Centre for Nanobioscience, Agharkar Research Institute, G.G. Agarkar road, Pune 411 004, India.
Toxicol Appl Pharmacol. 2012 Jan 15;258(2):151-65. doi: 10.1016/j.taap.2011.11.010. Epub 2011 Dec 2.
Nanotechnology is considered as one of the key technologies of the 21st century and promises revolution in our world. Objects at nano scale, take on novel properties and functions that differ markedly from those seen in the corresponding bulk counterpart primarily because of their small size and large surface area. Studies have revealed that the same properties that make nanoparticles so unique could also be responsible for their potential toxicity. Nanotechnology is rapidly advancing, with more than 1000 nanoproducts already on the market. Considering the fact that intended as well as unintended exposure to nanomaterials is increasing and presently no clear regulatory guideline(s) on the testing/evaluation of nanoparticulate materials are available, the in vitro toxicological studies become extremely relevant and important. This review presents a summary of nanotoxicology and a concise account of the in vitro toxicity data on nanomaterials. For nanomaterials to move into the applications arena, it is important that nanotoxicology research uncovers and understands how these multiple factors influence their toxicity so that the ensuing undesirable effects can be avoided.
纳米技术被认为是 21 世纪的关键技术之一,有望给我们的世界带来革命性的变化。纳米尺度的物体具有独特的性质和功能,与相应的大块物质明显不同,这主要是由于它们的小尺寸和大表面积。研究表明,使纳米粒子如此独特的相同特性也可能是其潜在毒性的原因。纳米技术正在迅速发展,已有超过 1000 种纳米产品上市。考虑到有意和无意接触纳米材料的情况正在增加,而目前尚无关于纳米颗粒材料测试/评估的明确监管指南,体外毒理学研究变得极其相关和重要。本综述介绍了纳米毒理学的概述,并简要介绍了纳米材料的体外毒性数据。为了使纳米材料进入应用领域,重要的是,纳米毒理学研究揭示并了解这些多种因素如何影响它们的毒性,以便避免随之产生的不良影响。