Center for Pharmaceutical Biotechnology and Nanomedicine, Northeastern University, 360 Huntington Ave, 02115 Boston, MA, USA.
Front Biosci (Landmark Ed). 2011 Jan 1;16(4):1388-412. doi: 10.2741/3795.
Within the broad spectrum of nanoparticulate carriers, polymeric and lipid-core micelles, liposomes, solid nanoparticles and many others have demonstrated great biological properties which make them excellent pharmaceutical delivery systems. In particular, micelles and liposomes have been shown to have good longevity in the blood that allows their accumulation in pathological areas with a compromised vasculature; can possess specific targeting to disease sites when various targeting ligands are attached to the surface of the nanocarriers or to surface-attached cell-penetrating molecules (like TAT peptide) to enhance intracellular penetration; possess stimulus-sensitivity allowing for drug release from the carriers under certain pathological conditions; and show contrast properties with carrier loading of various contrast materials that allow for direct carrier visualization in vivo. The engineering of "multifunctional pharmaceutical nanocarriers" based on the combination of several useful properties in the same system can significantly enhance the efficacy of many therapeutic and diagnostic protocols. This review considers the current status and next future directions in the emerging area of nanomedicine with particular attention to two lipid-based nanoparticulate systems: liposomes and micelles.
在纳米载体的广泛谱中,聚合物和脂质核胶束、脂质体、固体纳米颗粒和许多其他物质已经表现出了优异的生物特性,使它们成为优秀的药物传递系统。特别是,胶束和脂质体在血液中具有良好的稳定性,这使得它们能够在血管受损的病变部位积累;当各种靶向配体附着在纳米载体表面或附着在表面的穿透细胞分子(如 TAT 肽)上时,可以具有针对疾病部位的特异性靶向,以增强细胞内穿透;具有刺激敏感性,允许在某些病理条件下从载体释放药物;并显示出与载体加载各种对比材料的对比特性,允许在体内直接可视化载体。基于在同一系统中结合几种有用特性的“多功能药物纳米载体”的工程设计,可以显著提高许多治疗和诊断方案的疗效。本综述考虑了纳米医学这一新兴领域的现状和未来发展方向,特别关注两种基于脂质的纳米颗粒系统:脂质体和胶束。