5 resultados para carotenoids, sponges, retinoids, morphogenesis, carotenoid-oxygenase

em Repositório Institucional da Universidade de Aveiro - Portugal


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Sea salt is a natural product obtained from the evaporation of seawater in saltpans due to the combined effect of wind and sunlight. Nowadays, there is a growing interest for protection and re-valorisation of saltpans intrinsically associated to the quality of sea salt that can be evaluated by its physico-chemical properties. These man-made systems can be located in different geographical areas presenting different environmental surroundings. During the crystallization process, organic compounds coming from these surroundings can be incorporated into sea salt crystals, influencing their final composition. The organic matter associated to sea salt arises from three main sources: algae, surrounding bacterial community, and anthropogenic activity. Based on the hypothesis that sea salt contains associated organic compounds that can be used as markers of the product, including saltpans surrounding environment, the aim of this PhD thesis was to identify these compounds. With this purpose, this work comprised: 1) a deep characterisation of the volatile composition of sea salt by headspace solid phase microextraction combined with comprehensive two-dimensional gas chromatography time-of-flight mass spectrometry (HS-SPME/GCGC–ToFMS) methodology, in search of potential sea salt volatile markers; 2) the development of a methodology to isolate the polymeric material potentially present in sea salt, in amounts that allow its characterisation in terms of polysaccharides and protein; and 3) to explore the possible presence of triacylglycerides. The high chromatographic resolution and sensitivity of GC×GC–ToFMS enabled the separation and identification of a higher number of volatile compounds from sea salt, about three folds, compared to unidimentional chromatography (GC–qMS). The chromatographic contour plots obtained revealed the complexity of marine salt volatile composition and confirmed the relevance of GC×GC–ToFMS for this type of analysis. The structured bidimentional chromatographic profile arising from 1D volatility and 2D polarity was demonstrated, allowing more reliable identifications. Results obtained for analysis of salt from two locations in Aveiro and harvested over three years suggest the loss of volatile compounds along the time of storage of the salt. From Atlantic Ocean salts of seven different geographical origins, all produced in 2007, it was possible to identify a sub-set of ten compounds present in all salts, namely 6-methyl-5-hepten-2-one, 2,2,6-trimethylcyclohexanone, isophorone, ketoisophorone, β-ionone-5,6-epoxide, dihydroactinidiolide, 6,10,14-trimethyl-2-pentadecanone, 3-hydroxy-2,4,4-trimethylpentyl 2-methylpropanoate, 2,4,4-trimethylpentane-1,3-diyl bis(2-methylpropanoate), and 2-ethyl-1-hexanol. These ten compounds were considered potential volatile markers of sea salt. Seven of these compounds are carotenoid-derived compounds, and the other three may result from the integration of compounds from anthropogenic activity as metabolites of marine organisms. The present PhD work also allowed the isolation and characterisation, for the first time, of polymeric material from sea salt, using 16 Atlantic Ocean salts. A dialysis-based methodology was developed to isolate the polymeric material from sea salt in amounts that allowed its characterisation. The median content of polymeric material isolated from the 16 salts was 144 mg per kg of salt, e.g. 0.014% (w/w). Mid-infrared spectroscopy and thermogravimetry revealed the main occurrence of sulfated polysaccharides, as well as the presence of protein in the polymeric material from sea salt. Sea salt polysaccharides were found to be rich in uronic acid residues (21 mol%), glucose (18), galactose (16), and fucose (13). Sulfate content represented a median of 45 mol%, being the median content of sulfated polysaccharides 461 mg/g of polymeric material, which accounted for 66 mg/kg of dry salt. Glycosidic linkage composition indicates that the main sugar residues that could carry one or more sulfate groups were identified as fucose and galactose. This fact allowed to infer that the polysaccharides from sea salt arise mainly from algae, due to their abundance and composition. The amino acid profile of the polymeric material from the 16 Atlantic Ocean salts showed as main residues, as medians, alanine (25 mol%), leucine (14), and valine (14), which are hydrophobic, being the median protein content 35 mg/g, i.e. 4,9 mg per kg of dry salt. Beside the occurrence of hydrophobic volatile compounds in sea salt, hydrophobic non-volatile compounds were also detected. Triacylglycerides were obtained from sea salt by soxhlet extraction with n-hexane. Fatty acid composition revealed palmitic acid as the major residue (43 mol%), followed by stearic (13), linolenic (13), oleic (12), and linoleic (9). Sea salt triacylglycerides median content was 1.5 mg per kg of dry salt. Both protein and triacylglycerides seem to arise from macro and microalgae, phytoplankton and cyanobacteria, due to their abundance and composition. Despite the variability resulting from saltpans surrounding environment, this PhD thesis allowed the identification of a sea salt characteristic organic compounds profile based on volatile compounds, polysaccharides, protein, and triacylglycerides.

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As algas do género Nannochloropsis são microalgas marinhas que apresentam um perfil bioquímico único, principalmente no que é respeitante a lípidos, e uma vasta gama de compostos bioativos que possibilitam a sua aplicabilidade comercial em várias áreas biotecnológicas, destacando-se a alimentação e nutrição humana, indústria cosmética e farmacêutica, produção de biocombustíveis e a sua utilização em aquacultura. Em aquacultura, são usadas maioritariamente microalgas vivas, cuja produção representa elevados custos. Tem havido assim uma pesquisa de dietas alternativas, entre as quais os concentrados de microalgas se apresentam promissores. Os desafios atuais das empresas produtoras de concentrados de microalgas prendem-se com a conservação e armazenamento destes concentrados. Assim, neste trabalho foi proposto o estudo da influência da refrigeração, congelação e adição de conservantes a PhytoBloom Green Formula®, concentrado de Nannochloropsis sp. comercializado pela empresa Necton S.A., com o objetivo de averiguar a variação de parâmetros bioquímicos e organoléticos com a exposição do concentrado aos diferentes métodos de conservação. Pretendia-se assim observar se estes processos podem ser usados para aumentar o tempo de prateleira do concentrado em estudo. Para tal, foram avaliadas amostras recolhidas em três pontos temporais e analisados os seguintes parâmetros: perfil de ácidos gordos, quantificação de hidroperóxidos lipídicos, quantificação espectrofotométrica de clorofila a e carotenóides, bem como parâmetros organoléticos. Inicialmente, foi efetuada uma avaliação de diferentes parâmetros organoléticos, não se observando variações relevantes entre amostras das diferentes condições. Assim, foi posteriormente realizada a avaliação bioquímica. Primeiramente, foi efetuada a quantificação de ácidos gordos por GC-FID das diferentes amostras, nas quais não se observou diferenças significativas entre as condições experimentais. Foi também efetuado um ensaio de FOX II, que permitiu avaliar o grau de peroxidação lipídica de cada amostra por quantificação de hidroperóxidos lipídicos formados. As amostras nas quais houve adição de conservantes apresentaram um teor menor de hidropéroxidos lipídicos, permitindo inferir que a ação dos conservantes com propriedades antioxidantes permitiu uma melhor conservação da amostra. Quando se determinou a concentração de clorofila a e de carotenóides verificou-se que, em ambos os casos, a congelação conduziu a uma estabilização da concentração destes pigmentos. No entanto, os melhores resultados foram obtidos usando a combinação de congelação com adição de conservantes. Estes resultados, embora promissores, carecem de uma confirmação por um novo estudo, completando com análises com maior rigor e sensibilidade associados, no sentido de se verificar qual o método mais vantajoso para a extensão do tempo de prateleira de PhytoBloom Green Formula®.

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As algas do género Nannochloropsis são microalgas marinhas que apresentam um perfil bioquímico único, principalmente no que é respeitante a lípidos, e uma vasta gama de compostos bioativos que possibilitam a sua aplicabilidade comercial em várias áreas biotecnológicas, destacando-se a alimentação e nutrição humana, indústria cosmética e farmacêutica, produção de biocombustíveis e a sua utilização em aquacultura. Em aquacultura, são usadas maioritariamente microalgas vivas, cuja produção representa elevados custos. Tem havido assim uma pesquisa de dietas alternativas, entre as quais os concentrados de microalgas se apresentam promissores. Os desafios atuais das empresas produtoras de concentrados de microalgas prendem-se com a conservação e armazenamento destes concentrados. Assim, neste trabalho foi proposto o estudo da influência da refrigeração, congelação e adição de conservantes a PhytoBloom Green Formula®, concentrado de Nannochloropsis sp. comercializado pela empresa Necton S.A., com o objetivo de averiguar a variação de parâmetros bioquímicos e organoléticos com a exposição do concentrado aos diferentes métodos de conservação. Pretendia-se assim observar se estes processos podem ser usados para aumentar o tempo de prateleira do concentrado em estudo. Para tal, foram avaliadas amostras recolhidas em três pontos temporais e analisados os seguintes parâmetros: perfil de ácidos gordos, quantificação de hidroperóxidos lipídicos, quantificação espectrofotométrica de clorofila a e carotenóides, bem como parâmetros organoléticos. Inicialmente, foi efetuada uma avaliação de diferentes parâmetros organoléticos, não se observando variações relevantes entre amostras das diferentes condições. Assim, foi posteriormente realizada a avaliação bioquímica. Primeiramente, foi efetuada a quantificação de ácidos gordos por GC-FID das diferentes amostras, nas quais não se observou diferenças significativas entre as condições experimentais. Foi também efetuado um ensaio de FOX II, que permitiu avaliar o grau de peroxidação lipídica de cada amostra por quantificação de hidroperóxidos lipídicos formados. As amostras nas quais houve adição de conservantes apresentaram um teor menor de hidropéroxidos lipídicos, permitindo inferir que a ação dos conservantes com propriedades antioxidantes permitiu uma melhor conservação da amostra. Quando se determinou a concentração de clorofila a e de carotenóides verificou-se que, em ambos os casos, a congelação conduziu a uma estabilização da concentração destes pigmentos. No entanto, os melhores resultados foram obtidos usando a combinação de congelação com adição de conservantes. Estes resultados, embora promissores, carecem de uma confirmação por um novo estudo, completando com análises com maior rigor e sensibilidade associados, no sentido de se verificar qual o método mais vantajoso para a extensão do tempo de prateleira de PhytoBloom Green Formula®.

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Marine sponges harbor microbial communities of immense ecological and biotechnological importance. Recently, they have been focus of heightened attention due to the wide range of biologically active compounds with potential application, particularly, in chemical, cosmetic and pharmaceutical industries. However, we still lack fundamental knowledge of their microbial ecology and biotechnological potential. The development of high-throughput sequencing technologies has given rise to a new range of tools that can help us explore the biotechnological potential of sponges with incredible detail. Metagenomics, in particular, has the power to revolutionize the production of bioactive compounds produced by unculturable microorganisms. It can offer the identification of biosynthetic genes or gene clusters that can be heterologously expressed on a cultivable and suitable host. This review focus on the exploration of the biotechnological potential of sponge-associated microorganisms, and integration of molecular approaches, whose increasing efficiency can play an essential role on achieving a sustainable source of natural products.

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The main objective of the present work is the study of a profitable process not only in the extraction and selective separation of lycopene and β-carotene, two compounds present in tomato, but also in its potential application to food industry wastes. This is one of the industries that produce larger amounts of wastes, which are rich in high value biomolecules with great economic interest. However, the conventional methods used to extract this kind of compounds are expensive which limits their application at large scale. Lycopene and βcarotene are carotenoids with high commercial value, known for their antioxidant activity and benefits to human health. Their biggest source is tomato, one of the world’s most consumed fruits, reason for which large quantities of waste is produced. This work focuses on the study of diverse solvents with a high potential to extract carotenoids from tomato, as well as the search for more environmentally benign solvents than those currently used to extract lycopene and β-carotene from biomass. Additionally, special attention was paid to the creation of a continuous process that would allow the fractionation of the compounds for further purification. Thus, the present work started with the extraction of both carotenoids using a wide range of solvents, namely, organic solvents, conventional salts, ionic liquids, polymers and surfactants. In this stage, each solvent was evaluated in what regards their capacity of extraction as well as their penetration ability in biomass. The results collected showed that an adequate selection of the solvents may lead to the complete extraction of both carotenoids in one single step, particularly acetone and tetrahydrofuran were the most effective ones. However, the general low penetration capacity of salts, ionic liquids, polymers and surfactants makes these solvents ineffective in the solid-liquid extraction process. As the organic solvents showed the highest capacity to extract lycopene and βcarotene, in particular tetrahydrofuran and acetone, the latter solvent used in the development process of fractionation, using to this by strategic use of solvents. This step was only successfully developed through the manipulation of the solubility of each compound in ethanol and n-hexane. The results confirmed the possibility of fractionating the target compounds using the correct addition order of the solvents. Approximately, 39 % of the β-carotene was dissolved in ethanol and about 64 % of lycopene was dissolved in n-hexane, thus indicating their separation for two different solvents which shows the selective character of the developed process without any prior stage optimization. This study revealed that the use of organic solvents leads to selective extraction of lycopene and β-carotene, allowing diminishing the numerous stages involved in conventional methods. At the end, it was possible to idealize a sustainable and of high industrial relevance integrated process, nevertheless existing the need for additional optimization studies in the future.