Departments of Biomedical Engineering and Pharmaceutics, Purdue University, West Lafayette, IN 47907, USA.
J Control Release. 2010 Feb 15;141(3):314-9. doi: 10.1016/j.jconrel.2009.09.032. Epub 2009 Oct 12.
Nano/microparticles have been used widely in drug delivery applications. The majority of the particles are prepared by the conventional emulsion methods, which tend to result in particles with heterogeneous size distribution with sub-optimal drug loading and release properties. Recently, microfabrication methods have been used to make nano/microparticles with a monodisperse size distribution. The existing methods utilize solid templates for making particles, and the collection of individual particles after preparation has not been easy. The new hydrogel template approach was developed to make the particle preparation process simple and fast. The hydrogel template approach is based on the unique properties of physical gels that can undergo sol-gel phase transition upon changes in environmental conditions. The phase reversible hydrogels, however, are in general mechanically too weak to be treated as a solid material. It was unexpectedly found that gelatin hydrogels could be made to possess various properties necessary for microfabrication of nano/microparticles in large quantities. The size of the particles can be adjusted from 200 nm to >50 microm, providing flexibility in controlling the size in drug delivery formulations. The simplicity in processing makes the hydrogel template method useful for scale-up manufacturing of particles. The drug loading capacity is 50% or higher, and yet the initial burst release is minimal. The hydrogel template approach presents a new strategy of preparing nano/microparticles of predefined size and shape with homogeneous size distribution for drug delivery applications.
纳米/微米颗粒已广泛应用于药物输送领域。大多数颗粒是通过传统的乳液方法制备的,这种方法往往会导致颗粒的尺寸分布不均匀,药物负载和释放性能不理想。最近,微制造方法已被用于制备具有单分散尺寸分布的纳米/微米颗粒。现有的方法利用固体模板来制造颗粒,但是在制备后收集单个颗粒并不容易。新的水凝胶模板方法被开发出来,以使颗粒制备过程简单、快速。水凝胶模板方法基于物理凝胶的独特性质,这些凝胶可以在环境条件变化时经历溶胶-凝胶相转变。然而,相可逆水凝胶通常在机械上太弱,不能作为固体材料处理。出人意料的是,发现明胶水凝胶可以具有大量微制造纳米/微米颗粒所需的各种性质。颗粒的尺寸可以从 200nm 调节到>50μm,在药物输送制剂中提供了控制尺寸的灵活性。加工的简单性使得水凝胶模板方法可用于颗粒的规模化制造。药物负载能力为 50%或更高,而初始突释则最小。水凝胶模板方法为药物输送应用提供了一种新的策略,用于制备具有预定尺寸和形状、尺寸分布均匀的纳米/微米颗粒。