43 resultados para C. megacephala
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Although insects lack the adaptive immune response of the mammalians, they manifest effective innate immune responses that include both cellular and humoral components. Cellular responses are mediated by hemocytes and Immoral responses include the activation of proteolytic cascades that initiate many events, including NO production. In this work, we determined NO production in Chrysomya megaccphala hemolymph and hemocytes after yeast inoculation. Assays were performed with non-infected controls (NIL), saline-injected larvae (SIL) or larvae injected with Saccharomyces cerevisiae (YIL). The hemolymph of injected groups was collected 0.5, 1, 2, 4, 12, 24 or 48 h post-injection. NO levels in SIL were comparable to those measured in NIL until 12 h, which might be considered the basal production, increasing at 24 and 48 h post-injection, probably in response to the increased larval fragility after cuticle rupture. YIL exhibited significantly higher levels of NO than were found in other groups, peaking at 24 h. L-NAME and EDTA caused a significant reduction of NO production in YIL at this time, suggesting the activity of a Ca2+ -dependent NOS. Plasmatocytes and granular cells phagocytosed the yeasts. Plasmatocytes initiated the nodule formation and granular cells were the only hemocyte type to produce NO. These results permit us to conclude that yeasts induced augmented NO production in C. megacephala hemolymph and granular cells are the hemocyte type involved with the generation of this molecule. (c) 2005 Elsevier B.V. All rights reserved.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Pós-graduação em Biologia Geral e Aplicada - IBB
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Pós-graduação em Biologia Geral e Aplicada - IBB
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Coordenação de Aperfeiçoamento de Pessoal de NÃvel Superior (CAPES)
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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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Although insects lack the adaptive immune response of the mammalians, they manifest effective innate immune responses, which include both cellular and Immoral components. Cellular responses are mediated by hemocytes, and Immoral responses include the activation of proteolytic cascades that initiate many events, including NO production. In mammals, nitric oxide synthases (NOSs) are also present in the endothelium, the brain, the adrenal glands, and the platelets. Studies on the distribution of NO-producing systems in invertebrates have revealed functional similarities between NOS in this group and vertebrates. We attempted to localize NOS activity in tissues of naive (UIL), yeast-injected (YIL), and saline-injected (SIL) larvae of the blowfly Chrysomya megacephala, using the NADPH diaphorase technique. Our findings revealed similar levels of NOS activity in muscle, fat body, Malpighian tubule, gut, and brain, suggesting that NO synthesis may not be involved in the immune response of these larval systems. These results were compared to many studies that recorded the involvement of NO in various physiological functions of insects.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Horizontal and vertical frequency distribution of larvae in three species of Calliphoridae were studied. Correlation between horizontal and vertical dispersion and larval size was also assessed. The experiment was monitored depositing vials with larvae at one end of a cardboard box covered with wood shavings. Chrysomya megacephala and C., putoria reached 2.9 m from the starting portion of the box. Co. macellaria reached only 2.0 m from the starting portion of the box. The majority of pupae of the three species were found at 4 and 5 cm depth from the surface of the box. Correlation coefficients between pupal size and horizontal and vertical migration were usually very low, and apparently no clear pattern emerges from this data set. This study revealed variation in the dispersion patterns although the two Chrysomya species are more similar in their postfeeding larval behaviour compared to Co. macellaria.
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In this study we investigate aggregated patterns as a consequence of post-feeding larval dispersal in three blowfly species, based on the frequency distribution of sampling units in the substrate having 0, 1, 2,..., n pupae. Statistical analysis revealed that aggregated patterns of distribution emerge as a consequence of larval dispersal, and Cochliomyia macellaria has higher levels of aggregation when compared to Chrysomya megacephala and C. putoria. Aggregation during dispersal is associated with a spatial pattern where most larvae in the species tend to pupariate near the food source. The possible consequences for the population ecology of these species are discussed.
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Em ambiente natural, as moscas-varejeiras depositam seus ovos geralmente em grupos de 100 a 300 ovos, freqüentemente na presença de ovos de outras espécies. Estes ovos são depositados em substratos discretos e efêmeros, que constituem unidades pequenas e separadas espacialmente, tais como carcaças, fezes, frutos, fungos e vegetais em decomposição, nas quais ocorrem mudanças sucessivas e rápidas. Em condições naturais, tais substratos apresentam-se saturados de indivÃduos, de uma única ou mais espécies de insetos, principalmente em estágio larval, caracterizando uma intensa competição por recursos durante o desenvolvimento pós embrionário. Vários autores tentaram explicar a coexistência de moscas-varejeiras em substratos efêmeros, sugerindo que cada espécie pode ter seu próprio nicho dentro do substrato, uma especialização em diferentes partes do recurso alimentar ou comportamentos distintos de dispersão larval pós alimentar, que podem permitir a coexistência de espécies. No gênero Chrysomya, as similaridades nos nichos ecológicos, como por exemplo, no requerimento alimentar de suas larvas, podem acirrar a competição por recursos, e a espécie C. albiceps pode tornar-se predadora, apresentando comportamento de predação intra-guilda e canibalismo, interferindo na coexistência, no tamanho populacional das espécies presentes e podendo até excluir alguma delas. O nÃvel de competição por espaço e alimento que os imaturos irão enfrentar relaciona-se com o padrão de distribuição espacial destes no substrato, decorrentes da escolha do sÃtio de oviposição pelas fêmeas adultas. Assim, o comportamento de oviposição é um processo biológico fundamental para as moscas, pois pode determinar a sobrevivência e o tamanho populacional nas sucessivas gerações. Por este motivo, o objetivo deste trabalho ...(Resumo completo, clicar acesso eletrônico abaixo)