9 resultados para Hemicellulases


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Abstract Background There is an imperative necessity for alternative sources of energy able to reduce the world dependence of fossil oil. One of the most successful options is ethanol obtained mainly from sugarcane and corn fermentation. The foremost residue from sugarcane industry is the bagasse, a rich lignocellulosic raw material uses for the production of ethanol second generation (2G). New cellulolytic and hemicellulytic enzymes are needed, in order to optimize the degradation of bagasse and production of ethanol 2G. Results The ability to produce hemicellulases and related enzymes, suitable for lignocellulosic biomass deconstruction, was explored using 110 endophytic fungi and 9 fungi isolated from spoiled books in Brazil. Two initial selections were performed, one employing the esculin gel diffusion assay, and the other by culturing on agar plate media with beechwood xylan and liquor from the hydrothermal pretreatment of sugar cane bagasse. A total of 56 isolates were then grown at 29°C on steam-exploded delignified sugar cane bagasse (DEB) plus soybean bran (SB) (3:1), with measurement of the xylanase, pectinase, β-glucosidase, CMCase, and FPase activities. Twelve strains were selected, and their enzyme extracts were assessed using different substrates. Finally, the best six strains were grown under xylan and pectin, and several glycohydrolases activities were also assessed. These strains were identified morphologically and by sequencing the internal transcribed spacer (ITS) regions and the partial β-tubulin gene (BT2). The best six strains were identified as Aspergillus niger DR02, Trichoderma atroviride DR17 and DR19, Alternaria sp. DR45, Annulohypoxylon stigyum DR47 and Talaromyces wortmannii DR49. These strains produced glycohydrolases with different profiles, and production was highly influenced by the carbon sources in the media. Conclusions The selected endophytic fungi Aspergillus niger DR02, Trichoderma atroviride DR17 and DR19, Alternaria sp. DR45, Annulohypoxylon stigyum DR47 and Talaromyces wortmannii DR49 are excellent producers of hydrolytic enzymes to be used as part of blends to decompose sugarcane biomass at industrial level.

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Abstract BACKGROUND: There is an imperative necessity for alternative sources of energy able to reduce the world dependence of fossil oil. One of the most successful options is ethanol obtained mainly from sugarcane and corn fermentation. The foremost residue from sugarcane industry is the bagasse, a rich lignocellulosic raw material uses for the production of ethanol second generation (2G). New cellulolytic and hemicellulytic enzymes are needed, in order to optimize the degradation of bagasse and production of ethanol 2G. RESULTS: The ability to produce hemicellulases and related enzymes, suitable for lignocellulosic biomass deconstruction, was explored using 110 endophytic fungi and 9 fungi isolated from spoiled books in Brazil. Two initial selections were performed, one employing the esculin gel diffusion assay, and the other by culturing on agar plate media with beechwood xylan and liquor from the hydrothermal pretreatment of sugar cane bagasse. A total of 56 isolates were then grown at 29°C on steam-exploded delignified sugar cane bagasse (DEB) plus soybean bran (SB) (3:1), with measurement of the xylanase, pectinase, β-glucosidase, CMCase, and FPase activities. Twelve strains were selected, and their enzyme extracts were assessed using different substrates. Finally, the best six strains were grown under xylan and pectin, and several glycohydrolases activities were also assessed. These strains were identified morphologically and by sequencing the internal transcribed spacer (ITS) regions and the partial β-tubulin gene (BT2). The best six strains were identified as Aspergillus niger DR02, Trichoderma atroviride DR17 and DR19, Alternaria sp. DR45, Annulohypoxylon stigyum DR47 and Talaromyces wortmannii DR49. These strains produced glycohydrolases with different profiles, and production was highly influenced by the carbon sources in the media. CONCLUSIONS: The selected endophytic fungi Aspergillus niger DR02, Trichoderma atroviride DR17 and DR19, Alternaria sp. DR45, Annulohypoxylon stigyum DR47 and Talaromyces wortmannii DR49 are excellent producers of hydrolytic enzymes to be used as part of blends to decompose sugarcane biomass at industrial level.

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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This article investigates a strain of the yeast Aureobasidium pullulans for cellulase and hemicellulase production in solid state fermentation. Among the substrates analyzed, the wheat bran culture presented the highest enzymatic production (1.05 U/mL endoglucanase, 1.3 U/mL β-glucosidase, and 5.0 U/mL xylanase). Avicelase activity was not detected. The optimum pH and temperature for xylanase, endoglucanase and β-glucosidase were 5.0 and 50, 4.5 and 60, 4.0 and 75°C, respectively. These enzymes remained stable between a wide range of pH. The β-glucosidase was the most thermostable enzyme, remaining 100% active when incubated at 75°C for 1 h. © 2007 Humana Press Inc.

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The xylanase biosynthesis is induced by its substrate-xylan. The high xylan content in some wastes such as wheat residues (wheat bran and wheat straw) makes them accessible and cheap sources of inducers to be mainly applied in great volumes of fermentation, such as those of industrial bioreactors. Thus, in this work, the main proposal was incorporated in the nutrient medium wheat straw particles decomposed to soluble compounds (liquor) through treatment of lignocellulosic materials in autohydrolysis process, as a strategy to increase and undervalue xylanase production by Aspergillus ochraceus. The wheat straw autohydrolysis liquor produced in several conditions was used as a sole carbon source or with wheat bran. The best conditions for xylanase and beta-xylosidase production were observed when A. ochraceus was cultivated with 1% wheat bran added of 10% wheat straw liquor (produced after 15 min of hydrothermal treatment) as carbon source. This substrate was more favorable when compared with xylan, wheat bran, and wheat straw autohydrolysis liquor used separately. The application of this substrate mixture in a stirred tank bioreactor indicated the possibility of scaling up the process to commercial production.

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O arroz é o segundo cereal mais produzido no mundo e para que ele seja consumido é necessário o processo de beneficiamento, onde é retirada a casca, e com o polimento, o farelo. O farelo, após a retirada do óleo, é utilizado para alimentação animal, mas como corresponde a 8% do grão, são necessárias novas alternativas para o uso do mesmo, uma vez que contém em torno de 17% de proteína. As proteínas do farelo de arroz são consideradas de alta qualidade, hipoalergênicas e anticancerígenas. Devido ao excesso de fibras presentes no farelo, este não é utilizado diretamente na alimentação humana, podendo ser usado como fonte para a obtenção de extratos, concentrados ou isolados. A obtenção do isolado protéico pode ser por via química, que consiste na extração alcalina ou ácida, seguida de precipitação no ponto isoelétrico ou via enzimática, com o uso de enzimas amilolíticas, hemicelulases e carboidrases para a separação das proteínas. O objetivo deste estudo foi obter um isolado protéico a partir de farelo de arroz visando a inclusão deste em produto de panificação. Foi obtido isolado protéico pelo método químico que foi analisado pelo rendimento protéico, pelas propriedades funcionais, perfil aminoacídico, eletroforese e características térmicas. O isolado foi adicionado em bolos em diferentes concentrações sendo avaliado pelas características tecnológicas e sensoriais. O isolado protéico do farelo de arroz (IPFA) que apresentou maior rendimento protéico foi o obtido pelo método químico, com o farelo de granulometria de 42 mesh e desengordurado. Em relação às propriedades funcionais, foi verificado que o IPFA possui maior solubilidade e capacidade de retenção de água em pH 11, alta capacidade emulsificante e alta capacidade de formação de espuma. No aminograma, constatou-se que os aminoácidos encontrados no IPFA atendem as necessidades de bebês e crianças. No perfil eletroforético, o IPFA apresentou 3 grupos de proteínas. Na análise térmica com DSC, o IPFA apresentou alta temperatura de desnaturação e baixo valor de entalpia. Na elaboração dos bolos, à medida que foi adicionado o IPFA, aumentou o teor protéico, o pH e o volume específico e diminuiu o colapso, a luminosidade e a firmeza dos bolos. Na análise sensorial, os bolos com IPFA não apresentaram diferenças estatísticas do bolo controle (sem IPFA). Estes resultados indicam a potencialidade do IPFA em produtos de panificação.