988 resultados para Proteína C-FOS : Imunorreatividade : Nocicepção


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

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As proteínas da família TRF2 (“TTAGGG repeat-binding factor 2”) fazem parte de complexos multiprotéicos responsáveis pela manutenção dos telômeros de alguns eucariotos. Elas apresentam domínios funcionais que a caracterizam como proteínas que interagem com DNA telomérico na forma de dupla fita. São eles, o domínio de interação com o DNA do tipo Myb-like, localizado na porção C-terminal, um domínio acídico N-terminal e um domínio de homodimerização TRFH (“TRF homology domain for homodimerization”). A proteína TRF2 também está envolvida na formação de estruturas teloméricas terminais denominadas “t-loops”. O intuito deste projeto é a clonagem, expressão em vetor bacteriano (pMAL) e a purificação de uma proteína homóloga as proteínas teloméricas TRFs humana em parasitas do gênero Leishmania, especificamente a espécie Leishmania amazonensis (LaTRF). Primeiramente foram desenhados iniciadores (primers) utilizados para a amplificação da sequência LaTRF por PCR. O(s) produto(s) de amplificação foram clonados em vetores de clonagem para produtos de PCR e sequenciados para análise. Uma vez obtida a seqüência da LaTRF, o inserto contendo o gene foi subclonado direcionalmente e na mesma fase de leitura do vetor de expressão bacteriano (pMAL-c5x, NEB) para obtenção e futura purificação da proteína recombinante. Verificou-se a expressão da proteína recombinante LaTRF utilizando SDS-PAGE e “Western Blot”. Pelos resultados obtidos na análise de expressão em pequena escala da proteína recombinante, foi observado possíveis indícios de que esta esteja sendo expressa. Com isso, torna-se possível a tentativa de uma expressão em grande escala utilizando esse mesmo sistema bacteriano (pMAL) a fim de se obter a proteína purificada que poderá ser futuramente utilizada para ensaios de “pull-down” dentre outras aplicações

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Kaposi´s sarcoma associated herpesvirus (KSHV) or human herpesvirus 8 (HHV-8) is a gammaherpesvirus essential for the development of all forms of Kaposi´s sarcoma (KS). The KSHV’s life cycle is basically divided into latent and lytic phases, which have distinct viral gene expression profiles. Some important oncogenic products of KSHV are expressed during the lytic phase, including the viral K1 protein. As an effect of interfer-ence with intracellular signaling, K1 expression increases proliferation and survival of KSHV-infected cells. Due to its high level of genetic variability compared to other re-gions of the viral genome, the K1-encoding ORF (ORF-K1) is commonly evaluated for KSHV genotyping. It remains unclear whether different viral genotypes have particular biological effects that might modify the KSHV oncogenicity. The present study aimed to contribute to the establishment of an experimental in vitro model for evaluation of the K1 protein from common KSHV genotypes. Recombinant expression vectors with the ORF-K1 from KSHV genotypes A, B and C were prepared by genetic cloning. The recombi-nant vectors pKSHVOK1 obtained by cloning were sequenced for structural validation. After that, HEK293 cell line was transfected with the recombinant vectors, and proteins were extracted for expression analysis by Western blot technique, for K1 functional vali-dation. Results showed that ORF-K1 vectors containing KSHV ORF-K1 from the A, B and C genotypes were produced and structurally validated by DNA sequencing. The K1 expression at the protein level was also confirmed by immunoblots using an antibody for FLAG detection, an epitope from the vector that binds to K1. Based on presented re-sults, it´s possible to conclude that the recombinant vectors will be able to be used in future studies of K1 protein biological properties from distinct KSHV genotypes

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Pós-graduação em Biotecnologia - IQ

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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 Nível Superior (CAPES)

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Previous results show that elevated T-maze (ETM) avoidance responses are facilitated by acute restraint. Escape, on the other hand, was unaltered. To examine if the magnitude of the stressor is an important factor influencing these results, we investigated the effects of unpredictable chronic mild stress (UCMS) on ETM avoidance and escape measurements. Analysis of Fos protein immunoreactivity (Fos-ir) was used to map areas activated by stress exposure in response to ETM avoidance and escape performance. Additionally, the effects of the UCMS protocol on the number of cells expressing the marker of migrating neuroblasts doublecortin (DCX) in the hippocampus were investigated. Corticosterone serum levels were also measured. Results showed that UCMS facilitates ETM avoidance, not altering escape. In unstressed animals, avoidance performance increases Fos-ir in the cingulate cortex, hippocampus (dentate gyrus) and basomedial amygdala, and escape increases Fos-ir in the dorsolateral periaqueductal gray and locus ceruleus. In stressed animals submitted to ETM avoidance, increases in Fos-ir were observed in the cingulate cortex, ventrolateral septum, hippocampus, hypothalamus, amygdala, dorsal and median raphe nuclei. In stressed animals submitted to ETM escape, increases in Fos-ir were observed in the cingulate cortex, periaqueductal gray and locus ceruleus. Also, UCMS exposure decreased the number of DCX-positive cells in the dorsal and ventral hippocampus and increased corticosterone serum levels. These data suggest that the anxiogenic effects of UCMS are related to the activation of specific neurobiological circuits that modulate anxiety and confirm that this stress protocol activates the hypothalamus-pituitary-adrenal axis and decreases hippocampal adult neurogenesis.

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Programa de doctorado: Sanidad y patología animal