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1.
Parasitology ; 149(2): 155-160, 2022 02.
Artigo em Inglês | MEDLINE | ID: mdl-35234603

RESUMO

Trypanosoma rangeli is a protozoan that infects triatomines and mammals in Latin America, sharing hosts with Trypanosoma cruzi, the etiological agent of Chagas disease. Trypanosoma rangeli does not cause disease to humans but is strongly pathogenic to its invertebrate hosts, increasing mortality rates and affecting bug development and reproductive success. We have previously shown that this parasite is also capable of inducing a general increase in the locomotory activity of its vector Rhodnius prolixus in the absence of host cues. In this work, we have evaluated whether infection impacts the insect­vertebrate host interaction. For this, T. rangeli-infected and uninfected R. prolixus nymphs were released in glass arenas offering single shelters. After a 3-day acclimatization, a caged mouse was introduced in each arena and shelter use and predation rates were evaluated. Trypanosoma rangeli infection affected all parameters analysed. A larger number of infected bugs was found outside shelters, both in the absence and presence of a host. Infected bugs also endured greater predation rates, probably because of an increased number of individuals that attempted to feed. Interestingly, mice that predated on infected bugs did not develop T. rangeli infection, suggesting that the oral route is not effective for these parasites, at least in our system. Finally, a smaller number of infected bugs succeeded in feeding in this context. We suggest that, although T. rangeli is not transmitted orally, an increase in the proportion of foraging individuals would promote greater parasite transmission rates through an increased frequency of very effective infected-bug bites.


Assuntos
Rhodnius , Trypanosoma cruzi , Trypanosoma rangeli , Trypanosoma , Animais , Insetos Vetores/parasitologia , Mamíferos , Camundongos , Comportamento Predatório , Rhodnius/parasitologia
2.
Biochem J ; 478(21): 3891-3903, 2021 11 12.
Artigo em Inglês | MEDLINE | ID: mdl-34661234

RESUMO

The pathogenic protist Trypanosoma cruzi uses kissing bugs as invertebrate hosts that vectorize the infection among mammals. This parasite oxidizes proline to glutamate through two enzymatic steps and one nonenzymatic step. In insect vectors, T. cruzi differentiates from a noninfective replicating form to nonproliferative infective forms. Proline sustains this differentiation, but to date, a link between proline metabolism and differentiation has not been established. In T. cruzi, the enzymatic steps of the proline-glutamate oxidation pathway are catalyzed exclusively by the mitochondrial enzymes proline dehydrogenase [TcPRODH, EC: 1.5.5.2] and Δ1-pyrroline-5-carboxylate dehydrogenase [TcP5CDH, EC: 1.2.1.88]. Both enzymatic steps produce reducing equivalents that are able to directly feed the mitochondrial electron transport chain (ETC) and thus produce ATP. In this study, we demonstrate the contribution of each enzyme of the proline-glutamate pathway to ATP production. In addition, we show that parasites overexpressing these enzymes produce increased levels of H2O2, but only those overexpressing TcP5CDH produce increased levels of superoxide anion. We show that parasites overexpressing TcPRODH, but not parasites overexpressing TcP5CDH, exhibit a higher rate of differentiation into metacyclic trypomastigotes in vitro. Finally, insect hosts infected with parasites overexpressing TcPRODH showed a diminished parasitic load but a higher percent of metacyclic trypomastigotes, when compared with controls. Our data show that parasites overexpressing both, PRODH and P5CDH had increased mitochondrial functions that orchestrated different oxygen signaling, resulting in different outcomes in relation to the efficiency of parasitic differentiation in the invertebrate host.


Assuntos
Doença de Chagas/parasitologia , Mitocôndrias/metabolismo , Prolina Oxidase/metabolismo , Rhodnius/parasitologia , Trypanosoma cruzi/patogenicidade , Animais , Diferenciação Celular
3.
Exp Parasitol ; 232: 108197, 2022 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-34863706

RESUMO

Vector competence of triatomines (kissing bugs) for Trypanosoma cruzi transmission depends on the parasite-vector interaction and the genetic constitution of both. This study evaluates the susceptibility and vector competence of Rhodnius robustus experimentally infected with T. cruzi IV (TcIV). Nymphs were fed on infected mice or an artificial feeder with blood containing culture-derived metacyclic trypomastigotes (CMT) or blood trypomastigotes (BT). The intestinal contents (IC) and excreta of the insects were examined by fresh examination and kDNA-PCR. The rate of metacyclogenesis was also determined by differential counts. Fifth instar nymphs fed with CMT ingested a greater blood volume (mean of 74.5 µL) and a greater amount of parasites (mean of 149,000 CMT/µL), and had higher positivity in the fresh examination of the IC. Third instar nymphs fed with CMT had higher positivity (33.3%) in the fresh examination of the excreta. On the 20th day after infection (dai), infective metacyclic trypomastigote (MT) forms were predominant in the excreta of 3/4 experimental groups, and on the 30th dai, the different parasitic forms were observed in the IC of all the groups. Higher percentages of MT were observed in the excreta of the 5th instar nymphs group (84.1%) and in the IC of the 3rd instar nymphs group (80.0%). Rhodnius robustus presented high susceptibility to infection since all nymphs were infected, regardless of the method used for blood meal, in addition these insects demonstrated vector competence for TcIV with high rates of metacyclogenesis being evident.


Assuntos
Doença de Chagas/transmissão , Insetos Vetores/parasitologia , Rhodnius/parasitologia , Trypanosoma cruzi/fisiologia , Animais , Humanos , Camundongos , Ninfa/parasitologia , Reação em Cadeia da Polimerase
4.
Exp Parasitol ; 236-237: 108247, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-35307367

RESUMO

Studies on the effects of azadirachtin treatment, ecdysone supplementation and ecdysone therapy on both the ultrastructural organization of the rectum in 5th-instar nymph of Rhodnius prolixus and the ex vivo attachment behavior of Trypanosoma cruzi under these experimental conditions were carried out. Control insects had a typical and significant organization of the rectum cuticle consisted of four main layers (procuticle, inner epicuticle, outer epicuticle, and wax layer) during the entire period of the experiment. Both azadirachtin treatment and ecdysone supplementation avoid the development of both outer epicuticle and wax layer. Oral therapy with ecdysone partially reversed the altered organization and induce the development of the four main rectal cuticle layers. In the same way, the ex vivo attachment of T. cruzi to rectal cuticle was blocked by azadirachtin treatment but ecdysone therapy also partially recovered the parasite adhesion rates to almost those detected in control insects. These results point out that ecdysone may be a factor responsible - directly or indirectly - by the modulation of rectum ultrastructural arrangement providing a superficial wax layer to the attachment followed by metacyclogenesis of T. cruzi in the rectum of its invertebrate hosts.


Assuntos
Doença de Chagas , Rhodnius , Trypanosoma cruzi , Animais , Doença de Chagas/tratamento farmacológico , Ecdisona/farmacologia , Ninfa , Reto/parasitologia , Reto/ultraestrutura , Rhodnius/parasitologia
5.
Med Vet Entomol ; 35(3): 389-399, 2021 09.
Artigo em Inglês | MEDLINE | ID: mdl-33394514

RESUMO

In the Amazon region, Trypanosoma cruzi transmission cycles involve a great diversity of Triatominae vectors and mammal reservoirs. Some Rhodnius spp. mainly inhabit palm trees that act as microhabitats for hosts and vectors. The current study aimed to describe aspects of the bio-ecology of the vectors and reservoirs of T. cruzi in relation to human populations resident near areas with large quantities of palm trees, in rural, peri-urban and urban collection environments, located in the Western Brazilian Amazon. Rhodnius pictipes and Didelphis marsupialis were respectively the most predominant vector and reservoir, with rates of 71% for R. pictipes and 96.5% for D. marsupialis. The vast majority of T. cruzi isolates clustered with TcI. The most prevalent haplotype was TcI COII1 (69.7%). Mauritia flexuosa and Attalea phalerata were the main ecological indicators of infestation by triatomines. Birds were the most common food source (27,71%). T. cruzi isolated from R. robustus has the haplotype HUM-13, previously detected in a chronic Chagas patient living in the same area. Our results demonstrate the relevance of this study, with the occurrence of elevated infection rates in animals, and suggest the importance of the Amazon zones where there is a risk of infection in humans.


Assuntos
Doença de Chagas , Marsupiais , Rhodnius , Triatominae , Trypanosoma cruzi , Animais , Brasil/epidemiologia , Doença de Chagas/epidemiologia , Doença de Chagas/veterinária , Reservatórios de Doenças , Marsupiais/parasitologia , Rhodnius/parasitologia , Triatominae/parasitologia , Trypanosoma cruzi/genética
6.
Parasitol Res ; 120(8): 2939-2945, 2021 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-34185156

RESUMO

In Latin America, Chagas disease has been mostly transmitted to humans by contact with the feces or urine of triatomine species infected with the protozoan Trypanosoma cruzi. There are currently 156 species in the subfamily Triatominae, distributed in 18 genera and five tribes. The prolixus group of the genus Rhodnius is composed of 11 species. Rhodnius marabaensis was the last species described and considered in this grouping of vectors. Knowledge about the biology, ecology, and behavior of these vectors is of great epidemiological importance, and in order to expand the knowledge of the biology of R. marabaensis, this paper describes the biological cycle and emergence rates of the species under laboratory conditions. The experiment was carried out at temperatures ranging from 15.5 to 29 °C (average of 24 °C) and humidity ranging from 51.4 to 72.2 (average of 63). For each of the fifteen couples, the egg emergence rate was calculated throughout the oviposition period. The oviposition period lasted from February to September, and the emergence rate varied between 13.9 and 53.3%. R. marabaensis presented an emergence rate of 46.7% and a total biological cycle of 193 days (the mean time required for emergence (25.1 days), 1st nymphal instar (19.4 days), 2nd nymphal instar (22.1 days), 3rd nymphal instar (26.2 days), 4th nymphal instar (29.3 days), and 5th nymphal instar (70.9 days)). Based on the biological cycle of R. marabaensis and 14 other Rhodnius species already described in the literature, it was also possible to calculate the averages for the groups prolixus, pictipes, and pallescens and, mainly, for the genus Rhodnius, contributing to the knowledge of this important group of Chagas disease vectors.


Assuntos
Rhodnius , Animais , Doença de Chagas/transmissão , Ecologia , Feminino , Insetos Vetores/crescimento & desenvolvimento , Insetos Vetores/parasitologia , Larva/crescimento & desenvolvimento , Oviposição , Rhodnius/crescimento & desenvolvimento , Rhodnius/parasitologia
7.
Int J Mol Sci ; 22(11)2021 Jun 03.
Artigo em Inglês | MEDLINE | ID: mdl-34205189

RESUMO

The triatomine Rhodnius prolixus is the main vector of Chagas disease in countries such as Colombia and Venezuela, and the first kissing bug whose genome has been sequenced and assembled. In the repetitive genome fraction (repeatome) of this species, the transposable elements represented 19% of R. prolixus genome, being mostly DNA transposon (Class II elements). However, scarce information has been published regarding another important repeated DNA fraction, the satellite DNA (satDNA), or satellitome. Here, we offer, for the first time, extended data about satellite DNA families in the R. prolixus genome using bioinformatics pipeline based on low-coverage sequencing data. The satellitome of R. prolixus represents 8% of the total genome and it is composed by 39 satDNA families, including four satDNA families that are shared with Triatoma infestans, as well as telomeric (TTAGG)n and (GATA)n repeats, also present in the T. infestans genome. Only three of them exceed 1% of the genome. Chromosomal hybridization with these satDNA probes showed dispersed signals over the euchromatin of all chromosomes, both in autosomes and sex chromosomes. Moreover, clustering analysis revealed that most abundant satDNA families configured several superclusters, indicating that R. prolixus satellitome is complex and that the four most abundant satDNA families are composed by different subfamilies. Additionally, transcription of satDNA families was analyzed in different tissues, showing that 33 out of 39 satDNA families are transcribed in four different patterns of expression across samples.


Assuntos
Doença de Chagas/genética , Elementos de DNA Transponíveis/genética , DNA Satélite/genética , Rhodnius/genética , Animais , Doença de Chagas/parasitologia , Doença de Chagas/transmissão , Biologia Computacional , Humanos , Anotação de Sequência Molecular , Rhodnius/parasitologia , Rhodnius/patogenicidade , Triatoma/genética , Triatoma/parasitologia , Sequenciamento Completo do Genoma
8.
Parasitology ; 146(8): 1075-1082, 2019 07.
Artigo em Inglês | MEDLINE | ID: mdl-31057143

RESUMO

Trypanosoma cruzi is the causative agent of Chagas disease, a vector-borne disease. The parasite molecules involved in vector interaction have been little investigated. Metallopeptidases and gp63 molecules have been implicated in parasite adhesion of several trypanosomatids to the insect midgut. Although gp63 homologues are highly expanded in the T. cruzi genome, and are implicated in parasite-mammalian host interaction, its role in the insect vector has never been explored. Here, we showed that divalent metal chelators or anti-Tcgp63-I antibodies impaired T. cruzi adhesion to Rhodnius prolixus midgut. Parasites isolated after insect colonization presented a drastic enhancement in the expression of Tcgp63-I. These data highlight, for the first time, that Tcgp63-I and Zn-dependent enzymes contribute to the interaction of T. cruzi with the insect vector.


Assuntos
Metaloendopeptidases/fisiologia , Proteínas de Protozoários/fisiologia , Rhodnius/parasitologia , Trypanosoma cruzi/fisiologia , Animais , Anticorpos Antiprotozoários/metabolismo , Doença de Chagas/parasitologia , Interações Hospedeiro-Parasita , Insetos Vetores/parasitologia
9.
Exp Parasitol ; 197: 68-75, 2019 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-30439347

RESUMO

BACKGROUND: In recent decades some outbreaks of food-borne acute Chagas disease (ACD) in humans were identified by clinical and epidemiological characterization after association through the ingestion of açaí pulp probably contaminated with Trypanosoma cruzi. Whereas Belém and Abaetetuba stood out as important risk regions for disease transmission, the importance of Rhodnius pictipes, and Philander opossum for the biological cycle of T. cruzi, and data from agribusiness market of açaí, to study T. cruzi from vector and reservoir of the Brazilian Amazon region is critical for this context. Thus, the purpose of this study was to verify the infective capacity and the virulence of T. cruzi in açaí pulp from vector and reservoir at Pará State experimentally. METHODS: 105T. cruzi I in in natura açaí pulp from Belém at Pará State, at room temperature, after forced sieving, by intraperitoneal, gavage or oral route of inoculation in B6.129S7Rag1-/-tmMom/J Unib allowed food-borne ACD analysis using common light microscopy. PRINCIPAL FINDINGS: T. cruzi in in natura açaí pulp from R. pictipes (Val-De-Cans Forest, Belém, and Ajuaí River, Abaetetuba, Pará), and P. opossum (Combu Island, Belém, Pará) caused ACD and death between 17 and 52 days after experimental infections in murine immunodeficient hosts. CONCLUSIONS: T. cruzi from different sources and locations at Pará State in in natura açaí pulp retained its infective capacity and virulence, and can cause new outbreaks of ACD by oral transmission. Additionally, quality basic education will facilitate efficient hygiene practices throughout the açaí productive chain can eradicate food-borne ACD in the coming decades.


Assuntos
Doença de Chagas/transmissão , Euterpe/parasitologia , Parasitologia de Alimentos , Doenças Transmitidas por Alimentos/parasitologia , Trypanosoma cruzi/patogenicidade , Doença Aguda , Animais , Brasil/epidemiologia , Doença de Chagas/epidemiologia , Doença de Chagas/parasitologia , Reservatórios de Doenças/parasitologia , Vetores de Doenças , Feminino , Doenças Transmitidas por Alimentos/epidemiologia , Insetos Vetores/parasitologia , Masculino , Camundongos , Camundongos Endogâmicos , Gambás/parasitologia , Parasitemia/epidemiologia , Parasitemia/mortalidade , Rhodnius/parasitologia , Virulência
10.
Mem Inst Oswaldo Cruz ; 114: e190217, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31851215

RESUMO

The protozoan Trypanosoma cruzi has the ability to spontaneously secrete extracellular vesicles (EVs). In this paper, T. cruzi EVs derived from epimastigote forms were evaluated during interaction with triatomine bugs Rhodnius prolixus and Triatoma infestans. T. cruzi EVs were purified and artificially offered to the insects prior to infection with epimastigote forms. No effect of EVs was detected in the parasite counts in the guts of both vectors after 49-50 days. On the other hand, pre-feeding with EVs delayed parasite migration to rectum only in the gut in R. prolixus after 21-22 days. Those data suggest a possible role of T. cruzi EVs during the earlier events of infection in the invertebrate host.


Assuntos
Vesículas Extracelulares , Insetos Vetores/parasitologia , Intestinos/parasitologia , Rhodnius/parasitologia , Triatoma/parasitologia , Trypanosoma cruzi/fisiologia , Animais , Interações Hospedeiro-Parasita/fisiologia , Trypanosoma cruzi/citologia
11.
Parasitol Res ; 118(9): 2609-2619, 2019 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-31267245

RESUMO

Trypanosoma cruzi is the etiological agent of Chagas disease. These parasites undergo dramatic morphological and physiological changes during their life cycle. The human-infective metacyclic trypomastigotes differentiate from epimastigotes inside the midgut of the Triatominae insect vector. Our group has shown that the saliva and feces of Rhodnius prolixus contains a lysophospholipid, lysophosphatidylcholine (LPC), which modulates several aspects of T. cruzi infection in macrophages. LPC hydrolysis by a specific lysophospholipase D, autotaxin (ATX), generates lysophosphatidic acid (LPA). These bioactive lysophospholipids are multisignaling molecules and are found in human plasma ingested by the insect during blood feeding. Here, we show the role of LPC and LPA in T. cruzi proliferation and differentiation. Both lysophospholipids are able to induce parasite proliferation. We observed an increase in parasite growth with different fatty acyl chains, such as C18:0, C16:0, or C18:1 LPC. The dynamics of LPC and LPA effect on parasite proliferation was evaluated in vivo through a time- and space-dependent strategy in the vector gut. LPC but not LPA was also able to affect parasite metacyclogenesis. Finally, we determined LPA and LPC distribution in the parasite itself. Such bioactive lipids are associated with reservosomes of T. cruzi. To the best of our knowledge, this is the first study to suggest the role of surrounding bioactive lipids ingested during blood feeding in the control of parasite transmission.


Assuntos
Doença de Chagas/parasitologia , Metabolismo dos Lipídeos , Trypanosoma cruzi/crescimento & desenvolvimento , Trypanosoma cruzi/metabolismo , Animais , Doença de Chagas/transmissão , Humanos , Insetos Vetores/parasitologia , Estágios do Ciclo de Vida , Lipídeos/química , Rhodnius/parasitologia
12.
Exp Parasitol ; 195: 24-33, 2018 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-30261188

RESUMO

Chagas disease, infecting ca. 8 million people in Central and South America, is mediated by the protozoan parasite, Trypanosoma cruzi. The parasite is transmitted by the bite of blood sucking triatomine insects, such as Rhodnius prolixus, that had previously fed on parasite-infected vertebrate blood and voided their contaminated feces and urine into the wound. The stages of the parasite life cycle in both the insect vector and human host are well-known, but determinants of infection in the insect gut are complex and enigmatic. This paper examines the possible role of the R. prolixus gut agglutinins in the parasite life cycle. The results, derived from gut extracts made from R. prolixus fed on various diets with different vertebrate blood components, and cross adsorption experiments, showed for the first time that R. prolixus has two distinct gut agglutinins originating from their vertebrate blood meal, one for T. cruzi (the parasite agglutinin, PA) and the other for the erythrocytes (the hemagglutinin, HA). Again, uniquely, the results also demonstrate that these two agglutinins are derived, respectively, from the plasma and erythrocyte components of the vertebrate blood. Subsequent experiments, examining in more detail the nature of the plasma components forming the T. cruzi PA, used fractionated extracts of the vertebrate plasma (high density lipoprotein, HDL; low density lipoprotein, LDL, and delipidated plasma) in agglutination assays. The results confirmed the identity of the PA as a high density lipoprotein (HDL) in the plasma of the vertebrate blood meal which agglutinates parasites in the R. prolixus gut. In addition, the use of single or double labeled HDL in fluorescence and confocal microscopy showed the interaction of the labeled HDL with the parasite surface and its internalization at later times. Finally, results of T. cruzi parasitization of R. prolixus, incorporating various vertebrate blood components, resulted in highly significant increases in infectivity in the presence of HDL from the 2nd day of infection, thus confirming the important role of this molecule in T. cruzi infection of R. prolixus.


Assuntos
Doença de Chagas/parasitologia , Insetos Vetores/parasitologia , Lipoproteínas/fisiologia , Rhodnius/parasitologia , Trypanosoma cruzi/fisiologia , Aglutinação , Aglutininas/sangue , Aglutininas/fisiologia , Animais , Doença de Chagas/sangue , Doença de Chagas/transmissão , Galinhas , Eritrócitos/química , Eritrócitos/parasitologia , Hemaglutinação , Cavalos , Humanos , Lipoproteínas/sangue , Coelhos , Ovinos
13.
Exp Parasitol ; 185: 92-97, 2018 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-29305891

RESUMO

Chagas disease (CD), caused by Trypanosoma cruzi, remains a serious public health problem. One of the causes of the high morbidity and mortality in patients is the lack of an effective drug therapy. Thus, the aim of this study was to evaluate the efficacy of the essential oil of Syzygium aromaticum alone and in combination with benznidazole (BZ) in mice orally inoculated with strain of T. cruzi IV obtained from oral CD outbreak occurred in Western Brazilian Amazonia. All the animals inoculated with metacyclic trypomastigote forms (AM14 strain, BZ resistant), derived from the insect Rhodnius robustus, became infected and there was no difference in the mortality rate between the experimental groups. When compared with untreated control animals (UTC), the treatment with essential oil of S. aromaticum (EOSA) alone promoted reduction in 1/5 parameters derived from the parasitemia curve, whereas the treatments with BZ alone or in combination (BZ + EOSA) promoted reduction in 4/5 of those parameters, presenting similar profiles of parasitemia curve. The animals treated with BZ and with the combination BZ + EOSA presented lower patency periods in comparison with the animals in EOSA group, and lower positivity of blood cultures when compared with the UTC group. The results of molecular analysis by qPCR in both blood and cardiac tissue did not show differences between the groups. The cure rates obtained with the different treatments presented the following ascending order: EOSA = 12.5% (1/8), BZ = 25.0% (2/8) and BZ + EOSA = 37.5% (3/8). Although there are no significant differences between them, these results claims that the use of this essential oil could be of interest for treatment of Chagas disease.


Assuntos
Doença de Chagas/tratamento farmacológico , Nitroimidazóis/uso terapêutico , Óleos Voláteis/uso terapêutico , Syzygium/química , Tripanossomicidas/uso terapêutico , Trypanosoma cruzi/efeitos dos fármacos , Animais , Doença de Chagas/parasitologia , Ciclofosfamida , Quimioterapia Combinada , Humanos , Terapia de Imunossupressão , Imunossupressores , Insetos Vetores/parasitologia , Masculino , Camundongos , Nitroimidazóis/farmacologia , Óleos Voláteis/farmacologia , Parasitemia/tratamento farmacológico , Parasitemia/parasitologia , Óleos de Plantas/farmacologia , Óleos de Plantas/uso terapêutico , Rhodnius/parasitologia , Tripanossomicidas/farmacologia
14.
Proc Natl Acad Sci U S A ; 112(48): 14936-41, 2015 Dec 01.
Artigo em Inglês | MEDLINE | ID: mdl-26627243

RESUMO

Rhodnius prolixus not only has served as a model organism for the study of insect physiology, but also is a major vector of Chagas disease, an illness that affects approximately seven million people worldwide. We sequenced the genome of R. prolixus, generated assembled sequences covering 95% of the genome (∼ 702 Mb), including 15,456 putative protein-coding genes, and completed comprehensive genomic analyses of this obligate blood-feeding insect. Although immune-deficiency (IMD)-mediated immune responses were observed, R. prolixus putatively lacks key components of the IMD pathway, suggesting a reorganization of the canonical immune signaling network. Although both Toll and IMD effectors controlled intestinal microbiota, neither affected Trypanosoma cruzi, the causal agent of Chagas disease, implying the existence of evasion or tolerance mechanisms. R. prolixus has experienced an extensive loss of selenoprotein genes, with its repertoire reduced to only two proteins, one of which is a selenocysteine-based glutathione peroxidase, the first found in insects. The genome contained actively transcribed, horizontally transferred genes from Wolbachia sp., which showed evidence of codon use evolution toward the insect use pattern. Comparative protein analyses revealed many lineage-specific expansions and putative gene absences in R. prolixus, including tandem expansions of genes related to chemoreception, feeding, and digestion that possibly contributed to the evolution of a blood-feeding lifestyle. The genome assembly and these associated analyses provide critical information on the physiology and evolution of this important vector species and should be instrumental for the development of innovative disease control methods.


Assuntos
Adaptação Fisiológica/genética , Doença de Chagas , Interações Hospedeiro-Parasita/genética , Insetos Vetores , Rhodnius , Trypanosoma cruzi/fisiologia , Animais , Sequência de Bases , Transferência Genética Horizontal , Humanos , Insetos Vetores/genética , Insetos Vetores/parasitologia , Dados de Sequência Molecular , Rhodnius/genética , Rhodnius/parasitologia , Wolbachia/genética
15.
Parasitol Res ; 117(6): 1737-1744, 2018 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-29626223

RESUMO

Trypanosoma rangeli is a protozoan parasite that infects mammals and triatomines, causing different levels of pathogenicity in its invertebrate vectors, particularly those from the genus Rhodnius. We have recently shown that temperature can modulate T. rangeli growth during in vitro culture, as well as its in vivo pathogenicity to R. prolixus. In the present study, we investigated colonization of R. prolixus by T. rangeli and assessed the role of temperature and vector nutrition on parasite development and multiplication. We infected nymphs and either assessed parasite density in the first hours after the ingestion of the infected blood or maintained the nymphs for up to 60 days at different temperatures (21, 24, 27, and 30 °C) and under different blood-feeding schedules (either every 15 days, or on day 30 post infection only), with parasite development and multiplication measured on days 15, 30, and 60 post infection. In the first hours after ingesting infected blood, epimastigogenesis not only occurred in the anterior midgut, but a stable parasite population also established in this intestinal region. T. rangeli subsequently colonized all intestinal regions examined, but with fewer parasites being found in the rectum. The number of parasites was only affected by higher temperatures (27 and 30 °C) during the beginning of the infection (15 days post infection). Nutritional status of the vector also had a significant effect on parasite development, as reduced blood-feeding decreased infection rates by approximately 30%.


Assuntos
Insetos Vetores/parasitologia , Rhodnius/parasitologia , Doenças dos Roedores/parasitologia , Trypanosoma rangeli/crescimento & desenvolvimento , Trypanosoma rangeli/patogenicidade , Animais , Masculino , Camundongos , Ninfa/parasitologia , Temperatura , Virulência
16.
ScientificWorldJournal ; 2018: 2393858, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29643755

RESUMO

Species of the genus Alpinia are widely used by the population and have many described biological activities, including activity against insects. In this paper, we describe the bioactivity of the essential oil of two species of Alpinia genus, A. zerumbet and A. vittata, against Rhodnius nasutus, a vector of Chagas disease. The essential oils of these two species were obtained by hydrodistillation and analyzed by GC-MS. The main constituent of A. zerumbet essential oil (OLALPZER) was terpinen-4-ol, which represented 19.7% of the total components identified. In the essential oil of A. vittata (OLALPVIT) the monoterpene ß-pinene (35.3%) was the main constituent. The essential oils and their main constituents were topically applied on R. nasutus fifth-instar nymphs. In the first 10 min of application, OLALPVIT and OLALPZER at 125 µg/mL provoked 73.3% and 83.3% of mortality, respectively. Terpinen-4-ol at 25 µg/mL and ß-pinene at 44 µg/mL provoked 100% of mortality. The monitoring of resistant insects showed that both essential oils exhibited antifeedant activity. These results suggest the potential use of A. zerumbet and A. vittata essential oils and their major constituents to control R. nasutus population.


Assuntos
Alpinia/química , Insetos Vetores/efeitos dos fármacos , Inseticidas/farmacologia , Óleos Voláteis/farmacologia , Extratos Vegetais/farmacologia , Rhodnius/efeitos dos fármacos , Animais , Doença de Chagas/parasitologia , Doença de Chagas/transmissão , Vetores de Doenças , Cromatografia Gasosa-Espectrometria de Massas , Humanos , Insetos Vetores/parasitologia , Inseticidas/química , Óleos Voláteis/química , Testes de Sensibilidade Parasitária , Rhodnius/parasitologia
17.
Int J Mol Sci ; 19(5)2018 Apr 24.
Artigo em Inglês | MEDLINE | ID: mdl-29695139

RESUMO

Chagas disease or American trypanosomiasis affects six to seven million people worldwide, mostly in Latin America. This disease is transmitted by hematophagous insects known as "kissing bugs" (Hemiptera, Triatominae), with Triatoma infestans and Rhodnius prolixus being the two most important vector species. Despite the fact that both species present the same diploid chromosome number (2n = 22), they have remarkable differences in their total DNA content, chromosome structure and genome organization. Variations in the DNA genome size are expected to be due to differences in the amount of repetitive DNA sequences. The T. infestans genome-wide analysis revealed the existence of 42 satellite DNA families. BLAST searches of these sequences against the R. prolixus genome assembly revealed that only four of these satellite DNA families are shared between both species, suggesting a great differentiation between the Triatoma and Rhodnius genomes. Fluorescence in situ hybridization (FISH) location of these repetitive DNAs in both species showed that they are dispersed on the euchromatic regions of all autosomes and the X chromosome. Regarding the Y chromosome, these common satellite DNAs are absent in T. infestans but they are present in the R. prolixus Y chromosome. These results support a different origin and/or evolution in the Y chromosome of both species.


Assuntos
Insetos Vetores/genética , Sequências Repetitivas de Ácido Nucleico , Rhodnius/genética , Triatoma/genética , Animais , Doença de Chagas/parasitologia , Doença de Chagas/transmissão , Bandeamento Cromossômico , DNA Satélite , Evolução Molecular , Genoma de Inseto , Genômica/métodos , Hibridização in Situ Fluorescente , Insetos Vetores/parasitologia , Rhodnius/parasitologia , Triatoma/parasitologia , Trypanosoma cruzi
18.
Parasitology ; 144(11): 1498-1510, 2017 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-28653592

RESUMO

Trypanosoma cruzi is exposed to oxidative stresses during its life cycle, and amongst the strategies employed by this parasite to deal with these situations sits a peculiar trypanothione-dependent antioxidant system. Remarkably, T. cruzi's antioxidant repertoire does not include catalase. In an attempt to shed light on what are the reasons by which this parasite lacks this enzyme, a T. cruzi cell line stably expressing catalase showed an increased resistance to hydrogen peroxide (H2O2) when compared with wild-type cells. Interestingly, preconditioning carried out with low concentrations of H2O2 led untransfected parasites to be as much resistant to this oxidant as cells expressing catalase, but did not induce the same level of increased resistance in the latter ones. Also, presence of catalase decreased trypanothione reductase and increased superoxide dismutase levels in T. cruzi, resulting in higher levels of residual H2O2 after challenge with this oxidant. Although expression of catalase contributed to elevated proliferation rates of T. cruzi in Rhodnius prolixus, it failed to induce a significant increase of parasite virulence in mice. Altogether, these results indicate that the absence of a gene encoding catalase in T. cruzi has played an important role in allowing this parasite to develop a shrill capacity to sense and overcome oxidative stress.


Assuntos
Catalase/metabolismo , Estresse Oxidativo , Transdução de Sinais , Trypanosoma cruzi/metabolismo , Animais , Catalase/genética , Linhagem Celular , Doença de Chagas/parasitologia , Peróxido de Hidrogênio/metabolismo , Peróxido de Hidrogênio/farmacologia , Camundongos , NADH NADPH Oxirredutases/metabolismo , Rhodnius/parasitologia , Superóxido Dismutase/metabolismo , Transfecção , Trypanosoma cruzi/efeitos dos fármacos , Trypanosoma cruzi/patogenicidade
19.
Parasitology ; 143(9): 1157-67, 2016 08.
Artigo em Inglês | MEDLINE | ID: mdl-27174360

RESUMO

Trypanosoma cruzi, causative agent of Chagas disease, co-infects its triatomine vector with its sister species Trypanosoma rangeli, which shares 60% of its antigens with T. cruzi. Additionally, T. rangeli has been observed to be pathogenic in some of its vector species. Although T. cruzi-T. rangeli co-infections are common, their effect on the vector has rarely been investigated. Therefore, we measured the fitness (survival and reproduction) of triatomine species Rhodnius prolixus infected with just T. cruzi, just T. rangeli, or both T. cruzi and T. rangeli. We found that survival (as estimated by survival probability and hazard ratios) was significantly different between treatments, with the T. cruzi treatment group having lower survival than the co-infected treatment. Reproduction and total fitness estimates in the T. cruzi and T. rangeli treatments were significantly lower than in the co-infected and control groups. The T. cruzi and T. rangeli treatment group fitness estimates were not significantly different from each other. Additionally, co-infected insects appeared to tolerate higher doses of parasites than insects with single-species infections. Our results suggest that T. cruzi-T. rangeli co-infection could ameliorate negative effects of single infections of either parasite on R. prolixus and potentially help it to tolerate higher parasite doses.


Assuntos
Insetos Vetores/parasitologia , Rhodnius/parasitologia , Trypanosoma cruzi/fisiologia , Trypanosoma rangeli/fisiologia , Animais , Feminino , Insetos Vetores/fisiologia , Estimativa de Kaplan-Meier , Funções Verossimilhança , Masculino , Modelos de Riscos Proporcionais , Reprodução , Rhodnius/fisiologia , Sobrevida , Trypanosoma cruzi/patogenicidade , Trypanosoma rangeli/patogenicidade , Virulência
20.
Parasitology ; 143(11): 1459-68, 2016 09.
Artigo em Inglês | MEDLINE | ID: mdl-27460893

RESUMO

Trypanosoma rangeli is a protozoan parasite, which does not cause disease in humans, although it can produce different levels of pathogenicity to triatomines, their invertebrate hosts. We tested whether infection imposed a temperature-dependent cost on triatomine fitness using T. rangeli with different life histories. Parasites cultured only in liver infusion tryptose medium (cultured) and parasites exposed to cyclical passages through mice and triatomines (passaged) were used. We held infected insects at four temperatures between 21 and 30 °C and measured T. rangeli growth in vitro at the same temperatures in parallel. Overall, T. rangeli infection induced negative effects on insect fitness. In the case of cultured infection, parasite effects were temperature-dependent. Intermoult period, mortality rates and ecdysis success were affected in those insects exposed to lower temperatures (21 and 24 °C). For passaged-infected insects, the effects were independent of temperature, intermoult period being prolonged in all infected groups. Trypanosoma rangeli seem to be less tolerant to higher temperatures since cultured-infected insects showed a reduction in the infection rates and passaged-infected insects decreased the salivary gland infection rates in those insects submitted to 30 °C. In vitro growth of T. rangeli was consistent with these results.


Assuntos
Interações Hospedeiro-Parasita , Insetos Vetores/parasitologia , Rhodnius/parasitologia , Trypanosoma rangeli/fisiologia , Animais , Insetos Vetores/fisiologia , Estágios do Ciclo de Vida/fisiologia , Camundongos , Rhodnius/fisiologia , Glândulas Salivares/parasitologia , Temperatura , Trypanosoma rangeli/crescimento & desenvolvimento , Trypanosoma rangeli/patogenicidade
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