8 resultados para PICTIPES


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The polymerase chain reaction-restriction fragment length polymorphism technique (PCR-RFLP) was used to compare Rhodnius domesticus (Neiva & Pinto), R. pictipes (Stal), R. prolixus (Stal) and R. stali (Lent; Jurberg & Galvao) (Hemiptera: Reduviidae). The enzyme BstUI differentiated R. donzesticus, R. pictipes and R. prolixus, and HhaI differentiated R. domesticus, R. pictipes and R. stali. With the fingerprinting analysis generated by these two enzymes, it was possible to clearly identify all four species in the study.

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In the Brazilian Atlantic forest (BAF) there are at least 57 rodent species and most of them are considered omnivorous. These species feed, more or less frequently, on fruits and seeds. Nevertheless the potential role of each species as frugivorous, seed predator or seed disperser is still unclear. In the present study we analyzed patterns of fruit and seed exploitation by eight small rodent species from an Atlantic Forest site. We offered to captive animals fruits of 30 plant species (23 genera, 15 families). After 48 h we recorded consumption patterns of pulp/aril and seed. Rodent species differed in their patterns of fruit and seed exploitation. The smallest species, Akodon serrensis, Oligoryzomys nigripes, and Wilfredomys pictipes (body size range : 26-45 g), and also the medium-sized Oecomys aff. concolor (84 g) fed mainly on pulp and also on small to medium-sized seeds (< 10 mm diameter). The medium-sized rodent, Oryzomys russatus (91 g) fed on pulp and also on seeds with diameter ≤ 15 mm. Thus larger seeds remain intact after being manipulated by such species. The medium-sized Delomys dorsalis (72 g) and the larger Trinomys iheringi (274 g) and Nectomys squamipes (253 g) form a third group, which consumed both fruit and seed of most species independent of their size. These later two species and also O. russatus are probably the main seed predators in the rodent community of the BAF.

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Hylidae is a large family of American, Australopapuan, and temperate Eurasian treefrogs of approximately 870 known species, divided among four subfamilies. Although some groups of Hylidae have been addressed phylogenetically, a comprehensive phylogenetic analysis has never been presented. The first goal of this paper is to review the current state of hylid systematics. We focus on the very large subfamily Hylinae (590 species), evaluate the monophyly of named taxa, and examine the evidential basis of the existing taxonomy. The second objective is to perform a phylogenetic analysis using mostly DNA sequence data in order to (1) test the monophyly of the Hylidae; (2) determine its constituent taxa, with special attention to the genera and species groups which form the subfamily Hylinae, and c) propose a new, monophyletic taxonomy consistent with the hypothesized relationships. We present a phylogenetic analysis of hylid frogs based on 276 terminals, including 228 hylids and 48 outgroup taxa. Included are exemplars of all but 1 of the 41 genera of Hylidae (of all four nominal subfamilies) and 39 of the 41 currently recognized species groups of the species-rich genus Hyla. The included taxa allowed us to test the monophyly of 24 of the 35 nonmonotypic genera and 25 species groups of Hyla. The phylogenetic analysis includes approximately 5100 base pairs from four mitochondrial (12S, tRNA valine, 16S, and cytochrome b) and five nuclear genes (rhodopsin, tyrosinase, RAG-1, seventh in absentia, and 28S), and a small data set from foot musculature. Concurring with previous studies, the present analysis indicates that Hemiphractinae are not related to the other three hylid subfamilies. It is therefore removed from the family and tentatively considered a subfamily of the paraphyletic Leptodactylidae. Hylidae is now restricted to Hylinae, Pelodryadinae, and Phyllomedusinae. Our results support a sister-group relationship between Pelodryadinae and Phyllomedusinae, which together form the sister taxon of Hylinae. Agalychnis, Phyllomedusa, Litoria, Hyla, Osteocephalus, Phrynohyas, Ptychohyla, Scinax, Smilisca, and Trachycephalus are not monophyletic. Within Hyla, the H. albomarginata, H. albopunctata, H. arborea, H. boons, H. cinerea, H. eximia, H. geographica, H. granosa, H. microcephala, H. miotympanum, H. tuberculosa, and H. versicolor groups are also demonstrably nonmonophyletic. Hylinae is composed of four major clades. The first of these includes the Andean stream-breeding Hyla, Aplastodiscus, all Gladiator Frogs, and a Tepuian clade. The second clade is composed of the 30-chromosome Hyla, Lysapsus, Pseudis, Scarthyla, Scinax (including the H. uruguaya group), Sphaenorhynchus, and Xenohyla. The third major clade is composed of Nyctimantis, Phrynohyas, Phyllodytes, and all South American/West Indian casque-headed frogs: Aparasphenodon, Argenteohyla, Corythomantis, Osteocephalus, Osteopilus, Tepuihyla, and Trachycephalus. The fourth major clade is composed of most of the Middle American/Holarctic species groups of Hyla and the genera Acris, Anotheca, Duellmanohyla, Plectrohyla, Pseudacris, Ptychohyla, Pternohyla, Smilisca, and Triprion. A new monophyletic taxonomy mirroring these results is presented where Hylinae is divided into four tribes. Of the species currently in Hyla, 297 of the 353 species are placed in 15 genera; of these, 4 are currently recognized, 4 are resurrected names, and 7 are new. Hyla is restricted to H. femoralis and the H. arborea, H. cinerea, H. eximia, and H. versicolor groups, whose contents are redefined. Phrynohyas is placed in the synonymy of Trachycephalus, and Pternohyla is placed in the synonymy of Smilisca. The genus Dendropsophus is resurrected to include all former species of Hyla known or suspected to have 30 chromosomes. Exerodonta is resurrected to include the former Hyla sumichrasti group and some members of the former H. miotympanum group. Hyloscirtus is resurrected for the former Hyla armata, H. bogotensis, and H. larinopygion groups. Hypsiboas is resurrected to include several species groups - many of them redefined here - of Gladiator Frogs. The former Hyla albofrenata and H. albosignata complexes of the H. albomarginata group are included in Aplastodiscus. New generic names are erected for (1) Agalychnis calcarifer and A. craspedopus; (2) Osteocephalus langsdorffii; the (3) Hyla aromatica, (4) H. bromeliacia, (5) H. godmani, (6) H. mixomaculata, (7) H. taeniopus, (8) and H. tuberculosa groups; (9) the clade composed of the H. pictipes and H. pseudopuma groups; and (10) a clade composed of the H. circumdata, H. claresignata, H. martinsi, and H. pseudopseudis groups. Copyright © American Museum of Natural History 2005.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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A doença de Chagas aguda (DCA) é endêmica na Amazônia Brasileira sendo a via oral a principal forma de transmissão com surtos familiares ou multifamiliares. Esta via independe da colonização de triatomíneos no domicílio e a ocorrência é regular com média de 100 casos/ano e 5% de óbitos. Apresenta distribuição espaço-temporal bem definida, colocando a enfermidade como emergência de importância em saúde pública nos estados do Pará, Amapá e Amazonas. A presença de mamíferos e triatomíneos silvestres, infectados naturalmente com o c e habitando distintos ecótopos terrestres e arbóreos, mantém um intenso ciclo enzoótico em toda a Amazônia. Perfis moleculares de linhagens de T. cruzi na região estão associados a hospedeiros mamíferos (incluindo o homem), triatomíneos, ecótopos e manifestações clínicas. Foram estudados quatro surtos de DCA ocorridos nos Municípios de Barcarena, Belém e Cachoeira do Arari no Estado do Pará e em Santana, no Estado do Amapá e abordados os aspectos epidemiológicos (parasitológico e sorológico manifestações clínicas, reservatórios e triatomíneos silvestres associados aos surtos). Foi investigado também em São Luís, Estado do Maranhão, o ciclo domiciliar e silvestre do T. cruzi, porém sem a ocorrência de casos de DCA. O estudo incluiu também a genotipagem molecular de T. cruzi pelo gene de mini-exon dos isolados (homem, mamíferos e triatomíneos silvestres) associados aos diferentes ciclos de transmissão. O diagnóstico parasitológico foi confirmado em 63 pacientes com a seguinte sensibilidade nos testes aplicados: 41,3% (26/63) pela gota espessa; 58,7% (37/63) no QBC; 79,4% (50/63) no xenodiagnóstico e 61,9% (39/63) na hemocultura. A sorologia de 2648 pessoas por hemaglutinação indireta (HAI) foi de 3,05% (81/2648) e imunofluorescência indireta IFI apresentaram respectivamente resultados de e 2,49% (66/2648) para IgG e 2,37 (63/2648) para IgM. Os resultados em São Luís foram todos negativos. Foram capturados 24 mamíferos, 13 Didelphis marsupialis, 1 Marmosa cinerea, 5 Philander opossum, 3 Metachirus nudicaudatus, 1 Oryzomys macconnelli, 1 Oecomys bicolor e 433 R. rattus. A taxa de infecção para T. cruzi foi de 7,14% (29/404). Um total de 3279 triatomíneos foi capturado sendo: Triatoma rubrofasciata (n=3008), com taxa de infecção (TI) de 30.46%, (39/128), Rhodnius robustus (n=137), com TI de 76% (79/104), R. pictipes (n=94), TI de 56,9% (49/86%), E. mucronatus (n=6) e P. geniculatus (n=12) com TI de 50% e as demais espécies sem infecção R. neglectus (n=5) e P. lignarius (n=6). As palmeiras foram os principais ecótopos dos triatomíneos silvestres. O urucurizeiro (S. martiana) apresentava infestação de 47,41% (101/213) dos triatomíneos; o “inajazeiro” (Maximiliana regia) 35,21% (75/213); o “babaçueiro” (Orbgnya. speciosa) 5,16% (11/213); o “dendezeiro” (Eleas melanoccoca) 1,87% (4/213) e a “bacabeira” (Oenocarpus bacaba) 10,32% (22/213). Para a genotipagem foram obtidos 46 isolados de tripanossomas de origem humana, 31 isolamentos de mamíferos silvestres e 74 amostras de triatomíneos. Todos os isolados foram caracterizados como da linhagem TcI de T. cruzi. Todos os casos humanos no Pará foram caracterizados como positivos por exame parasitológico. Nem todos os casos de Santana, Amapá, apresentaram casos parasitológicos positivos, pela demora do diagnóstico, mesmo assim estes foram definidos como DCA. Exames como xenodiagnóstico, hemocultura e o QBC® foram mais sensíveis do que a gota espessa. A sorologia por HAI e IFI (IgG e IgM) tiveram excelente sensibilidade para detectar os casos agudos em tempos distintos de infecção. O achado de mamíferos (D. marsupilais) e triatomíneos silvestres (R. pictipes e P. geniculatus) infectados com consideráveis taxas de infecção para T. cruzi no entorno das residências dos pacientes sustentam a importância destes hospedeiros associados à transmissão da DCA. Apesar de na Amazônia circularem vários genótipos de T. cruzi nos diferentes hospedeiros, neste trabalho foi identificada somente a linhagem TCI de T. cruzi, a mais predominante na Região. Em São Luís, Maranhão, embora sem registro de casos de DCA apresenta um ciclo domiciliar associados ao rato doméstico e o triatomíneo da espécie T. rubrofasciata, e um ciclo silvestre mantido por didelfídeos. Nos dois ciclos circulam a linhagem TCI de T. cruzi. Estudos com marcadores de maior resolução com isolados de T. cruzi regionais podem ajudar a esclarecer os ciclos de transmissão, as rotas de contaminação e os hospedeiros envolvidos em casos de DCA na Amazônia.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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We present here a multisource approach that takes advantage of several disciplines to address a taxonomic issue. A triatomine related to Rhodnius robustus Larrousse, 1927 was recently found in the state of Rondonia, Brazil. The name Rhodnius montenegrensis n. sp. is suggested because it was found in the municipality of Monte Negro. The main differences between these two species can be detected in the female and male genitalia, but there are also noticeable differences in their eggs. Molecular analysis using PCR-RFLP technique and Bayesian inferences based on a fragment of the Cytochrome b (Cyt b) gene corroborated the morphological findings. We used this integrative approach to address the taxonomic decision for a new Rhodnius species and its relationship with others of this genus. Results obtained herein stress that morphology must be used as the major approach for obtaining phenotypic information, and molecular data should be taken as a complementary tool.