984 resultados para translocação de Ca2


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O presente trabalho relata os estudos desenvolvidos sobre a determinação do boro em plantas através do método da curcumina, que se fundamenta na formação do complexo rosocianina em meio acético- sulfúrico. Nesse método a reação de formação da rosocianina é desenvolvida em meio líquido e à temperatura ambiente, não necessitando, portanto, do controle da temperatura a 55±3°C, conforme é exigido pelo método comum, cujo complexo formado é principalmente rubrocurcumina. Uma alíquota do extrato do vegetal é tornada alcalina pela adição de solução de NaOH e sêca em banho-maria. Sobre o resíduo obtido adicionam-se a solução acética de curcumina a 0,125% e a solução de ácido sulfúrico -ácido acético ( 1 + 1 ). A reação completa-se em 15 minutos. No estudo da aplicação do método em plantas, diversos aspectos foram abordados, como: interferentes e sua eliminação, a solubilização do boro contido nas amostras incineradas, a contaminação do extrato de vegetal pelo papel de filtro, como conseqüência da filtração a que deve ser submetido, e a precisão e a exatidão do referido método. Os resultados obtidos permitiram concluir que, dentre os elementos normalmente encontrados nas cinzas vegetais, os que interferem no citado método sao o cálcio (Ca2+), o magnésio (Mg2+), o ferro (Fe3+), o manganês (Mn2+) e o cobalto (Co2+). Esses elementos foram eliminados do extrato de planta, passando-o através de resina catiônica. O método, conforme é preconizado, pode ser considerado eficiente na determinação do boro em plantas, pois, mostrou possuir precisão e exatidão satisfatórios, aliadas à sua alta sensibilidade, permitindo determinar desde 2 ppm de boro em plantas, dentro do seu intervalo de menor erro.

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O presente trabalho relata um experimento em que foram verificados os efeitos fitotóxicos do herbicida 2-cloro-2', 6'-dietil-N-(metoximetil) acetanilida (CP 50144) em plántulas de gergelim (Sesamun indicum L.) e feijão (Phaseolus vulgaris L.), cultivados em solução nutritiva 0,5-Hoagland. 0 herbicida foi aplicado às folhas, nas doses respectivas de lug/10l, 5ug/ 10l, 25yg/10l, 125ug/10l, 250yg/10l e 500ug/10l. Para o tratamento às raízes, ele foi adicionado à solução nutritiva, nas doses de 1 ppm, 5 ppm, 25 ppm, 125 ppm, 625 ppm e 3125 ppm, respectivamente. O tratamento foliar revelou penetração lenta, tanto nas fôlhas de gergelim como nas de feijão, com pequena translocação e forte ação de contato, especialmente nas concentrações mais elevadas, superiores à da saturação (148 ppm). A absorção pelas raízes e lenta, tanto para o gergelim como para o feijão. Entretanto, o gergelim mostrou-se altamente tolerante ao CP 50144, até a concentração de 125 ppm, inclusive, não tendo demonstrado nenhum sintoma de injuria. Acima dessa concentração, o gergelim foi fortemente injuriado, tendo mostrado fortes sintomas de ação de contato, nas raízes, e sintomas gerais de intoxicação, na parte aerea, que levaram as plantas a morte. O feijão mostrou-se bastante sensível à ação do CP 50144, tendo apresentado forte sintomatologia de intoxicação, tanto por contato como por translocação apoplástica. São descritos os sintomas de fitotoxicidade do herbicida, para as duas plantas. O herbicida CP 50144 e altamente seletivo para o gergelim, mostrando-se bastante promissor para essa cultura. O herbicida mostrou ação inibidora da distensão celular, nas folhas novas de feijão. à interessante que se realizem estudos fitoteratológicos e fitofisiológicos com este herbicida, cujo modo de ação ainda nao e bem conhecido.

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Uma série de experimentos com raízes destacadas e plantas inteiras de cevada (em solução nutritiva ou solo) deu apoio à conclusão de que a deficiência de zinco induzida pelo fosfato pode ser explicada pela operação de vários processos: inibição não competitiva de absorção do zinco; precipitação de fosfato de zinco na superfície das raízes; redução na translocação para a parte aérea; efeito de diluição resultante de alta velocidade de crescimento causada pelo fósforo no meio.

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O efeito de níveis de fósforo e zinco na produção de matéria seca, nodulação e absorção de nutrientes pela soja (Glycine max (L.) Merrill cv. 'UFV-1) foi estudado em condições de casa-de-vegetação. Foram testadas três doses de fósforo equivalentes a 0. 200 e 400 kg de P2O5/ha, e três de zinco equivalentes a 0, 15 e 30 kg de sulfato de zinco/ha, em três solos, em vasos contendo 7 kg de terra. Os solos estudados foram os seguintes: Latossolo Vermelho-Amarelo (LV), Latossolo Vermelho-Escuro, textura média (LEm), e Latossolo Vermelho-Escuro (LE). As sementes, no plantio, foram inoculadas com estirpes de Rhizobium japonicum. Foram observados aumentos da produção de materia seca das plantas e da nodulação, com a adubação fosfatada. A fertilização com zinco não alterou estes parâmetros. Produções menores de matéria seca das plantas foram verificadas no LEm, no entanto, este solo e o LV, foram os substratos que propiciaram as maiores nodulações. As concentrações de N, Ca, Mg e Zn decresceram com a adubação fosfatada, sugerindo-se um efeito de diluição, propiciado pelo intenso crescimento das plantas. A fertilização fosfatada, na maior dose, diminuiu o teor de K nas folhas velhas e aumentou-o nas novas e nas hastes, indicando ter havido translocação do referido nutriente.

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Cinco cultivares de sorgo granífero foram cultivados em solução nutritiva, com o objetivo de se estudar os efeitos da deficiência de potássio no crescimento, produção e absorção de nitrogênio, fósforo e potássio. O sorgo foi cultivado em solução nutritiva completa ou com potássio diluído a 1/2, 1/5 e 1/10 da concentração usual, até o final do ciclo, ou seja 110 dias. As plantas foram então colhidas e separa das em raiz, colmo, folhas, raquis e grãos, sendo a seguir secadas e moídas. Foram feitas análises de nitrogênio, fósforo e potássio em cada uma das partes das plantas. Os resultados obtidos permitiram concluir que, em média, os níveis de potássio tiveram efeito apenas na produção dos grãos de sorgo, não afetando a matéria seca produzida das demais partes da planta. Os níveis de potássio tiveram ainda efeito significativo sobre as quantidades de nitrogênio; fósforo e potássio absorvidas pelas plantas; a translocação de nitrogênio para os grãos foi também afetada significativamente.

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Foram estudados os efeitos dos teores de Ca2+ e de Mg2+ trocáveis, das capacidades de troca de cátions e dos índices de saturação em bases de 30 amostras de terra sobre o poder de fixação de Zn das mesmas. Foram encontradas correlações positivas e significativas ao nível de 1% entre as capacidades de fixação de Zn das terras e as variáveis mencionadas.

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A presente pesquisa foi realizada no Centro de Energia Nuclear na Agricultura (CENA), Piracicaba, SP, Brasil, no período 1981-82, para verificar se o p32 absorvido pelas raízes do tolete da cana-de-açúcar se transloca para a gema germinante. Toletes + 10-Kuijper, de uma gema, do cv. CB-41-76, foram germinados em posição vertical, em bandejas contendo água destilada ao nível superior do nó. A estavam com mais de 150 cm de altura, adicionaram o P32 à solução nutritiva, para que fosse absorvido pelo sistema radicular normal, contando a radioatividade na folha do nó número 6, a partir do ápice. Não estudaram a absorção do P32 pelas raízes adventícias do tolete. RESNIK et alii (1976) estudaram a absorção do p32 por raízes do tolete, no cv. NCo 310 e sua translocação em toletes de 4nós. 0 P32 absorvido pelas raízes, durante 48 horas, translocou-se para os setores radiais e longitudinais do colmo. Acumulou-se em maior concentração nos nós do que nos internódios e no internódio superior do que no inferior. Não observaram a sua translocação para a gema. Este trabalho visa a determinar, autorradiograficamente, a translocação do P32 absorvido pelas raízes do tolete, e sua translocação para a gema germinante.

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Este trabalho teve como objetivo estimar a densidade e o tamanho populacional de quatro espécies de primatas [Alouatta clamitans Cabrera, 1940; Callicebus nigrifrons (Spix, 1823); Callithrix aurita (Ã. Geoffroy, 1812); Cebus nigritus (Goldfuss, 1809)] que ocorrem em um fragmento de Mata Atlântica de aproximadamente 350 ha, localizado no município de Pouso Alegre, estado de Minas Gerais e reunir subsídios para a conservação dessas espécies na região. O levantamento populacional foi realizado através do método de amostragem de distâncias em transecções lineares (Distance Sampling). Os dados foram coletados entre os meses de abril e agosto de 2008 a partir de quatro transecções implantadas na área de estudo. Os cálculos de densidade e tamanho populacional foram realizados empregando-se o programa Distance 5.0. As densidades foram estimadas em 23,83 ± 9,78 ind./km² para Callicebus nigrifrons, 14,76 ± 5,92 ind./km² para Callithrix aurita e 7,71 ± 2,13 ind./km² para Cebus nigritus. O tamanho populacional foi estimado em 83,0 ± 34,0 indivíduos para C. nigrifrons, 52,0 ± 20,8 indivíduos para Callithrix aurita e 27,0 ± 7,4 indivíduos para Cebus nigritus. Com relação ao bugio (A. guariba clamitans), constatou-se que apenas um grupo com seis indivíduos sobrevive na área. Conclui-se que, no caso de continuarem isoladas, essas populações têm poucas chances de sobrevivência no futuro frente aos riscos de eventos estocásticos. A criação de corredores ecológicos conectando a área de estudo aos outros fragmentos em seu entorno e a translocação de indivíduos de outras áreas da Mata Atlântica para esta região poderão constituir alternativas para garantir a viabilidade dessas populações em longo prazo. Para tanto, é necessário que se consolide uma política pública no município de Pouso Alegre voltada à criação, ampliação e gestão de Unidades de Conservação, e ao incentivo para a adoção de práticas produtivas sob critérios de sustentabilidade no entorno dessas áreas de interesse ecológico.

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Columnar cell apical membranes (CCAM) in series with goblet cell apical membranes (GCAM) form an electroosmotic barrier separating the midgut lumen from epithelial cell cytoplasm. A unique K+ ATPase in GCAM generates three gradients across this barrier. A greater than 180 mV electrical gradient (lumen positive) drives amino acid uptake through voltage-dependent K+ symports. A greater than 1000-fold [H+] gradient (lumen alkaline) and a greater than 10-fold [K+] gradient (lumen concentrated) are adaptations to the high tannin and high K+ content, respectively, in dietary plant material. Agents which act on the apical membrane and disrupt the PD, H+, or K+ gradients are potential insecticides. Insect sensory epithelia and mammalian stria vascularis maintain similar PD and K+ gradients but would not be exposed to ingested anti-apical membrane insecticides. Following the demonstration by Sacchi et al. that Bacillus thuringiensis delta-endotoxin (Bt) induces specifically a K+ conductance increase in CCAM vesicles, we find that the K+ channel blocking agent, Ba2+, completely reverses Bt inhibition of the K+-carried short circuit current in the isolated midgut of Manduca sexta. Progress in characterizing the apical membrane includes finding that fluorosulfonylbenzoyladenosine binds specifically to certain GCAM polypeptides and that CCAM vesicles can be mass produced by Ca2+ or Mg2+ precipitation from Manduca sexta midgut.

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RESUME GRAND PUBLICLe cerveau est composé de différents types cellulaires, dont les neurones et les astrocytes. Faute de moyens pour les observer, les astrocytes sont très longtemps restés dans l'ombre alors que les neurones, bénéficiant des outils ad hoc pour être stimulés et étudiés, ont fait l'objet de toutes les attentions. Le développement de l'imagerie cellulaire et des outils fluorescents ont permis d'observer ces cellules non électriquement excitables et d'obtenir des informations qui laissent penser que ces cellules sont loin d'être passives et participent activement au fonctionnement cérébral. Cette participation au fonctionnement cérébral se fait en partie par le biais de la libération de substances neuro-actives (appellées gliotransmetteurs) que les astrocytes libèrent à proximité des synapses permettant ainsi de moduler le fonctionnement neuronal. Cette libération de gliotransmetteurs est principalement causée par l'activité neuronale que les astrocytes sont capables de sentir. Néanmoins, nous savons encore peu de chose sur les propriétés précises de la libération des gliotransmetteurs. Comprendre les propriétés spatio-temporelles de cette libération est essentiel pour comprendre le mode de communication de ces cellules et leur implication dans la transmission de l'information cérébrale. En utilisant des outils fluorescents récemment développés et en combinant différentes techniques d'imagerie cellulaire, nous avons pu obtenir des informations très précises sur la libération de ces gliotransmetteurs par les astrocytes. Nous avons ainsi confirmé que cette libération était un processus très rapide et qu'elle était contrôlée par des augmentations de calcium locales et rapides. Nous avons également décrit une organisation complexe de la machinerie supportant la libération des gliotransmetteurs. Cette organisation complexe semble être à la base de la libération extrêmement rapide des gliotransmetteurs. Cette rapidité de libération et cette complexité structurelle semblent indiquer que les astrocytes sont des cellules particulièrement adaptées à une communication rapide et qu'elles peuvent, au même titre que les neurones dont elles seraient les partenaires légitimes, participer à la transmission et à l'intégration de l'information cérébrale.RESUMEDe petites vésicules, les « SLMVs » ou « Synaptic Like MicroVesicles », exprimant des transporteurs vésiculaires du glutamate (VGluTs) et libérant du glutamate par exocytose régulée, ont récemment été décrites dans les astrocytes en culture et in situ. Néanmoins, nous savons peu de chose sur les propriétés précises de la sécrétion de ces SLMVs. Contrairement aux neurones, le couplage stimulussécrétion des astrocytes n'est pas basé sur l'ouverture des canaux calciques membranaires mais nécessite l'intervention de seconds messagers et la libération du calcium par le reticulum endoplasmique (RE). Comprendre les propriétés spatio-temporelles de la sécrétion astrocytaire est essentiel pour comprendre le mode de communication de ces cellules et leur implication dans la transmission de l'information cérébrale. Nous avons utilisé des outils fluorescents récemment développés pour étudier le recyclage des vésicules synaptiques glutamatergiques comme les colorants styryles et la pHluorin afin de pouvoir suivre la sécrétion des SLMVs à l'échelle de la cellule mais également à l'échelle des évènements. L'utilisation combinée de l'épifluorescence et de la fluorescence à onde évanescente nous a permis d'obtenir une résolution temporelle et spatiale sans précédent. Ainsi avons-nous confirmé que la sécrétion régulée des astrocytes était un processus très rapide (de l'ordre de quelques centaines de millisecondes). Nous avons découvert que cette sécrétion est contrôlée par des augmentations de calcium locales et rapides. Nous avons également décrit des compartiments cytosoliques délimités par le RE à proximité de la membrane plasmique et contenant les SLMVs. Cette organisation semble être à la base du couplage rapide entre l'activation des GPCRs et la sécrétion. L'existence de compartiments subcellulaires indépendants permettant de contenir les messagers intracellulaires et de limiter leur diffusion semble compenser de manière efficace la nonexcitabilité électrique des astrocytes. Par ailleurs, l'existence des différents pools de vésicules recrutés séquentiellement et fusionnant selon des modalités distinctes ainsi que l'existence de mécanismes permettant le renouvellement de ces pools lors de la stimulation suggèrent que les astrocytes peuvent faire face à une stimulation soutenue de leur sécrétion. Ces données suggèrent que la libération de gliotransmetteurs par exocytose régulée n'est pas seulement une propriété des astrocytes en culture mais bien le résultat d'une forte spécialisation de ces cellules pour la sécrétion. La rapidité de cette sécrétion donne aux astrocytes toutes les compétences pour pouvoir intervenir de manière active dans la transmission et l'intégration de l'information.ABSTRACTRecently, astrocytic synaptic like microvesicles (SLMVs), that express vesicular glutamate transporters (VGluTs) and are able to release glutamate by Ca2+-dependent regulated exocytosis, have been described both in tissue and in cultured astrocytes. Nevertheless, little is known about the specific properties of regulated secretion in astrocytes. Important differences may exist between astrocytic and neuronal exocytosis, starting from the fact that stimulus-secretion coupling in astrocytes is voltage independent, mediated by G-protein-coupled receptors and the release of Ca2+ from internal stores. Elucidating the spatiotemporal properties of astrocytic exo-endocytosis is, therefore, of primary importance for understanding the mode of communication of these cells and their role in brain signaling. We took advantage of fluorescent tools recently developed for studying recycling of glutamatergic vesicles at synapses like styryl dyes and pHluorin in order to follow exocytosis and endocytosis of SLMVs at the level of the entire cell or at the level of single event. We combined epifluorescence and total internal reflection fluorescence imaging to investigate, with unprecedented temporal and spatial resolution, the events underlying the stimulus-secretion in astrocytes. We confirmed that exo-endocytosis process in astrocytes proceeds with a time course on the millisecond time scale. We discovered that SLMVs exocytosis is controlled by local and fast Ca2+ elevations; indeed submicrometer cytosolic compartments delimited by endoplasmic reticulum (ER) tubuli reaching beneath the plasma membrane and containing SLMVs. Such complex organization seems to support the fast stimulus-secretion coupling reported here. Independent subcellular compartments formed by ER, SLMVs and plasma membrane containing intracellular messengers and limiting their diffusion seem to compensate efficiently the non-electrical excitability of astrocytes. Moreover, the existence of two pools of SLMVs which are sequentially recruited suggests a compensatory mechanisms allowing the refill of SLMVs and supporting exocytosis process over a wide range of multiple stimuli. These data suggest that regulated secretion is not only a feature of cultured astrocytes but results from a strong specialization of these cells. The rapidity of secretion demonstrates that astrocytes are able to actively participate in brain information transmission and processing.

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Life on earth is subject to the repeated change between day and night periods. All organisms that undergo these alterations have to anticipate consequently the adaptation of their physiology and possess an endogenous periodicity of about 24 hours called circadian rhythm from the Latin circa (about) and diem (day). At the molecular level, virtually all cells of an organism possess a molecular clock which drives rhythmic gene expression and output functions. Besides altered rhythmicity in constant conditions, impaired clock function causes pathophysiological conditions such as diabetes or hypertension. These data unveil a part of the mechanisms underlying the well-described epidemiology of shift work and highlight the function of clock-driven regulatory mechanisms. The post-translational modification of proteins by the ubiquitin polypeptide is a central mechanism to regulate their stability and activity and is capital for clock function. Similarly to the majority of biological processes, it is reversible. Deubiquitylation is carried out by a wide variety of about ninety deubiquitylating enzymes and their function remains poorly understood, especially in vivo. This class of proteolytic enzymes is parted into five families including the Ubiquitin-Specific Proteases (USP), which is the most important with about sixty members. Among them, the Ubiquitin-Specific Protease 2 (Usp2) gene encodes two protein isoforms, USP2-45 and USP2-69. The first is ubiquitously expressed under the control of the circadian clock and displays all features of core clock genes or its closest outputs effectors. Additionally, Usp2-45 was also found to be induced by the mineralocorticoid hormone aldosterone and thought to participate in Na+ reabsorption and blood pressure regulation by Epithelial Na+ Channel ENaC in the kidneys. During my thesis, I aimed to characterize the role of Usp2 in vivo with respect to these two areas, by taking advantage of a total constitutive knockout mouse model. In the first project I aimed to validate the role of USP2-45 in Na+ homeostasis and blood pressure regulation by the kidneys. I found no significant alterations of diurnal Na+ homeostasis and blood pressure in these mice, indicating that Usp2 does not play a substantial role in this process. In urine analyses, we found that our Usp2-KO mice are actually hypercalciuric. In a second project, I aimed to understand the causes of this phenotype. I found that the observed hypercalciuria results essentially from intestinal hyperabsorption. These data reveal a new role for Usp2 as an output effector of the circadian clock in dietary Ca2+ metabolism in the intestine.

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BACKGROUND: Zebrafish is a clinically-relevant model of heart regeneration. Unlike mammals, it has a remarkable heart repair capacity after injury, and promises novel translational applications. Amputation and cryoinjury models are key research tools for understanding injury response and regeneration in vivo. An understanding of the transcriptional responses following injury is needed to identify key players of heart tissue repair, as well as potential targets for boosting this property in humans. RESULTS: We investigated amputation and cryoinjury in vivo models of heart damage in the zebrafish through unbiased, integrative analyses of independent molecular datasets. To detect genes with potential biological roles, we derived computational prediction models with microarray data from heart amputation experiments. We focused on a top-ranked set of genes highly activated in the early post-injury stage, whose activity was further verified in independent microarray datasets. Next, we performed independent validations of expression responses with qPCR in a cryoinjury model. Across in vivo models, the top candidates showed highly concordant responses at 1 and 3 days post-injury, which highlights the predictive power of our analysis strategies and the possible biological relevance of these genes. Top candidates are significantly involved in cell fate specification and differentiation, and include heart failure markers such as periostin, as well as potential new targets for heart regeneration. For example, ptgis and ca2 were overexpressed, while usp2a, a regulator of the p53 pathway, was down-regulated in our in vivo models. Interestingly, a high activity of ptgis and ca2 has been previously observed in failing hearts from rats and humans. CONCLUSIONS: We identified genes with potential critical roles in the response to cardiac damage in the zebrafish. Their transcriptional activities are reproducible in different in vivo models of cardiac injury.

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Twenty-six species of white-rotting Agaricomycotina fungi (Basidiomycota) were screened for their ability to produce calcium-oxalate (CaOx) crystals in vitro. Most were able to produce CaOx crystals in malt agar medium in the absence of additional calcium. In the same medium enriched with Ca2+, all the species produced CaOx crystals (weddellite or whewellite). Hyphae of four species (Ganoderma lucidum, Polyporus ciliatus, Pycnoporus cinnabarinus, and Trametes versicolor) were found coated with crystals (weddellite/whewellite). The production of CaOx crystals during the growth phase was confirmed by an investigation of the production kinetics for six of the species considered in the initial screening (Pleurotus citrinopileatus, Pleurotus eryngii, Pleurotus ostreatus, P. cinnabarinus, Trametes suaveolens, and T. versicolor). However, the crystals produced during the growth phase disappeared from the medium over time in four of the six species (P. citrinopileatus, P. eryngii, P. cinnabarinus, and T. suaveolens). For P. cinnabarinus, the disappearance of the crystals was correlated with a decrease in the total oxalate concentration measured in the medium from 0.65 μg mm−2 (at the maximum accumulation rate) to 0.30 μg mm−2. The decrease in the CaOx concentration was correlated with a change in mycelia morphology. The oxalate dissolution capability of all the species was also tested in a medium containing calcium oxalate as the sole source of carbon (modified Schlegel medium). Three species (Agaricus blazei, Pleurotus tuberregium, and P. ciliatus) presented a dissolution halo around the growth zone. This study shows that CaOx crystal production is a widespread phenomenon in white-rot fungi, and that an excess of Ca2+ can enhance CaOx crystal production. In addition, it shows that some white-rot fungal species are capable of dissolving CaOx crystals after growth has ceased. These results highlight a diversity of responses around the production or dissolution of calcium oxalate in white-rot fungi and reveal an unexpected potential importance of fungi on the oxalate cycle in the environment.

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Schistosoma mansoni soluble egg antigens (SEA) were fractionated by isoelectric focusing, resulting in 20 components, characterized by pH, absorbance and protein concentration. The higher absorbance fractions were submitted to electrophoresis, and fraction 8 (F8) presented a specific pattern of bands on its isoelectric point. Protein 3 was observed only on F8, and so, it was utilized to rabbit immunization, in order to evaluate its capacity of inducing protective immunity. IgG antibodies from rabbit anti-F8 serum were coupled to Sepharose, and used to obtain the specific antigen by affinity chromatography. This antigen, submitted to electrophoresis, presented two proteic bands (F8.1 and F8.2), which were transferred to nitrocellulose membrane (PVDF) and sequenciated. The homology of F8.2 to known proteins was determined using the Basic Local Alignment Search Tool program (BLASTp). Significant homologies were obtained for the rabbit cytosolic Ca2+ uptake inhibitor, and for the bird a1-proteinase inhibitor. Immunization of mice with F8.1 and F8.2, in the presence of Corynebacterium parvum and Al(OH)3 as adjuvant, induced a significant protection degree against challenge infection, as observed by the decrease on worm burden recovered from portal system.

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During the last decade, evidence that release of chemical transmitters from astrocytes might modulate neuronal activity (the so-called "gliotransmission") occurs in situ has been extensively provided. Nevertheless, gliotransmission remains a highly debated topic because of the lack of direct morphological and functional evidence. Here we provided new information supporting gliotransmission, by i) deepen knowledge about specific properties of regulated secretion of glutamatergic SLMVs, and ii) investigating the involvement of astrocytes in the transmission of dopamine, a molecule whose interaction with astrocytes is likely to occur, but it's still not proven.¦VGLUT-expressing glutamatergic SLMVs have been previously identified both in situ and in vitro, but description of kinetics of release were still lacking. To elucidate this issue, we took advantage of fluorescent tools (styryl dyes and pHluorin) and adapted experimental paradigms and analysis methods previously developed to study exo-endocytosis and recycling of glutamatergic vesicles at synapses. Parallel use of EPIfluorescence and total internal reflection (TIRF) imaging allowed us to find that exo-endocytosis processes in astrocytes are extremely fast, with kinetics in the order of milliseconds, able to sustain and follow neuronal signalling at synapses. Also, exocytosis of SLMVs is under the control of fast, localized Ca2+ elevations in close proximity of SLMVs and endoplasmatic reticulum (ER) tubules, the intracellular calcium stores. Such complex organization supports the fast stimulus-secretion coupling we described; localized calcium elevations have been recently observed in astrocytes in situ, suggesting that these functional microdomains might be present in the intact tissue. In the second part of the work, we investigated whether astrocytes possess some of the benchmarks of brain dopaminergic cells. It's been known for years that astrocytes are able to metabolize monoamines by the enzymes MAO and COMT, but to date no clear information that glial cells are able to uptake and store monoamines have been provided. Here, we identified a whole apparatus for the storage, degradation and release of monoamines, at the ultrastructural level. Electron microscopy immunohistochemistry allowed us to visualize VMAT2- and dopamine-positive intracellular compartments within astrocytic processes, i.e. dense -core granules and cisterns. These organelles might be responsible for dopamine release and storage, respectively; interestingly, this intracellular distribution is reminiscent of VMAT2 expression in dendrites if neurons, where dopamine release is tonic and plays a role in the regulation of its a basal levels, suggesting that astrocytic VMAT2 is involved in the homeostasis of dopamine in healthy brains of adult mammals.¦Durant cette dernière décennie, de nombreux résultats sur le relâchement des transmetteurs par les astrocytes pouvant modulé l'activité synaptique (gliotransmission) ont été fournis. Néanmoins, la gliotransmission reste un processus encore très débattu, notamment à cause de l'absence de preuves directes, morphologique et fonctionnelle démontrant ce phénomène. Nous présentons dans nos travaux de nombreux résultats confortant l'hypothèse de la gliotransmission, dont i) une étude approfondie sur les propriétés spatiales et temporelles de la sécrétion régulée du glutamate dans les astrocytes, et ii) une étude sur la participation des astrocytes dans la transmission de la dopamine, une neuromodulateur dont l'interaction avec les astrocytes est fortement probable, mais qui n'a encore jamais été prouvée. L'expression des petites vésicules (SLMVs - Synaptic Like Micro Vesicles) glutamatergiques exprimant les transporteurs vésiculaires du glutamate (VGLUTs) dans les astrocytes a déjà été prouvé tant in situ qu'in vitro. Afin de mettre en évidence les propriétés précises de la sécrétion de ces organelles, nous avons adapté à nos études des méthodes expérimentales conçues pour observer les processus de exocytose et endocytose dans les neurones. Les résolutions spatiale et temporelle obtenues, grâce a l'utilisation en parallèle de l'épi fluorescence et de la fluorescence a onde évanescente (TIRF), nous ont permis de montrer que la sécrétion régulée dans les astrocytes est un processus extrêmement rapide (de l'ordre de la milliseconde) et qu'elle est capable de soutenir et de suivre la transmission de signaux entre neurones. Nous avons également découvert que cette sécrétion a lieu dans des compartiments subcellulaires particuliers où nous observons la présence du reticulum endoplasmique (ER) ainsi que des augmentations rapides de calcium. Cette organisation spatiale complexe pourrait être la base morphologique du couplage rapide entre le stimulus et la sécrétion. Par ailleurs, plusieurs études récentes in vivo semblent confirmer l'existence de ces compartiments. Depuis des années nous savons que les astrocytes sont capables de métaboliser les monoamines par les enzymes MAO et COMT. Nous avons donc fourni de nouvelles preuves concernant la présence d'un appareil de stockage dans les astrocytes participant à la dégradation et la libération de monoamines au niveau ultrastructurelle. Grâce à la microscopie électronique, nous avons découvert la présence de compartiments intracellulaires exprimant VMAT2 dans les processus astrocytaires, sous forme de granules et des citernes. Ces organelles pourraient donc être responsables à la fois du relâchement et du stockage de la dopamine. De manière surprenante, cette distribution intracellulaire est similaire aux dendrites des neurones exprimant VMAT2, où la dopamine est libérée de façon tonique permettant d'agir sur la régulation de ses niveaux de base. Ces résultats, suggèrent une certaine participation des VMAT2 présents dans les astrocytes dans le processus d'homéostase de la dopamine dans le cerveau.¦A de nombreuses reprises, dans des émissions scientifiques ou dans des films, il est avancé que les hommes n'utilisent que 10% du potentiel de leur cerveau. Cette légende provient probablement du fait que les premiers chercheurs ayant décrit les cellules du cerveau entre le XIXème et le XXeme siècle, ont montré que les neurones, les cellules les plus connues et étudiées de cet organe, ne représentent seulement que 10% de la totalité des cellules composant du cerveau. Parmi les 90% restantes, les astrocytes sont sans doute les plus nombreuses. Jusqu'au début des années 90, les astrocytes ont été plutôt considérés peu plus que du tissu conjonctif, ayant comme rôles principaux de maintenir certaines propriétés physiques du cerveau et de fournir un support métabolique (énergie, environnement propre) aux neurones. Grace à la découverte que les astrocytes ont la capacité de relâcher des substances neuro-actives, notamment le glutamate, le rôle des astrocytes dans le fonctionnement cérébral a été récemment reconsidérée.¦Le rôle du glutamate provenant des astrocytes et son impact sur la fonctionnalité des neurones n'a pas encore été totalement élucidé, malgré les nombreuses publications démontrant l'importance de ce phénomène en relation avec différentes fonctions cérébrales. Afin de mieux comprendre comment les astrocytes sont impliqués dans la transmission cérébrale, nous avons étudié les propriétés spatio-temporelles de cette libération grâce à l'utilisation des plusieurs marqueurs fluorescents combinée avec différentes techniques d'imagerie cellulaires. Nous avons découvert que la libération du glutamate par les astrocytes (un processus maintenant appelé "gliotransmission") était très rapide et contrôlée par des augmentations locales de calcium. Nous avons relié ces phénomènes à des domaines fonctionnels subcellulaires morphologiquement adaptés pour ce type de transmission. Plus récemment, nous avons concentré nos études sur un autre transmetteur très important dans le fonctionnement du cerveau : la dopamine. Nos résultats morphologiques semblent indiquer que les astrocytes ont la capacité d'interagir avec ce transmetteur, mais d'une manière différente comparée au glutamate, notamment en terme de rapidité de transmission. Ces résultats suggèrent que le astrocytes ont la capacité de modifier leurs caractéristiques et de s'adapter à leur environnement par rapport aux types de transmetteur avec lequel ils doivent interagir.