Department of Biomedical Engineering, Biomedical Sciences Building JG-56, University of Florida, Gainesville, FL 32611, USA.
Chemistry. 2011 May 27;17(23):6296-302. doi: 10.1002/chem.201002835. Epub 2011 May 11.
Encapsulating drugs within hollow nanotubes offers several advantages, including protection from degradation, the possibility of targeting desired locations, and drug release only under specific conditions. Template synthesis utilizes porous membranes prepared from alumina, polycarbonate, or other materials that can be dissolved under specific conditions. The method allows for great control over the lengths and diameters of nanotubes; moreover, tubes can be constructed from a wide variety of tube materials including proteins, DNA, silica, carbon, and chitosan. A number of capping strategies have been developed to seal payloads within nanotubes. Combining these advances with the ability to target and internalize nanotubes into living cells will allow these assemblies to move into the next phase of development, in vivo experiments.
将药物封装在中空纳米管内具有多种优势,包括防止降解、靶向特定位置的可能性以及只有在特定条件下才释放药物。模板合成利用氧化铝、聚碳酸酯或其他可在特定条件下溶解的多孔膜来制备。该方法可以很好地控制纳米管的长度和直径;此外,还可以使用各种不同的管材料(包括蛋白质、DNA、二氧化硅、碳和壳聚糖)来构建管。已经开发出许多密封策略来将有效载荷封装在纳米管内。将这些进展与靶向和将纳米管内化到活细胞中的能力相结合,将使这些组装体进入体内实验的下一阶段。