College of Pharmacy, Chung-Ang University, Seoul, South Korea.
Department of Biotechnology, Yonsei University, Seoul, South Korea.
Int J Nanomedicine. 2014;9:289-99. doi: 10.2147/IJN.S54529. Epub 2013 Dec 31.
Nanostructured lipid carriers (NLCs) were employed to formulate a lipophilic drug into hydrophilic polymeric microneedles (MNs). Hyaluronic acid (HA) was selected as a hydrophilic and bioerodible polymer to fabricate MNs, and nile red (NR) was used as a model lipophilic molecule. NR-loaded NLCs were consolidated into the HA-based MNs to prepare NLC-loaded MNs (NLC-MNs). A dispersion of NLCs was prepared by high-pressure homogenization after dissolving NR in Labrafil and mixing with melted Compritol, resulting in 268 nm NLCs with a polydispersity index of 0.273. The NLC dispersion showed a controlled release of NR over 24 hours, following Hixson-Crowell's cube root law. After mixing the NLC dispersion with the HA solution, the drawing lithography method was used to fabricate NLC-MNs. The length, base diameter, and tip diameter of the NLC-MNs were approximately 350, 380, and 30 μm, respectively. Fluorescence microscopic imaging of the NLC-MNs helped confirm that the NR-loaded NLCs were distributed evenly throughout the MNs. In a skin permeation study performed using a Franz diffusion cell with minipig dorsal skin, approximately 70% of NR was localized in the skin after 24-hour application of NLC-MNs. Confocal laser scanning microscopy (z-series) of the skin at different depths showed strong fluorescence intensity in the epidermal layer, which appeared to spread out radially with the passage of time. This study indicated that incorporation of drug-loaded NLCs into MNs could represent a promising strategy for controlled dermal delivery of lipophilic drugs.
纳米结构脂质载体 (NLCs) 被用于将亲脂性药物制成亲水性聚合物微针 (MNs)。透明质酸 (HA) 被选为亲水性和可生物侵蚀性聚合物来制备 MNs,尼罗红 (NR) 被用作模型亲脂性分子。NR 负载的 NLCs 被整合到基于 HA 的 MNs 中以制备 NLC 负载的 MNs (NLC-MNs)。NR 溶解在 Labrafil 中并与融化的 Compritol 混合后,通过高压匀质制备 NLC 分散体,得到 268nm 的 NLCs,其多分散指数为 0.273。NLC 分散体显示出 NR 的控释,超过 24 小时,符合 Hixson-Crowell 的立方根定律。将 NLC 分散体与 HA 溶液混合后,使用绘图光刻法制备 NLC-MNs。NLC-MNs 的长度、基底直径和尖端直径约为 350、380 和 30μm。NLC-MNs 的荧光显微镜成像有助于证实 NR 负载的 NLCs 均匀分布在 MNs 中。在使用带有小型猪背部皮肤的 Franz 扩散池进行的皮肤渗透研究中,NLC-MNs 应用 24 小时后,约 70%的 NR 定位在皮肤中。不同深度皮肤的共聚焦激光扫描显微镜 (z 系列) 显示表皮层具有很强的荧光强度,随着时间的推移,荧光强度似乎呈放射状扩散。这项研究表明,将载药 NLC 纳入 MNs 可能代表一种有前途的策略,用于控制亲脂性药物的经皮递送。