El-Sadik Abir O, El-Ansary Afaf, Sabry Sherif M
Stem Cell Unit, Anatomy Department, College of Medicine, Health Science Colleges, Cairo, Egypt.
Clin Pharmacol. 2010;2:9-16. doi: 10.2147/CPAA.S8931. Epub 2010 Mar 16.
Nanotechnology has been described as a general purpose technology. It has already generated a range of inventions and innovations. Development of nanotechnology will provide clinical medicine with a range of new diagnostic and therapeutic opportunities such as medical imaging, medical diagnosis, drug delivery, and cancer detection and management. Nanoparticles such as manganese, polystyrene, silica, titanium oxide, gold, silver, carbon, quantum dots, and iron oxide have received enormous attention in the creation of new types of analytical tools for biotechnology and life sciences. Labeling of stem cells with nanoparticles overcame the problems in homing and fixing stem cells to their desired site and guiding extension of stem cells to specific directions. Although the biologic effects of some nanoparticles have already been assessed, information on toxicity and possible mechanisms of various particle types remains inadequate. The aim of this review is to give an overview of the mechanisms of internalization and distribution of nanoparticles inside stem cells, as well as the influence of different types of nanoparticles on stem cell viability, proliferation, differentiation, and cytotoxicity, and to assess the role of nanoparticles in tracking the fate of stem cells used in tissue regeneration.
纳米技术被描述为一种通用技术。它已经产生了一系列的发明和创新。纳米技术的发展将为临床医学提供一系列新的诊断和治疗机会,如医学成像、医学诊断、药物递送以及癌症检测与管理。诸如锰、聚苯乙烯、二氧化硅、氧化钛、金、银、碳、量子点和氧化铁等纳米颗粒在为生物技术和生命科学创造新型分析工具方面受到了极大关注。用纳米颗粒标记干细胞克服了干细胞归巢、固定到所需位点以及引导干细胞向特定方向延伸的问题。尽管已经评估了一些纳米颗粒的生物学效应,但关于各种颗粒类型的毒性及可能机制的信息仍然不足。本综述的目的是概述纳米颗粒在干细胞内化和分布的机制,以及不同类型纳米颗粒对干细胞活力、增殖、分化和细胞毒性的影响,并评估纳米颗粒在追踪用于组织再生的干细胞命运中的作用。