441 resultados para microplastics (MPs)
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The ocean has been assumed as the main sink of microplastics (MPs), however, soils may also receive MPs from different sources and through different pathways, which may affect the biota and their role in soil functions. To the best of our knowledge, only one study, until now, reported the effects of MPs on the survival and fitness of soil organisms (Lumbricus terrestris). In our study, epigeic earthworms, of the species E. andrei, were exposed to different concentrations of MPs (0, 62.5, 125, 250, 500 and 1000 mg/kg soildw) in an OECD artificial soil and tested for reproduction, survival and growth of adults, following a standard protocol. The size of the polyethylene MPs to which earthworms were exposed ranged between 250 and 1000 μm. No significant effects were recorded on survival, number of juveniles and, in the final weight of adult earthworms after 28d of exposure, to the different concentrations of MPs. Nevertheless, FTIR-ATR of earthworms and histopathological analysis of the gut provided evidences of damages and immune system responses to MPs.
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better health service.Conclusion:This research provides an insight into the perceptions of the rhetoric and reality of community member involvement in the process of developing multi-purpose services. It revealed a grounded theory in which fear and trust were intrinsic to a process of changing from a traditional hospital service to the acceptance of a new model of health care provided at a multi-purpose service.
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Consultoria Legislativa - Área VII - Finanças, Direito Comercial, Direito Econômico, Defesa do Consumidor - Área XI - Meio Ambiente, Geografia, Urbanismo, Arquitetura.
Resumo:
报道了金属/多孔硅/结构(MPS)中光生伏特效应研究的最新结果,给出了该结构的光谱响应曲线,发现该结构在1100-350nm波长范围具有明显的光谱响应.还测量了开路电压随温度、光照波长及光照强度的变化关系,发现开路电压随温度的降低近似线性增加,其温度系数对于金/多孔硅结构约为2.0mV/K,对于铝/多孔硅结构约为2.8mV/K,与单晶硅及非晶硅太阳电池的温度系数相近,但MPS结构的开路电压随光强的增加不满足对数关系.结果表明,在MPS结构中金属/多孔硅肖特基结对光生伏特效应起了主要作用,而多孔硅/单晶硅异质结的作用是与此相反的.
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Microplastic litter is a pervasive pollutant present in aquatic systems across the globe. A range of marine organisms have the capacity to ingest microplastics, resulting in adverse health effects. Developing methods to accurately quantify microplastics in productive marine waters, and those internalized by marine organisms, is of growing importance. Here we investigate the efficacy of using acid, alkaline and enzymatic digestion techniques in mineralizing biological material from marine surface trawls to reveal any microplastics present. Our optimized enzymatic protocol can digest >97% (by weight) of the material present in plankton-rich seawater samples without destroying any microplastic debris present. In applying the method to replicate marine samples from the western English Channel, we identified 0.27 microplastics m−3. The protocol was further used to extract microplastics ingested by marine zooplankton under laboratory conditions. Our findings illustrate that enzymatic digestion can aid the detection of microplastic debris within seawater samples and marine biota.
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Microscopic plastic debris, termed “microplastics”, are of increasing environmental concern. Recent studies have demonstrated that a range of zooplankton, including copepods, can ingest microplastics. Copepods are a globally abundant class of zooplankton that form a key trophic link between primary producers and higher trophic marine organisms. Here we demonstrate that ingestion of microplastics can significantly alter the feeding capacity of the pelagic copepod Calanus helgolandicus. Exposed to 20 μm polystyrene beads (75 microplastics mL–1) and cultured algae ([250 μg C L–1) for 24 h, C. helgolandicus ingested 11% fewer algal cells (P = 0.33) and 40% less carbon biomass (P < 0.01). There was a net downward shift in the mean size of algal prey consumed (P < 0.001), with a 3.6 fold increase in ingestion rate for the smallest size class of algal prey (11.6–12.6 μm), suggestive of postcapture or postingestion rejection. Prolonged exposure to polystyrene microplastics significantly decreased reproductive output, but there were no significant differences in egg production rates, respiration or survival. We constructed a conceptual energetic (carbon) budget showing that microplastic-exposed copepods suffer energetic depletion over time. We conclude that microplastics impede feeding in copepods, which over time could lead to sustained reductions in ingested carbon biomass.
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Plastic debris is a widespread contaminant, prevalent in aquatic ecosystems across the globe. Zooplankton readily ingest microscopic plastic (microplastic, < 1 mm), which are later egested within their faecal pellets. These pellets are a source of food for marine organisms, and contribute to the oceanic vertical flux of particulate organic matter as part of the biological pump. The effects of microplastics on faecal pellet properties are currently unknown. Here we test the hypotheses that (1) faecal pellets are a vector for transport of microplastics, (2) polystyrene microplastics can alter the properties and sinking rates of zooplankton egests and, (3) faecal pellets can facilitate the transfer of plastics to coprophagous biota. Following exposure to 20.6 μm polystyrene microplastics (1000 microplastics mL–1) and natural prey (∼1650 algae mL–1) the copepod Calanus helgolandicus egested faecal pellets with significantly (P < 0.001) reduced densities, a 2.25-fold reduction in sinking rates, and a higher propensity for fragmentation. We further show that microplastics, encapsulated within egests of the copepod Centropages typicus, could be transferred to C. helgolandicus via coprophagy. Our results support the proposal that sinking faecal matter represents a mechanism by which floating plastics can be vertically transported away from surface waters.
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The heterogeneous solid catalyst, mercaptopropylsilica (MPS), has been prepared by a modified procedure in water and its structure confirmed by solid state carbon-13 CP-MAS NMR spectrum. This catalyst has been efficiently utilized for the synthesis of a wide variety of tri-, tetrasubstituted imidazoles and their bis-analogues at room temperature. The protocol was further explored for the synthesis of the drug trifenagrel.
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Existe um interesse crescente pelo controle das condições de cultivo necessárias para a expansão de células-tronco de indivíduos adultos devido ao grande potencial para o desenvolvimento de pesquisa básica e de aplicações terapêuticas apresentado pelas mesmas. Atualmente, a literatura apresenta poucos trabalhos que detalhem a biologia da célula-tronco mesenquimal (MSC) de camundongo, revelando a necessidade de estudos voltados para este tema. Quatro culturas de longa duração foram produzidas com células da medula óssea de camundongos normais e IDUA knock-out através de técnicas de cultivo relativamente simples. Estas culturas puderam ser mantidas por até 40 passagens, e demonstraram ser morfologicamente homogêneas. Células dessas culturas puderam ser induzidas a diferenciarem-se ao longo de vias de diferenciação adipogênica e osteogênica, e revelaram ser capazes de suportar o crescimento e a proliferação de células-tronco hematopoiéticas. Por apresentarem tais características funcionais, essas populações celulares foram operacionalmente definidas como MSCs. Quando o repertório de marcadores de superfície dessas células foi observado por meio de citometria de fluxo, verificou-se que elas eram positivas para Sca-1, CD29, CD44 e CD49e, e eram negativas para CD11b, CD13, CD18, CD19, CD31, CD45, CD49d e Gr-1 Este perfil de moléculas de superfície assemelha-se àquele descrito para a MSC humana, e indica ausência de contaminantes hematopoiéticos. Uma verificação preliminar da freqüência da MSC na medula óssea de camundongo foi realizada, trazendo a estimativa de que uma MSC está presente numa faixa de 11.000 – 27.000 células. Finalmente, os dados revelaram que não há diferenças imediatamente perceptíveis entre camundongos normais e do modelo murino de MPS I no tocante à MSC, o que indica que os trabalhos futuros visando à correção da deficiência de α-L-iduronidase neste modelo utilizando a MSC são viáveis. O estabelecimento da metodologia para o cultivo e expansão da MSC murina através de técnicas simples vem preencher uma lacuna existente no campo dos modelos experimentais animais, trazendo novas perspectivas para o desenvolvimento de estratégias de terapia celular/genética em modelos experimentais murinos.