Department of Biotechnology, University of Sorocaba, Rodovia Raposo Tavares S/N-km 92,5, CEP 18023-000, Sorocaba, S.P., Brazil.
J Appl Toxicol. 2012 Nov;32(11):867-79. doi: 10.1002/jat.2780. Epub 2012 Jun 13.
In recent years interest in silver nanoparticles and their applications has increased mainly because of the important antimicrobial activities of these nanomaterials, allowing their use in several industrial sectors. However, together with these applications, there is increasing concerning related to the biological impacts of the use of silver nanoparticles on a large scale, and the possible risks to the environment and health. In this scenario, some recent studies have been published based on the investigation of potential inflammatory effects and diverse cellular impacts of silver nanoparticles. Another important issue related to nanoparticle toxicity in biological media is the capacity for increased damage to the genetic material, since nanoparticles are able to cross cell membranes and reach the cellular nucleus. In this regard, there is increasing interest in the analysis of potential nanoparticle genotoxicity, including the effects of different nanoparticle sizes and methods of synthesis. However, little is known about the genotoxicity of different silver nanoparticles and their effects on the DNA of organisms; thus further studies in this field are required. This mini-review aims to present and to discuss recent publications related to genotoxicity and the cytotoxicity of silver nanoparticles in order to better understand the possible applications of these nanomaterials in a safe manner. This present work concludes that biogenic silver nanoparticles are generally less cyto/genotoxic in vivo compared with chemically synthesized nanoparticles. Furthermore, human cells were found to have a greater resistance to the toxic effects of silver nanoparticles in comparison with other organisms.
近年来,人们对银纳米粒子及其应用的兴趣日益增加,主要是因为这些纳米材料具有重要的抗菌活性,允许它们在几个工业领域中使用。然而,随着这些应用的增加,人们越来越关注大规模使用银纳米粒子对环境和健康的潜在生物影响和可能的风险。在这种情况下,一些最近的研究基于对银纳米粒子的潜在炎症作用和对细胞的各种影响的调查。与生物介质中纳米颗粒毒性相关的另一个重要问题是增加对遗传物质的损害的能力,因为纳米颗粒能够穿过细胞膜并到达细胞核。在这方面,人们越来越关注分析潜在的纳米颗粒遗传毒性,包括不同纳米颗粒尺寸和合成方法的影响。然而,对于不同的银纳米粒子的遗传毒性及其对生物体 DNA 的影响知之甚少;因此,需要在这一领域进行进一步的研究。这篇迷你综述旨在介绍和讨论与银纳米粒子的遗传毒性和细胞毒性相关的最新出版物,以便更好地理解这些纳米材料在安全条件下的可能应用。本研究工作得出的结论是,与化学合成的纳米粒子相比,生物源银纳米粒子在体内通常具有较低的细胞毒性/遗传毒性。此外,与其他生物体相比,人类细胞对银纳米粒子的毒性作用具有更强的抵抗力。