Lu Weifei, Hong Hao, Cai Weibo
Department of Radiology, University of Michigan - Ann Arbor, MI 48109-2200, USA; and College of Animal Sciences and Veterinary Medicine, Henan Agriculture University, Zhengzhou, Henan 450002, China.
Department of Radiology, University of Michigan - Ann Arbor, MI 48109-2200, USA, , ,
Eur J Nanomed. 2016 Jul;8(3):151-170. doi: 10.1515/ejnm-2016-0011. Epub 2016 Feb 6.
The incorporation of radioactive isotope(s) into conventional nanomaterials can bring extra properties which are not possessed by original materials. The resulting radioactive nanomaterials (radio-nanomaterials), with added physical/chemical properties, can be used as important tools for different biomedical applications. In this review, our goal is to provide an up-to-date overview on these applications using radio-nanomaterials. The first section illustrates the utilization of radionanomaterials for understanding of in vivo kinetics of their parent nano-materials. In the second section, we focus on two primary applications of radio-nanomaterials: imaging and therapeutic delivery. With various methods being used to form radio-nanomaterials, they can be used for positron emission tomography (PET), single-photon emission computed tomography (SPECT), and multimodal imaging. Therapeutic isotopes-loading radio-nanomaterials can possess selective killing efficacy of diseased cells (e.g. tumor cells) and can provide promises for certain isotopes which are not able to be used in a conventional manner. The successful and versatile biomedical applications of radio-nanomaterials warrants further investigations of those materials and their optimizations can pave the way to future imaging guidable, personalized treatments in patients.
将放射性同位素掺入传统纳米材料中可带来原始材料所不具备的额外特性。由此产生的放射性纳米材料(放射性纳米材料),具有额外的物理/化学性质,可作为不同生物医学应用的重要工具。在本综述中,我们的目标是提供关于使用放射性纳米材料的这些应用的最新概述。第一部分阐述了放射性纳米材料在理解其母体纳米材料体内动力学方面的应用。在第二部分中,我们重点关注放射性纳米材料的两个主要应用:成像和治疗递送。通过各种方法制备放射性纳米材料,它们可用于正电子发射断层扫描(PET)、单光子发射计算机断层扫描(SPECT)和多模态成像。负载治疗性同位素的放射性纳米材料可对病变细胞(如肿瘤细胞)具有选择性杀伤功效,并可为某些无法以传统方式使用的同位素带来希望。放射性纳米材料在生物医学方面成功且多样的应用值得对这些材料进行进一步研究,其优化可为未来患者的成像引导下的个性化治疗铺平道路。