967 resultados para Analytical chemistry|Biochemistry
Resumo:
A method has been developed for the direct determination of Cu, Cd, Ni and Pb in aquatic humic substances (AHS) by graphite furnace atomic absorption spectrometry. AHS were isolated from water samples rich in organic matter, collected in the Brazilian Ecological Parks. All analytical curves presented good linear correlation coefficient. The limits of detection and quantification were in the ranges 2.5-16.7 mu g g(-1) and 8.5-50.0 mu g g(-1), respectively. The accuracy was determined using recovery tests, and for all analytes recovery percentages ranged from 93 - 98 %, with a relative standard deviation less than 4 %. The results indicated that the proposed method is a suitable alternative for the direct determination of metals in AHS.
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The present study deals with a new analytical procedure based on a cellulose diffusion membrane and immobilised tetraethylene-pentamine-hexaacetate chelator (DM-TEPHA) for an in situ differentiation of labile and inert metal species in aquatic systems. The DM-TEPHA system was prepared by placing TEPHA chelator in pre-purified cellulose bags and in situ applied immersing the system in two Brazilian rivers to study the relative lability of metal species (Cu, Pb, Fe, Mn and Ni) as a function of the time and the quantity of exchanger, respectively. The procedure is simple and enables a new perspective for understanding the complexation, transport, stability and lability of metal species in aquatic systems rich in organic matter.
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2006
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Les études cliniques et in vitro suggèrent que la sclérose de l’os sous-chondral due aux ostéoblastes (Ob) anormaux est impliquée dans la progression de l’ostéoarthrose (OA). Les Ob OA humains isolés à partir d’os sous-chondral sclérosé montrent un phénotype altéré, un niveau réduit de signalisation Wnt/β-caténine canonique et une minéralisation in vitro réduite. Il existe également deux voies non-canoniques, Wnt/PKC et Wnt/PCP qui ont étés décrites dans la littérature. Cependant, il n’existe aucune étude qui traite de ces deux voies dans les Ob OA. Ces voies sont activées après qu’un ligand Wnt non-canonique tel que Wnt-5a se lie à un récepteur Wnt couplé à des corécepteurs de la voie non-canonique. Ceci enclenche, respectivement pour la voie Wnt/PKC-Ca2+ et Wnt/PCP, la phosphorylation de PKC (p-PKC) et la phosphorylation de JNK (p-JNK) et agit sur les cibles en aval. Nous avons voulu déterminer s’il était possible de constater des altérations dans les voies Wnt non-canoniques dans les Ob OA. Nous avons préparé des cultures primaires d’ostéoblastes sous-chondral humains à partir de plateaux tibiaux de patients OA subissant une arthroplastie totale du genou, ainsi qu’à partir de plateaux tibiaux recueillis à l’autopsie de patients « normaux ». L’expression des gènes impliqués dans les voies Wnt/PKC et Wnt/PCP a été évaluée par RT-qPCR et la production par Western Blot des protéines, ainsi que celle de p-PKC et p-JNK et que l’activité des facteurs NFAT et AP-1 utilisés par ces deux voies. L’activité phosphatase alcaline (ALPase) et la quantité d’ostéocalcine (OC) ont étés évaluées respectivement à l’aide d’hydrolyse de substrat et d’ELISA. Le niveau de minéralisation a été évalué par la coloration au rouge Alizarine. Nos résultats montrent que l’expression et la production de Wnt-5a étaient augmentées dans les Ob OA comparées aux Ob N et LGR5 était significativement plus élevée. De plus, l’expression de LGR5 est directement régulée via la stimulation ou la diminution de Wnt-5a, à la fois au niveau de l’ARNm et des protéines. Par ailleurs, Wnt-5a a stimulé la phosphorylation de JNK et de PKC ainsi que l’activité NFAT et AP-1. Les niveaux de minéralisation ainsi que d’activité ALPase et de sécrétion d’OC ont aussi été affectés par les changements du niveau de Wnt-5a. Ces résultats suggèrent que Wnt-5a, qui est augmentée dans les OA Ob, peut stimuler les voies Wnt non-canoniques et affecter le phénotype et la minéralisation des OA Ob humains.
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Extracellular iron reduction has been suggested as a candidate metabolic pathway that may explain a large proportion of carbon respiration in temperate peatlands. However, the o-phenanthroline colorimetric method commonly employed to quantitate iron and partition between redox species is known to be unreliable in the presence of humic and fulvic acids, both of which represent a considerable proportion of peatland dissolved organic matter. We propose ionic liquid extraction as a more accurate iron quantitation and redox speciation method in humic-rich peat porewater. We evaluated both o-phenanthroline and ionic liquid extraction in four distinct peatland systems spanning a gradient of physico-chemical conditions to compare total iron recovery and Fe2+:Fe3+ ratios determined by each method. Ionic liquid extraction was found to provide more accurate iron quantitation and speciation in the presence of dissolved organic matter. A multivariate approach utilizing fluorescence- and UV-Vis spectroscopy was used to identify dissolved organic matter characteristics in peat porewater that lead to poor performance of the o-phenanthroline method. Where these interferences are present, we offer an empirical correction factor for total iron quantitation by o-phenanthroline, as verified by ionic liquid extraction. The written work presented in this thesis is in preparation for submission to Soil Biology and Biochemisrty by T.J. Veverica, E.S. Kane, A.M. Marcarelli, and S.A. Green.
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Iron oxides and arsenic are prevalent in the environment. With the increase interest in the use of iron oxide nanoparticles (IONPs) for contaminant remediation and the high toxicity of arsenic, it is crucial that we evaluate the interactions between IONPs and arsenic. The goal was to understand the environmental behavior of IONPs in regards to their particle size, aggregation and stability, and to determine how this behavior influences IONPs-arsenic interactions. A variety of dispersion techniques were investigated to disperse bare commercial IONPs. Vortex was able to disperse commercial hematite nanoparticles into unstable dispersions with particles in the micrometer size range while probe ultrasonication dispersed the particles into stable dispersions of nanometer size ranges for a prolonged period of time. Using probe ultrasonication and vortex to prepare IONPs suspensions of different particle sizes, the adsorption of arsenite and arsenate to bare hematite nanoparticles and hematite aggregates were investigated. To understand the difference in the adsorptive behavior, adsorption kinetics and isotherm parameters were determined. Both arsenite and arsenate were capable of adsorbing to hematite nanoparticles and hematite aggregates but the rate and capacity of adsorption is dependent upon the hematite particle size, the stability of the dispersion and the type of sorbed arsenic species. Once arsenic was adsorbed onto the hematite surface, both iron and arsenic can undergo redox transformation both microbially and photochemically and these processes can be intertwined. Arsenic speciation studies in the presence of hematite particles were performed and the effect of light on the redox process was preliminary quantified. The redox behavior of arsenite and arsenate were different depending on the hematite particle size, the stability of the suspension and the presence of environmental factors such as microbes and light. The results from this study are important and have significant environmental implications as arsenic mobility and bioavailability can be affected by its adsorption to hematite particles and by its surface mediated redox transformation. Moreover, this study furthers our understanding on how the particle size influences the interactions between IONPs and arsenic thereby clarifying the role of IONPs in the biogeochemical cycling of arsenic.
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Contaminants of emerging concern (CECs) are continuously being released into the environment mainly because of their incomplete removal in the sewage treatment plants (STPs). The CECs selected for the study include antibiotics (macrolides, sulfonamides and ciprofloxacin), sucralose (an artificial sweetener) and dioctyl sulfosuccinate (DOSS, chemical dispersant used in the Deepwater Horizon oil spill). After being discharged into waterways from STPs, photo degradation is a key factor in dictating the environmental fate of antibiotics and sucralose. Photodegradation efficiency depends on many factors such as pH of the matrix, matrix composition, light source and structure of the molecule. These factors exert either synergistic or antagonistic effects in the environment and thus experiments with isolated factors may not yield the same results as the natural environmental processes. Hence in the current study photodegradation of 13 CECs (antibiotics, sucralose and dicotyl sulfosuccinate) were evaluated using natural water matrices with varying composition (deionized water, fresh water and salt water) as well as radiation of different wavelengths (254 nm, 350 nm and simulated solar radiation) in order to mimic natural processes. As expected the contribution of each factor on the overall rate of photodegradation is contaminant specific, for example under similar conditions, the rate in natural waters compared to pure water was enhanced for antibiotics (2-11 fold), significantly reduced for sucralose (no degradation seen in natural waters) and similar in both media for DOSS. In general, it was observed that the studied compounds degraded faster at 254 nm, while when using a simulated sunlight radiation the rate of photolysis of DOSS increased and the rates for antibiotics decreased in comparison to the 350 nm radiation. The photo stability of the studied CECs followed the order sucralose > DOSS > macrolides > sulfonamides > ciprofloxacin and a positive relationship was observed between photo stability and their ubiquitous presence in natural aquatic matrices. An online LC-MS/MS method was developed and validated for sucralose and further applied to reclaimed waters (n =56) and drinking waters (n = 43) from South Florida. Sucralose was detected in reclaimed waters with concentrations reaching up to 18 µg/L. High frequency of detection (> 80%) in drinking waters indicate contamination of ground waters in South Florida by anthropogenic activity.