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The impact of nanomaterial characteristics on inhalation toxicity

机译:纳米材料特征对吸入毒性的影响

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During the last few decades, nanotechnology has evolved into a success story, apparent from a steadily increasing number of scientific publications as well as a large number of applications based on engineered nanomaterials (ENMs). Its widespread uses suggest a high relevance for consumers, workers and the environment, hence justifying intensive investigations into ENM-related adverse effects as a prerequisite for nano-specific regulations. In particular, the inhalation of airborne ENMs, being assumed to represent the most hazardous type of human exposure to these kinds of particles, needs to be scrutinized. Due to an increased awareness of possible health effects, which have already been seen in the case of ultrafine particles (UFPs), research and regulatory measures have set in to identify and address toxic implications following their almost ubiquitous occurrence. Although ENM properties differ from those of the respective bulk materials, the available assessment protocols are often designed for the latter. Despite the large benefit ensuing from the application of nanotechnology, many issues related to ENM behavior and adverse effects are not fully understood or should be examined anew. The traditional hypothesis that ENMs exhibit different or additional hazards due to their nano" size has been challenged in recent years and ENM categorization according to their properties and toxicity mechanisms has been proposed instead. This review summarizes the toxicological effects of inhaled ENMs identified to date, elucidating the modes of action which provoke different mechanisms in the respiratory tract and their resulting effects. By linking particular mechanisms and adverse effects to ENM properties, grouping of ENMs based on toxicity-related properties is supposed to facilitate toxicological risk assessment. As intensive studies are still required to identify these ENM classes", the need for alternatives to animal studies is evident and advances in cell-based test systems for pulmonary research are presented here. We hope to encourage the ongoing discussion about ENM risks and to advocate the further development and practice of suitable testing and grouping methods.
机译:在过去的几十年中,纳米技术已经发展成为一项成功的故事,从稳步越来越多的科学出版物以及基于工程纳米材料(eNMS)的大量应用程序来看。其广泛的用途表明了对消费者,工人和环境的高相关性,因此向恩纳相关的不利影响证明了强化调查作为纳米特定法规的先决条件。特别地,需要仔细审查,假设假设用于代表对这些种类的颗粒的最危险的人类暴露的最有害的人类暴露。由于在超细颗粒(UFP)的情况下已经看到的可能性健康效果的认识,研究和监管措施已经设定为识别和解决其几乎普遍存在的发生后的有毒影响。尽管恩典属性与各个散装材料的特性不同,但可用的评估协议通常为后者设计。尽管纳米技术的应用随之而来,但与恩典行为和不利影响有关的许多问题也没有完全理解或应重新检查。传统假设据提出了根据其纳米“规模”的纳米“尺寸因其纳米”规模而挑战的传统假设,并根据其性质和毒性机制进行了挑战。该审查总结了发现吸入enmm的毒理学效应迄今为止,阐明在呼吸道中引起不同机制的作用方式及其产生的效果。通过将特定机制和对烯族特性的不利影响,应该基于毒性相关性质分组益于毒性风险评估。作为密集研究仍然需要识别这些恩姆类课程“,在此提出了对动物研究的替代方案的需求,并且在此提出了基于细胞的肺部研究的测试系统。我们希望鼓励关于欧洲危险的持续讨论,并倡导适当的测试和分组方法的进一步发展和实践。

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    《Toxicology Research》 |2018年第3期|共26页
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  • 正文语种 eng
  • 中图分类 药学;
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