doi: 10.1016/j.actatropica.2006.05.006
[19]  Llewellyn MS, Miles MA, Carrasco HJ, Lewis MD, Yeo M, et al. (2009) Genome-scale multilocus microsatellite typing of Trypanosoma cruzi discrete typing unit I reveals phylogeographic structure and specific genotypes linked to human infection. PLoS Pathog 5: e1000410. doi: 10.1371/journal.ppat.1000410
[20]  Morocoima A, Chique J, Zavala-Jaspe R, Díaz-Bello Z, Ferrer E, et al. (2010) Commercial coconut palm as an ecotope of Chagas disease vectors in north-eastern Venezuela. J Vector Borne Dis 47: 76–84.
[21]  Alarcón de Noya B, Díaz-Bello Z, Colmenares C, Ruiz-Guevara R, Mauriello L, et al. (2010) Large Urban Outbreak of Orally Acquired Acute Chagas Disease at a School in Caracas, Venezuela. Journal of Infectious Diseases 201: 1308–1315. doi: 10.1086/651608
[22]  Llewellyn MS, Lewis MD, Acosta N, Yeo M, Carrasco HJ, et al. (2009) Trypanosoma cruzi IIc: phylogenetic and phylogeographic insights from sequence and microsatellite analysis and potential impact on emergent Chagas disease. PLoS Negl Trop Dis 3: e510. doi: 10.1371/journal.pntd.0000510
[23]  Lent H, Wygodzinsky P (1979) Revision of the Triatominae and their significance as vectors of Chagas disease. Bull Am Mus Nat Hist 163: 123–520.
[24]  Fitzpatrick S, Feliciangeli MD, Sanchez-Martin MJ, Monteiro FA, Miles MA (2008) Molecular Genetics Reveal That Silvatic Rhodnius prolixus Do Colonise Rural Houses. PLoS Negl Trop Dis 2: e210. doi: 10.1371/journal.pntd.0000210
[25]  Miles MA (1993) Culturing and biological cloning of Trypanosoma cruzi. Methods Mol Biol 21: 15–28. doi: 10.1385/0-89603-239-6:15
[26]  Carrasco HJ, Frame IA, Valente SA, Miles MA (1996) Genetic exchange as a possible source of genomic diversity in sylvatic populations of Trypanosoma cruzi. Am J Trop Med Hyg 54: 418–424.
[27]  Westenberger SJ, Barnabe C, Campbell DA, Sturm NR (2005) Two Hybridization Events Define the Population Structure of Trypanosoma cruzi. Genetics 171: 527–543. doi: 10.1534/genetics.104.038745
[28]  Marcili A, Valente VC, Valente SA, Junqueira AC, da Silva FM, et al. (2009) Trypanosoma cruzi in Brazilian Amazonia: Lineages TCI and TCIIa in wild primates, Rhodnius spp. and in humans with Chagas disease associated with oral transmission. Int J Parasitol 39: 615–623. doi: 10.1016/j.ijpara.2008.09.015
[29]  Miles MA, Povoa MM, de Souza AA, Lainson R, Shaw JJ, et al. (1981) Chagas's disease in the Amazon Basin: Ii. The distribution of Trypanosoma cruzi zymodemes 1 and 3 in Para State, north Brazil. Trans R Soc Trop Med Hyg 75: 667–674. doi: 10.1016/0035-9203(81)90145-0
[30]  Povoa MM, de Souza AA, Naiff RD, Arias JR, Naiff MF, et al. (1984) Chagas' disease in the Amazon basin IV. Host records of Trypanosoma cruzi zymodemes in the states of Amazonas and Rondonia, Brazil. Ann Trop Med Parasitol 78: 479–487.
[31]  Feliciangeli MD, Sanchez-Martin MJ, Suarez B, Marrero R, Torrellas A, et al. (2007) Risk Factors for Trypanosoma cruzi Human Infection in Barinas State, Venezuela. Am J Trop Med Hyg 76: 915–921.
[32]  Roque AL, Xavier SC, da Rocha MG, Duarte AC, D'Andrea PS, et al. (2008) Trypanosoma cruzi transmission cycle among wild and domestic mammals in three areas of orally transmitted Chagas disease outbreaks. Am J Trop Med Hyg 79: 742–749.
[33]  Marcili A, Lima L, Valente VC, Valente SA, Batista JS, et al. (2009) Comparative phylogeography of Trypanosoma cruzi TCIIc: new hosts, association with terrestrial ecotopes, and spatial clustering. Infect Genet Evol 9: 1265–1274. doi: 10.1016/j.meegid.2009.07.003
[34]  Tibayrenc M, Ayala F (1988) Isozyme variability of Trypanosoma cruzi, the agent of Chagas' disease: genetical, taxonomical and epidemiological significance. Evolution 42: 277–292.
[35]  Zingales B, Miles MA, Campbell DA, Tibayrenc M, Macedo AM, et al. (2011) The revised Trypanosoma cruzi subspecific nomenclature: Rationale, epidemiological relevance and research applications. Infect Genet Evol. doi: 10.1016/j.meegid.2011.12.009
[36]  Cortez MR, Pinho AP, Cuervo P, Alfaro F, Solano M, et al. (2006) Trypanosoma cruzi (Kinetoplastida Trypanosomatidae): ecology of the transmission cycle in the wild environment of the Andean valley of Cochabamba, Bolivia. Exp Parasitol 114: 305–313. doi: 10.1016/j.exppara.2006.04.010
[37]  Bowman NM, Kawai V, Levy MZ, Cornejo del Carpio JG, Cabrera L, et al. (2008) Chagas disease transmission in periurban communities of Arequipa, Peru. Clin Infect Dis 46: 1822–1828. doi: 10.1086/588299
[38]  Miles MA (2010) Orally acquired Chagas disease: lessons from an urban school outbreak. J Infect Dis 201: 1282–1284. doi: 10.1086/651609
[39]  Feliciangeli MD, Campbell-Lendrum D, Martinez C, Gonzalez D, Coleman P, et al. (2003) Chagas disease control in Venezuela: lessons for the Andean region and beyond. Trends Parasitol 19: 44–49. doi: 10.1016/S1471-4922(02)00013-2

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