Matteis Valeria De, Rizzello Loris, Cascione Mariafrancesca, Liatsi-Douvitsa Eva, Apriceno Azzurra
Department of Mathematics and Physics "Ennio De Giorgi", University of Salento, Via Arnesano, 73100 Lecce, Italy.
The Barcelona Institute of Science and Technology, Institute for Bioengineering of Catalonia (IBEC), Baldiri Reixac 10-12, 08028 Barcelona, Spain.
Nanomaterials (Basel). 2020 May 31;10(6):1083. doi: 10.3390/nano10061083.
In the past years, there is a growing interest in the application of nanoscaled materials in cancer therapy because of their unique physico-chemical properties. However, the dark side of their usability is limited by their possible toxic behaviour and accumulation in living organisms. Starting from this assumption, the search for a green alternative to produce nanoparticles (NPs) or the discovery of green molecules, is a challenge in order to obtain safe materials. In particular, gold (Au NPs) and silver (Ag NPs) NPs are particularly suitable because of their unique physico-chemical properties, in particular plasmonic behaviour that makes them useful as active anticancer agents. These NPs can be obtained by green approaches, alternative to conventional chemical methods, owing to the use of phytochemicals, carbohydrates, and other biomolecules present in plants, fungi, and bacteria, reducing toxic effects. In addition, we analysed the use of green and stimuli-responsive polymeric bio-inspired nanovesicles, mainly used in drug delivery applications that have revolutionised the way of drugs supply. Finally, we reported the last examples on the use of metallic and Au NPs as self-propelling systems as new concept of nanorobot, which is able to respond and move towards specific physical or chemical stimuli in biological entities.
在过去几年中,由于其独特的物理化学性质,纳米材料在癌症治疗中的应用受到越来越多的关注。然而,其可用性的阴暗面受到其在生物体内可能的毒性行为和积累的限制。基于这一假设,寻找生产纳米颗粒(NPs)的绿色替代品或发现绿色分子,是获得安全材料的一项挑战。特别是,金(Au NPs)和银(Ag NPs)纳米颗粒因其独特的物理化学性质,特别是等离子体行为,使其成为有用的活性抗癌剂,因而特别适用。由于使用了植物、真菌和细菌中存在的植物化学物质、碳水化合物和其他生物分子,这些纳米颗粒可以通过绿色方法获得,这是传统化学方法的替代方法,从而降低了毒性作用。此外,我们分析了绿色和刺激响应性聚合物生物启发纳米囊泡的应用,这些纳米囊泡主要用于药物递送应用,彻底改变了药物供应方式。最后,我们报道了金属和金纳米颗粒作为自推进系统的最新例子,这是一种纳米机器人的新概念,能够对生物实体中的特定物理或化学刺激做出反应并向其移动。