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In vitro toxicity analysis of nanoscale aluminum: Particle size and shape effects.

机译:纳米铝的体外毒性分析:粒径和形状效应。

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Nanostructured materials promise to revolutionize many key areas of science and technology. As our ability to manipulate matter at the nanoscale increases, there is a need to assess the effects of these materials on human health and the environment. Materials at the nanoscale are interesting and useful because they possess properties that are different from the equivalent bulk or molecular scale. These same properties can make toxicological profiles very different from those of the same materials on a different scale. There is a rising consensus that toxicity analysis of nanomaterials should start from a thorough physicochemical characterization of the materials under investigation in order to be able to establish a proper correlation between the nanoparticles characteristics and their effects and behavior in physiological environments. This research is a clear example of the necessity of comprehensive studies when investigating the toxicity of nanomaterials.; Aluminum nanoparticles are being extensively used for their very unique energetic properties. These materials offer a very promising market that is fostering many startup companies which are expected to consolidate on strong technological positions. Aluminum is generally recognized as a non-toxic material to humans and it is widely used for applications which imply direct human contact. The effect of aluminum nanoparticles in human health is still an unknown.; My research consisted of an in vitro toxicity screening of aluminum materials from nano to micron size, including spherical irregularly shaped particles. Several issues relating to size, shape, detection and characterization of nanoparticles in the different environments relevant to in vitro toxicity analysis were addressed and suitable protocols were developed. Lung human epithelial cells were exposed to different concentrations of these materials and the effects were analyzed by means of various toxicity tests. Some of the materials investigated caused elevated in vitro toxicity. Cells endocytosed the particles and a clear correlation between the particle size, shape and the effects observed was established. The hypothesized toxicity mechanism was explored using different analytical techniques. The detected toxicity of aluminum nanoparticles was demonstrated to be a direct effect of their reactivity inside the cells.
机译:纳米结构材料有望彻底改变科学技术的许多关键领域。随着我们在纳米尺度上处理物质的能力的增强,需要评估这些材料对人类健康和环境的影响。纳米级的材料是有趣且有用的,因为它们具有与等效体积或分子级不同的特性。这些相同的特性可能使毒理学特性与不同规模的相同材料的毒理学特性非常不同。越来越多的共识认为,纳米材料的毒性分析应从对被研究材料的全面物理化学表征开始,以便能够在纳米颗粒的特性及其在生理环境中的作用和行为之间建立适当的关联。该研究是研究纳米材料毒性时必须进行全面研究的一个明显例子。铝纳米粒子因其非常独特的能量特性而被广泛使用。这些材料提供了一个非常有希望的市场,正在培育许多有望在强大技术地位上进行合并的新兴公司。铝通常被认为是对人体无毒的材料,被广泛用于暗示直接与人接触的应用。铝纳米颗粒对人类健康的影响仍然未知。我的研究包括从铝到纳米尺寸的铝材料的体外毒性筛选,包括球形不规则形状的颗粒。解决了与体外毒性分析相关的不同环境中与纳米粒子的大小,形状,检测和表征有关的几个问题,并开发了合适​​的方案。将肺上皮细胞暴露于不同浓度的这些物质中,并通过各种毒性试验分析其作用。研究的某些材料导致体外毒性升高。细胞将颗粒内吞,并且在颗粒大小,形状和观察到的效果之间建立了明显的相关性。使用不同的分析技术探索了假设的毒性机理。铝纳米颗粒检测到的毒性被证明是其在细胞内反应的直接影响。

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