School of Pharmacy, Queen's University Belfast, 97 Lisburn Road, Belfast BT9 7BL, UK.
School of Pharmacy, Queen's University Belfast, 97 Lisburn Road, Belfast BT9 7BL, UK; Department of Pharmaceutical Science and Technology, Faculty of Pharmacy, Universitas Hasanuddin, Makassar 90245, Indonesia.
Adv Drug Deliv Rev. 2023 Oct;201:115055. doi: 10.1016/j.addr.2023.115055. Epub 2023 Aug 17.
The minimally-invasive and painless nature of microneedle (MN) application has enabled the technology to obviate many issues with injectable drug delivery. MNs not only administer therapeutics directly into the dermal and ocular space, but they can also control the release profile of the active compound over a desired period. To enable prolonged delivery of payloads, various MN types have been proposed and evaluated, including dissolving MNs, polymeric MNs loaded or coated with nanoparticles, fast-separable MNs hollow MNs, and hydrogel MNs. These intricate yet intelligent delivery platforms provide an attractive approach to decrease side effects and administration frequency, thus offer the potential to increase patient compliance. In this review, MN formulations that are loaded with various therapeutics for long-acting delivery to address the clinical needs of a myriad of diseases are discussed. We also highlight the design aspects, such as polymer selection and MN geometry, in addition to computational and mathematical modeling of MNs that are necessary to help streamline and develop MNs with high translational value and clinical impact. Finally, up-scale manufacturing and regulatory hurdles along with potential avenues that require further research to bring MN technology to the market are carefully considered. It is hoped that this review will provide insight to formulators and clinicians that the judicious selection of materials in tandem with refined design may offer an elegant approach to achieve sustained delivery of payloads through the simple and painless application of a MN patch.
微针(MN)应用具有微创和无痛的特点,使得这项技术能够解决许多注射药物输送的问题。MN 不仅可以将治疗药物直接输送到皮肤和眼部空间,还可以控制活性化合物在所需时间内的释放曲线。为了实现载药的长效输送,已经提出并评估了各种 MN 类型,包括可溶解 MN、负载或涂覆有纳米颗粒的聚合物 MN、快速分离 MN、中空 MN 和水凝胶 MN。这些复杂而智能的给药平台提供了一种有吸引力的方法来降低副作用和给药频率,从而提高患者的依从性。在这篇综述中,讨论了装载有各种治疗药物的 MN 制剂,用于长效输送,以满足各种疾病的临床需求。我们还强调了设计方面,如聚合物选择和 MN 几何形状,以及 MN 的计算和数学建模,这些都是帮助简化和开发具有高转化价值和临床影响的 MN 所必需的。最后,仔细考虑了大规模制造和监管方面的障碍,以及需要进一步研究的潜在途径,以使 MN 技术推向市场。希望这篇综述能为制剂家和临床医生提供一些见解,即明智地选择材料并辅以精细的设计,可能是通过简单无痛地应用 MN 贴片来实现载药持续释放的一种优雅方法。