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Cytotoxicological pathways induced after nanoparticle exposure: studies of oxidative stress at the 'nano-bio' interface

机译:纳米粒子暴露后诱导的细胞毒理学途径:“纳米生物”界面处的氧化应激研究

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摘要

Nanotechnology is advancing rapidly; many industries are utilizing nanomaterials because of their remarkable properties. As of 2017, over 1800 "nano-enabled products" (i.e. products that incorporate a nanomaterial feature and alter the product's performance) have been used to revolutionize pharmaceutical, transportation, and agriculture industries, just to name a few. As the number of nano-enabled products continues to increase, the risk of nanoparticle exposure to humans and the surrounding environment also increases. These exposures are usually classified as either intentional or unintentional. The increased rate of potential nanoparticle exposure to humans has required the field of 'nanotoxicology' to rapidly screen for key biological, biochemical, chemical, or physical signals, signatures, or markers associated with specific toxicological pathways of injury within in vivo, in vitro, and ex vivo models. One of the common goals of nanotoxicology research is to identify critical perturbed biological pathways that can lead to an adverse outcome. This review focuses on the most common toxicological pathways induced by nanoparticle exposure and provides insights into how these perturbations could aid in the development of nanomaterial specific adverse outcomes, inform nano-enabled product development, ensure safe manufacturing practices, promote intentional product use, and avoid environmental health hazards.
机译:纳米技术正在迅速发展;许多行业都在利用纳米材料,因为它们具有显著的性能。截至2017年,超过1800种“纳米功能产品”(即结合纳米材料特性并改变产品性能的产品)已被用于医药、交通和农业行业的革命,仅举几例。随着纳米产品数量的不断增加,纳米颗粒暴露于人类和周围环境的风险也在增加。这些暴露通常分为有意或无意。人体潜在纳米颗粒暴露率的增加要求“纳米毒理学”领域快速筛选体内、体外和离体模型中与特定损伤毒理学途径相关的关键生物、生化、化学或物理信号、特征或标记。纳米毒理学研究的共同目标之一是确定可能导致不良后果的关键干扰生物途径。本综述侧重于纳米颗粒暴露诱导的最常见毒理学途径,并深入了解这些干扰如何有助于纳米材料特定不良后果的发展,为纳米产品开发提供信息,确保安全生产实践,促进有意使用产品,并避免环境健康危害。

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    《Toxicology Research》 |2017年第5期|共15页
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  • 正文语种 eng
  • 中图分类 药学;
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