Kubinová Sárka, Syková Eva
Institute of Experimental Medicine, Academy of Sciences of the Czech Republic, Prague, Czech Republic.
Minim Invasive Ther Allied Technol. 2010 Jun;19(3):144-56. doi: 10.3109/13645706.2010.481398.
Nanotechnology offers promising perspectives in biomedical research as well as in clinical practice. To cover some of the latest nanotechnology trends in regenerative medicine, this review will focus on the use of nanomaterials for tissue engineering and cell therapy. Nanofibrous materials that mimic the native extracellular matrix and promote the adhesion of various cells are being developed as tissue-engineered scaffolds for the skin, bone, vasculature, heart, cornea, nervous system, and other tissues. A range of novel materials has been developed to enhance the bioactive or therapeutic properties of these nanofibrous scaffolds via surface modifications, including the immobilization of functional cell-adhesive ligands and bioactive molecules such as drugs, enzymes and cytokines. As a new approach, nanofibers prepared by using industrial scale needleless technology have been recently introduced, and their use as scaffolds to treat spinal cord injury or as cell carriers for the regeneration of the injured cornea is the subject of much current study. Cell therapy is a modern approach of regenerative medicine for the treatment of various diseases or injuries. To follow the migration and fate of transplanted cells, superparamagnetic iron oxide nanoparticles have been developed for cell labeling and non-invasive MRI monitoring of cells in the living organism, with successful applications in, e.g, the central nervous system, heart, liver and kidney and also in pancreatic islet and stem cell transplantation.
纳米技术在生物医学研究以及临床实践中都展现出了广阔的前景。为了涵盖再生医学中一些最新的纳米技术趋势,本综述将聚焦于纳米材料在组织工程和细胞治疗中的应用。模仿天然细胞外基质并促进各种细胞黏附的纳米纤维材料正在被开发用作皮肤、骨骼、血管、心脏、角膜、神经系统及其他组织的组织工程支架。已经开发出一系列新型材料,通过表面修饰来增强这些纳米纤维支架的生物活性或治疗特性,包括固定功能性细胞黏附配体以及生物活性分子,如药物、酶和细胞因子。作为一种新方法,利用工业规模无针技术制备的纳米纤维最近已被引入,其作为治疗脊髓损伤的支架或作为受损角膜再生的细胞载体是当前众多研究的主题。细胞治疗是再生医学中用于治疗各种疾病或损伤的一种现代方法。为了追踪移植细胞的迁移和命运,已开发出超顺磁性氧化铁纳米颗粒用于细胞标记以及对活生物体内细胞进行无创磁共振成像监测,并且已成功应用于例如中枢神经系统、心脏、肝脏和肾脏,以及胰岛和干细胞移植。