Gill Harvinder S, Prausnitz Mark R
Wallace H. Coulter Department of Biomedical Engineering at Georgia Tech and Emory University.
J Phys Chem Solids. 2008 May;69(5-6):1537-1541. doi: 10.1016/j.jpcs.2007.10.059.
Drug delivery to the skin is limited by the strong barrier properties of skin's outer layer of stratum corneum. Micron-scale needles have been developed to deliver drugs across this barrier layer and into the skin in a minimally invasive manner. One method of delivery involves coating these microneedles with a drug that rapidly dissolves off within the skin. As a variation on this approach, this study examines microneedles with holes cut through their shafts to form "pockets" that can be filled with drug formulations using a dip-coating method. Our results (i) demonstrated the filling of microneedle pockets having a variety of different sizes and shapes, (ii) quantified the amount of drug that can be filled into pockets and coated onto microneedle surfaces, (iii) developed composite microneedle structures that sequester one model drug within the microneedle pocket and coat another model drug on the microneedle surface and (iv) showed that pocketed microneedles can deliver a model drug to a targeted depth within the skin. We conclude that pocketed microneedles offer unique capabilities for controlled drug delivery to the skin.
药物输送到皮肤受到皮肤角质层外层强大屏障特性的限制。微米级针头已被开发出来,以微创方式将药物穿过这一屏障层输送到皮肤中。一种输送方法是在这些微针上涂上一种能在皮肤内迅速溶解的药物。作为这种方法的一种变体,本研究考察了在其针杆上切割出孔以形成“口袋”的微针,这些“口袋”可以通过浸涂法填充药物制剂。我们的结果:(i)证明了具有各种不同尺寸和形状的微针口袋的填充情况;(ii)量化了可以填充到口袋中并涂覆在微针表面的药物量;(iii)开发了复合微针结构,将一种模型药物隔离在微针口袋内,并将另一种模型药物涂覆在微针表面;(iv)表明有口袋的微针可以将一种模型药物输送到皮肤内的目标深度。我们得出结论,有口袋的微针为向皮肤进行可控药物输送提供了独特的能力。