Literature DB >> 12173401

Impact of Trypanosoma cruzi clonal evolution on its biological properties in mice.

M J de O Toledo1, M de Lana, C M Carneiro, M T Bahia, G L L Machado-Coelho, V M Veloso, C Barnabé, M Tibayrenc, W L Tafuri.   

Abstract

Twenty Trypanosoma cruzi stocks attributed to the 19, 20, 39, and 32 clonal genotypes were comparatively studied in BALB/c mice during the acute and chronic phases of the infection to test the working hypothesis that T. cruzi clonal structure has a major impact on its biological properties. Fourteen parameters were assayed: (1) infectivity; (2) prepatent period; (3) patent period; (4) maximum of parasitemia; (5) day of maximum of parasitemia; (6) parasitemia; (7) mortality, (8) percentage of positive hemoculture, (9) tissue parasitism; (10) inflammatory process during the acute phase of the infection; (11) mortality, (12) percentage of positive hemoculture; (13) tissue parasitism; and (14) inflammatory process during the chronic phase of the infection. Statistical comparison showed that the results are overall consistent with the working hypothesis that biological differences are proportional to the evolutionary divergence among the genotypes. Thus, closely related genotypes (19 vs 20 and 32 vs 39) show in general fewer differences than distantly related groups (19 or 20 vs 32 or 39) except for the comparison between 19 and 32. The working hypothesis is even more strongly supported by the result of the nonparametric Mantel test, which showed a highly significant correlation (P = 2.3 x 10(-3)) between biological differences and genetic distances among all pairs of stocks. These data taken together emphasize that it is crucial to take into account the phylogenetic diversity of T. cruzi natural clones in all applied studies dealing with diagnosis, drug and vaccine design, epidemiological surveys, and clinical diversity of Chagas' disease. Index Descriptors and Abbreviations: Trypanosoma cruzi; phylogenetic distance; biological properties; clonal theory; multilocus enzyme electrophoresis (MLEE); randomly amplified polymorphic DNA (RAPD); acute phase (AP); chronic phase (CP); days after inoculation (d.a.i.); liver infusion tryptose (LIT); gastrointestinal tract (GIT); genitourinary tract (GUT); percentage of infectivity (%INF); percentage of mortality during the acute phase (%MORT AP); percentage of mortality during the chronic phase (%MORT CP); prepatent period (PPP); patent period (PP); maximum of parasitemia (MP); day of maximum of parasitemia (DMP); parasitemia (PAR); percentage of positive hemoculture during the acute phase (% + HC AP); percentage of positive hemoculture during the chronic acute phase (% + HC CP); tissue parasitism (TP); inflammatory process (IP); tissue parasitism during the acute phase (TP AP); tissue parasitism during chronic phase (TP CP); inflammatory process during acute phase (IP AP); inflammatory process chronic phase (IP CP); Mann-Whitney test (MW); Kruskal-Wallis (KW); Kolmogorow-Smirnov test (KS).

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Year:  2002        PMID: 12173401     DOI: 10.1016/s0014-4894(02)00003-6

Source DB:  PubMed          Journal:  Exp Parasitol        ISSN: 0014-4894            Impact factor:   2.011


  16 in total

1.  Infectivity for mice of Trypanosoma cruzi I and II strains isolated from different hosts.

Authors:  Marta Bértoli; Miriam Hitomi Andó; Max Jean De Ornelas Toledo; Silvana Marques De Araújo; Mônica Lúcia Gomes
Journal:  Parasitol Res       Date:  2006-01-31       Impact factor: 2.289

2.  Enalapril in Combination with Benznidazole Reduces Cardiac Inflammation and Creatine Kinases in Mice Chronically Infected with Trypanosoma cruzi.

Authors:  Arlete Rita Penitente; Ana Luísa Junqueira Leite; Guilherme de Paula Costa; Deena Shrestha; Aline Luciano Horta; Antônio J Natali; Clóvis A Neves; Andre Talvani
Journal:  Am J Trop Med Hyg       Date:  2015-09-08       Impact factor: 2.345

3.  Phylogenetic Analysis of Trypanosoma cruzi from Pregnant Women and Newborns from Argentina, Honduras, and Mexico Suggests an Association of Parasite Haplotypes with Congenital Transmission of the Parasite.

Authors:  Claudia Herrera; Carine Truyens; Eric Dumonteil; Jackeline Alger; Sergio Sosa-Estani; Maria L Cafferata; Luz Gibbons; Alvaro Ciganda; Maria L Matute; Concepcion Zuniga; Yves Carlier; Pierre Buekens
Journal:  J Mol Diagn       Date:  2019-08-23       Impact factor: 5.568

4.  Trypanosoma cruzi strains in the Calomys callosus: parasitemia and reaction of intracellular forms with stage-specific antibodies in the acute and chronic phase of infection and after immunosuppression.

Authors:  Noemi Nosomi Taniwaki; Viviane Martinelli Gonçalves; Julianna Kesselring Romero; Claudio Vieira da Silva; Solange da Silva; Renato Arruda Mortara
Journal:  Parasitol Res       Date:  2011-02-18       Impact factor: 2.289

5.  Influence of the long-term Trypanosoma cruzi infection in vertebrate host on the genetic and biological diversity of the parasite.

Authors:  V M Veloso; A J Romanha; M Lana; S M F Murta; C M Carneiro; C F Alves; E C Borges; W L Tafuri; G L L Machado-Coelho; E Chiari; M T Bahia
Journal:  Parasitol Res       Date:  2005-06-07       Impact factor: 2.289

6.  Are Members of the Triatoma brasiliensis (Hemiptera, Reduviidae) Species Complex Able to Alter the Biology and Virulence of a Trypanosoma cruzi Strain?

Authors:  J Costa; C A C Araújo; C A V Freitas; J Borges-Pereira
Journal:  Neotrop Entomol       Date:  2015-03-03       Impact factor: 1.434

7.  Chemotherapy with benznidazole and itraconazole for mice infected with different Trypanosoma cruzi clonal genotypes.

Authors:  Max Jean de Ornelas Toledo; Maria Terezinha Bahia; Cláudia M Carneiro; Olindo Assis Martins-Filho; Michel Tibayrenc; Christian Barnabé; Washington Luis Tafuri; Marta de Lana
Journal:  Antimicrob Agents Chemother       Date:  2003-01       Impact factor: 5.191

8.  Sequence diversity and differential expression of Tc52 immuno-regulatory protein in Trypanosoma cruzi: potential implications in the biological variability of strains.

Authors:  Françoise Mathieu-Daudé; Marie-France Bosseno; Edwin Garzon; Joël Lelièvre; Denis Sereno; Ali Ouaissi; Simone Frédérique Brenière
Journal:  Parasitol Res       Date:  2007-07-23       Impact factor: 2.289

9.  Contribution of NK, NK T, gamma delta T, and alpha beta T cells to the gamma interferon response required for liver protection against Trypanosoma cruzi.

Authors:  Luiz Roberto Sardinha; Rosa Maria Elias; Tainá Mosca; Karina R B Bastos; Cláudio R F Marinho; Maria Regina D'Império Lima; José M Alvarez
Journal:  Infect Immun       Date:  2006-04       Impact factor: 3.441

10.  TcSNP: a database of genetic variation in Trypanosoma cruzi.

Authors:  Alejandro A Ackermann; Santiago J Carmona; Fernán Agüero
Journal:  Nucleic Acids Res       Date:  2008-10-30       Impact factor: 16.971

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