677 resultados para MALDI-ToF
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Helicobacter pylori is a bacterium recognized as the major cause of peptic ulcer and chronic gastritis. Recently, a proteome-based approach was developed to investigate pathogenic factors related to H. pylori. In this preliminary study, H. pylori strains were isolated from gastric biopsies of patients with chronic gastritis and duodenal ulcers. A partial proteomic analysis of H. pylori strains was performed by bacterial lyses and proteins were separated by two-dimensional gel electrophoresis (2-DE). A comparative analysis was performed to verify a differential protein expression between these two 2-DE maps. These data should be useful to clarify the role of different proteins related to bacterial pathogenesis. This study will be completed using a larger number of samples and protein identification of H. pylori by MALDI-TOF mass spectrometry.
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Candida albicans is an opportunistic human pathogen that is capable of causing superficial and systemic infections in immunocompromised patients. Extracts of Sapindus saponaria have been used as antimicrobial agents against various organisms. In the present study, we used a combination of two-dimensional polyacrylamide gel electrophoresis (2D-PAGE) and matrix-assisted laser desorption ionization-time of flight mass spectrometry (MALDI-TOF MS) to identify the changes in protein abundance of C. albicans after exposure to the minimal inhibitory concentration (MIC) and sub-minimal inhibitory concentration (sub-MIC) of the butanolic extract (BUTE) of S. saponaria and also to fluconazole. A total of six different proteins with greater than 1.5 fold induction or repression relative to the untreated control cells were identified among the three treatments. In general, proteins/enzymes involved with the glycolysis (GPM1, ENO1, FBA1), amino acid metabolism (ILV5, PDC11) and protein synthesis (ASC1) pathways were detected. In conclusion, our findings reveal antifungal-induced changes in protein abundance of C. albicans. By using the previously identified components of the BUTE of S. saponaria(e.g., saponins and sesquiterpene oligoglycosides), it will be possible to compare the behavior of compounds with unknown mechanisms of action, and this knowledge will help to focus the subsequent biochemical work aimed at defining the effects of these compounds.
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Dissertação Apresentada na Faculdade de Ciências e Tecnologia da Universidade Nova de Lisboa para obtenção do grau de Mestre em Ciências da Conservação, especialização em Pintura
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Dissertação apresentada para a obtenção do Grau de Doutor em Química Sustentável, especialidade de Química-Física Inorgânica, pela Universidade Nova de Lisboa, Faculdade de Ciências e Tecnologia
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Dissertação para obtenção do Grau de Mestre em Engenharia de Materiais
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Dissertação para obtenção do grau de Mestre em Microbiologia Médica
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Using a green methodology, 17 different poly(2-oxazolines) were synthesized starting from four different oxazoline monomers. The polymerization reactions were conducted in supercritical carbon dioxide under a cationic ring-opening polymerization (CROP) mechanism using boron trifluoride diethyl etherate as the catalyst. The obtained living polymers were then end-capped with different types of amines, in order to confer them antimicrobial activity. For comparison, four polyoxazolines were end-capped with water, and by their hydrolysis the linear poly(ethyleneimine) (LPEI) was also produced. After functionalization the obtained polymers were isolated, purified and characterized by standard techniques (FT-IR, NMR, MALDI-TOF and GPC). The synthesized poly(2-oxazolines) revealed an unusual intrinsic blue photoluminescence. High concentration of carbonyl groups in the polymer backbone is appointed as a key structural factor for the presence of fluorescence and enlarges polyoxazolines’ potential applications. Microbiological assays were also performed in order to evaluate their antimicrobial profile against gram-positive Staphylococcus aureus NCTC8325-4 and gram-negative Escherichia coli AB1157 strains, two well known and difficult to control pathogens. The minimum inhibitory concentrations (MIC)s and killing rates of three synthesized polymers against both strains were determined. The end-capping with N,N-dimethyldodecylamine of living poly(2- methyl-2-oxazoline) and poly(bisoxazoline) led to materials with higher MIC values but fast killing rates (less than 5 minutes to achieve 100% killing for both bacterial species) than LPEI, a polymer which had a lower MIC value, but took a longer time to kill both E.coli and S.aureus cells. LPEI achieved 100% killing after 45 minutes in contact with E. coli and after 4 hours in contact with S.aureus. Such huge differences in the biocidal behavior of the different polymers can possibly underlie different mechanisms of action. In the future, studies to elucidate the obtained data will be performed to better understand the killing mechanisms of the polymers through the use of microbial cell biology techniques.
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No decorrer do trabalho experimental que originou esta dissertação efectuaram-se vários estudos com o intuito de estudar cineticamente a reacção de hidrólise enzimática de proteínas acelerada por ultrasons. Utilizaram-se quatro proteínas diferentes: albumina sérica bovina (BSA), anidrase carbónica, ovalbumina e α-lactoalbumina que foram digeridas com tripsina. No sentido de monitorizar em tempo real a reacção de hidrólise recorreu-se a espectrofotometria ultravioleta-visivel, utilizando tecnologia NanoDrop® ND-1000, com base nas características físico-químicas das cadeias polipeptídicas, bem como à incorporação de um corante extrínseco através do ensaio de Bradford. Efectuaram-se igualmente estudos de espectrofotometria de fluorescência, também através da tecnologia NanoDrop® ND-3300, por incorporação de um fluoróforo extrínseco, SYPRO® Orange, à estrutura proteica. Para além dos ensaios espectrofotométricos, recorreu-se a uma nova metodologia de quantificação proteica através da marcação isotópica com oxigénio 18O acoplada a jusante com espectrometria de massa MALDI-TOF-MS. Com base nos resultados obtidos, concluiu-se que através do protocolo testado de digestão enzimática de proteínas acelerada por ultrasons não foi possível monitorizar em tempo real a reacção, quer por espectrofotometria de UV-Vis, quer por espectrofotometria de fluorescência através do fluoróforo SYPRO® Orange. No que diz respeito à marcação isotópica por 18O também não foi possível efectuar qualquer estudo cinético, uma vez que esta metodologia apenas permite a quantificação relativa das amostras proteicas.
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The use of chemical analysis of microbial components, including proteins, became an important achievement in the 80’s of the last century to the microbial identification. This led a more objective microbial identification scheme, called chemotaxonomy, and the analytical tools used in the field are mainly 1D/2D gel electrophoresis, spectrophotometry, high-performance liquid chromatography, gas chromatography, and combined gas chromatography-mass spectrometry. The Edman degradation reaction was also applied to peptides sequence giving important insights to the microbial identification. The rapid development of these techniques, in association with knowledge generated by DNA sequencing and phylogeny based on rRNA gene and housekeeping genes sequences, boosted the microbial identification to an unparalleled scale. The recent results of mass spectrometry (MS), like Matrix-Assisted Laser Desorption/Ionisation Time-of-Flight (MALDI-TOF), for rapid and reliable microbial identification showed considerable promise. In addition, the technique is rapid, reliable and inexpensive in terms of labour and consumables when compared with other biological techniques. At present, MALDI-TOF MS adds an additional step for polyphasic identification which is essential when there is a paucity of characters or high DNA homologies for delimiting very close related species. The full impact of this approach is now being appreciated when more diverse species are studied in detail and successfully identified. However, even with the best polyphasic system, identification of some taxa remains time-consuming and determining what represents a species remains subjective. The possibilities opened with new and even more robust mass spectrometers combined with sound and reliable databases allow not only the microbial identification based on the proteome fingerprinting but also include de novo specific proteins sequencing as additional step. These approaches are pushing the boundaries in the microbial identification field.
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The use of chemical analysis of microbial components, including proteins, became an important achievement in the 80’s of the last century to the microbial identification. This led a more objective microbial identification scheme, called chemotaxonomy, and the analytical tools used in the field are mainly 1D/2D gel electrophoresis, spectrophotometry, high-performance liquid chromatography, gas chromatography, and combined gas chromatography-mass spectrometry. The Edman degradation reaction was also applied to peptides sequence giving important insights to the microbial identification. The rapid development of these techniques, in association with knowledge generated by DNA sequencing and phylogeny based on rRNA gene and housekeeping genes sequences, boosted the microbial identification to an unparalleled scale. The recent results of mass spectrometry (MS), like Matrix-Assisted Laser Desorption/Ionisation Time-of-Flight (MALDI-TOF), for rapid and reliable microbial identification showed considerable promise. In addition, the technique is rapid, reliable and inexpensive in terms of labour and consumables when compared with other biological techniques. At present, MALDI-TOF MS adds an additional step for polyphasic identification which is essential when there is a paucity of characters or high DNA homologies for delimiting very close related species. The full impact of this approach is now being appreciated when more diverse species are studied in detail and successfully identified. However, even with the best polyphasic system, identification of some taxa remains time-consuming and determining what represents a species remains subjective. The possibilities opened with new and even more robust mass spectrometers combined with sound and reliable databases allow not only the microbial identification based on the proteome fingerprinting but also include de novo specific proteins sequencing as additional step. These approaches are pushing the boundaries in the microbial identification field.
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Since the last two decades mass spectrometry (MS) has been applied to analyse the chemical cellular components of microorganisms, providing rapid and discriminatory proteomic profiles for their species identification and, in some cases, subtyping. The application of MS for the microbial diagnosis is currently well-established. The remarkable reproducibility and objectivity of this method is based on the measurement of constantly expressed and highly abundant proteins, mainly important conservative ribosomal proteins, which are used as markers to generate a cellular fingerprint. Mass spectrometry based on matrix-assisted laser desorption ionization-time of flight (MALDI- TOF) technique has been an important tool for the microbial diagnostic. However, some technical limitation concerning both MALDI-TOF and its used protocols for sample preparation have fostered the research of new mass spectrometry systems (e.g. LC MS/MS). LC MS/MS is able to generate online mass spectra of specific ions with further online sequencing of these ions, which include both specific proteins and DNA fragments. In this work a set of data for yeasts and filamentous fungi diagnostic obtained through an international collaboration project involving partners from Argentina, Brazil, Chile and Portugal will be presented and discussed.
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Cutinase from Thermobifida fusca was used to esterify the hydroxyl groups of cellulose with the fatty acids from triolein. Cutinase and triolein were pre-adsorbed on cotton and the reaction proceeded in a dry state during 48 hours at 35ºC. The cutinase-catalyzed esterification of the surface of cotton fabric resulted in the linkage of the oleate groups to the glycoside units of cotton cellulose. The superficial modification was confirmed by performing ATR-FTIR on treated cotton samples and by MALDI-TOF analysis of the liquors from the treatment of the esterified cotton with a crude cellulase mixture. Modified cotton fabric also showed a significant increase of hydrophobicity. This work proposes a novel bio-based approach to obtain hydrophobic cotton. This article is protected by copyright. All rights reserved.
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Tese de Doutoramento em Engenharia Biomédica.
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Horseradish peroxidase (HRP)/H2O2 system catalyzes the free-radical polymerization of aromatic compounds such as lignins and gallate esters. In this work, dodecyl gallate (DG) was grafted onto the surfaces of lignin-rich jute fabrics by HRP-mediated oxidative polymerization with an aim to enhance the hydrophobicity of the fibers. The DG-grafted jute fibers and reaction products of their model compounds were characterized by matrix-assisted laser desorption/ionization mass spectrometry (MALDI-TOF MS), attenuated total reflection Fourier transform infrared spectroscopy (ATR-FTIR), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), thermogravimetric analysis (TGA), and differential scanning calorimetry (DSC). The results clearly indicated the grafting of DG to the jute fiber by HRP. Furthermore, the hydrophobicity of jute fabrics was determined by measuring the wetting time and static contact angle. Compared to the control sample, the wetting time and static contact angle of the grated fabrics changed from ~1 s to 1 h and from ~0° to 123.68°, respectively. This clearly proved that the hydrophobicity of jute fabrics improved considerably. Conditions of the HRP-catalyzed DG-grafting reactions were optimized in terms of the DG content of modified jute fabrics. Moreover, the results of breaking strength and elongation of DG-grafted jute/ polypropylene (PP) composites demonstrated improved reinforcement of the composite due to enzymatic hydrophobic modification of jute fibers.
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La agricultura moderna se basa en el empleo de fertilizantes y pesticidas químicos para aumentar la productividad y para el control de enfermedades de los cultivos; sin embargo, existe una tendencia a disminuir su uso en la agricultura debido a los efectos negativos sobre la salud humana y el medio ambiente. Una estrategia alternativa al uso de agroquímicos es el empleo de microorganismos capaces de promover el crecimiento vegetal y/o actuar como agentes de biocontrol. A la hora de formular un inoculante se debe tener en cuenta que la cepa sea competitiva. A pesar de que se conoce poco sobre el rol de las bacteriocinas en el medio ambiente; se ha observado que bacterias productoras de bacteriocinas son más competitivas. Además estos metabolitos pueden ser utilizados también para el control biológico de bacterias patógenas. En el laboratorio se cuenta con cepas de Pseudomonas aislados de la rizósfera de cereales de la provincia de Córdoba. Pseudomonas sp. SF4c (cepa nativa de trigo), secreta una bacteriocina de alto peso molecular, aun no caracterizada. HIPOTESIS: El empleo de formulaciones en base a cepas nativas competitivas, altamente eficientes para la promoción del crecimiento vegetal y el control biológico permitirá disminuir el uso de agroquímicos incrementando la producción y/o calidad de los cultivos. Objetivos específicos: 1. Evaluar la capacidad de Pseudomonas nativas de inhibir el crecimiento de hongos fitopatógeno. 2. Analizar la producción de bacteriocinas en Pseudomonas spp. 3. Purificar parcialmente la bacteriocina secretada por Pseudomonas sp. SF4c. Para llevar a cabo este proyecto, - Se probará la capacidad de Pseudomonas de inhibir el crecimiento de hongos fitopatógenos en medio agar dextrosa papa. En las cepas biocontroladoras, se buscarán los genes implicados en la síntesis de metabolitos secundarios, mediante PCR usando primer específicos. - Se analizará la producción de bacteriocinas en Pseudomonas nativas. En las cepas bacteriocinogénicas se realizarán estudios adicionales para conocer la estabilidad de estos compuestos (sensibilidad a enzimas proteolíticas, calor, UV). -Se purificará la bacteriocina secretada por Pseudomonas sp. SF4C, mediante cromatografía de exclusión molecular, las fracciones recogidas serán analizados en geles de poliacrilamida. La identificación de la proteína será realizada por espectrometría de masa MALDI-TOF. Se espera encontrar dentro de la colección, cepas capaces de controlar el desarrollo de hongos fitopatógenos, dilucidar los mecanismos mediante el cual ejerce su efecto de biocontrol y avanzar en el conocimiento de nuevas bacteriocinas. A nivel industrial, existe en el futuro la posibilidad de que estas bacterias puedan ser utilizadas en la formulación de inoculantes para ser usados en la fertilización de cultivos de cereales que son de gran importancia económica para la región, y/o como agentes de control biológico.