School of Pharmaceutical Sciences, CSJM University Kanpur, Kanpur 208024, India.
Pharmaceutical Sciences Laboratory, Faculty of Science and Engineering, Åbo Akademi University, BioCity (3rd Floor), Tykistökatu, 6A, 20520 Turku, Finland.
Molecules. 2023 Jun 12;28(12):4701. doi: 10.3390/molecules28124701.
The application of metallic nanoparticles as a novel therapeutic tool has significant potential to facilitate the treatment and diagnosis of mitochondria-based disorders. Recently, subcellular mitochondria have been trialed to cure pathologies that depend on their dysfunction. Nanoparticles made from metals and their oxides (including gold, iron, silver, platinum, zinc oxide, and titanium dioxide) have unique modi operandi that can competently rectify mitochondrial disorders. This review presents insight into the recent research reports on exposure to a myriad of metallic nanoparticles that can alter the dynamic ultrastructure of mitochondria (via altering metabolic homeostasis), as well as pause ATP production, and trigger oxidative stress. The facts and figures have been compiled from more than a hundred PubMed, Web of Science, and Scopus indexed articles that describe the essential functions of mitochondria for the management of human diseases. Nanoengineered metals and their oxide nanoparticles are targeted at the mitochondrial architecture that partakes in the management of a myriad of health issues, including different cancers. These nanosystems not only act as antioxidants but are also fabricated for the delivery of chemotherapeutic agents. However, the biocompatibility, safety, and efficacy of using metal nanoparticles is contested among researchers, which will be discussed further in this review.
金属纳米粒子作为一种新型治疗工具的应用,具有显著的潜力,可促进基于线粒体的疾病的治疗和诊断。最近,亚细胞线粒体已被尝试用于治疗依赖于其功能障碍的病理学。由金属及其氧化物(包括金、铁、银、铂、氧化锌和二氧化钛)制成的纳米粒子具有独特的作用方式,可以有效地纠正线粒体紊乱。 本综述介绍了最近关于接触多种金属纳米粒子的研究报告,这些纳米粒子可以改变线粒体的动态超微结构(通过改变代谢稳态),并停止 ATP 产生,引发氧化应激。这些事实和数据来自一百多篇 PubMed、Web of Science 和 Scopus 索引的文章,这些文章描述了线粒体对于管理人类疾病的基本功能。 纳米工程金属及其氧化物纳米粒子针对参与管理包括各种癌症在内的众多健康问题的线粒体结构。这些纳米系统不仅具有抗氧化作用,而且还被用于输送化疗药物。然而,金属纳米粒子的生物相容性、安全性和疗效在研究人员中存在争议,本综述将进一步讨论这一问题。