Department of Biotechnology, Institute of Biology and Biotechnology, College of Natural Sciences, University of Rzeszow, Pigonia 1, 35-310 Rzeszow, Poland.
TERRA Research and Teaching Centre, Microbial Processes and Interactions Laboratory (MiPI), Gembloux Agro-Bio Tech-University of Liège, Avenue de la Faculté 2B, 5030 Gembloux, Belgium.
Int J Mol Sci. 2021 Oct 11;22(20):10952. doi: 10.3390/ijms222010952.
Recent advances in the synthesis of metal nanoparticles (MeNPs), and more specifically gold nanoparticles (AuNPs), have led to tremendous expansion of their potential applications in different fields, ranging from healthcare research to microelectronics and food packaging. The properties of functionalised MeNPs can be fine-tuned depending on their final application, and subsequently, these properties can strongly modulate their biological effects. In this review, we will firstly focus on the impact of MeNP characteristics (particularly of gold nanoparticles, AuNPs) such as shape, size, and aggregation on their biological activities. Moreover, we will detail different in vitro and in vivo assays to be performed when cytotoxicity and biocompatibility must be assessed. Due to the complex nature of nanomaterials, conflicting studies have led to different views on their safety, and it is clear that the definition of a standard biosafety label for AuNPs is difficult. In fact, AuNPs' biocompatibility is strongly affected by the nanoparticles' intrinsic characteristics, biological target, and methodology employed to evaluate their toxicity. In the last part of this review, the current legislation and requirements established by regulatory authorities, defining the main guidelines and standards to characterise new nanomaterials, will also be discussed, as this aspect has not been reviewed recently. It is clear that the lack of well-established safety regulations based on reliable, robust, and universal methodologies has hampered the development of MeNP applications in the healthcare field. Henceforth, the international community must make an effort to adopt specific and standard protocols for characterisation of these products.
近年来,金属纳米粒子(MeNPs),特别是金纳米粒子(AuNPs)的合成技术取得了重大进展,这使得它们在医疗研究、微电子学和食品包装等不同领域的潜在应用得到了极大的扩展。功能化 MeNPs 的性质可以根据其最终应用进行微调,随后,这些性质可以强烈调节它们的生物效应。在这篇综述中,我们将首先关注 MeNP 特性(特别是金纳米粒子,AuNPs),如形状、大小和聚集对其生物活性的影响。此外,我们将详细介绍不同的体外和体内检测方法,这些方法必须在评估细胞毒性和生物相容性时进行。由于纳米材料的复杂性,相互矛盾的研究导致了对它们安全性的不同看法,很明显,为 AuNPs 定义一个标准的生物安全标签是很困难的。事实上,AuNPs 的生物相容性强烈受到纳米粒子固有特性、生物靶标和用于评估其毒性的方法的影响。在这篇综述的最后一部分,还将讨论当前法规和监管机构制定的要求,这些法规和要求定义了表征新型纳米材料的主要指南和标准,因为最近没有对这方面进行审查。很明显,缺乏基于可靠、稳健和通用方法的完善安全法规,阻碍了 MeNP 在医疗保健领域的应用发展。因此,国际社会必须努力采用特定的和标准的协议来对这些产品进行特性描述。