State Key Laboratory of Bioactive Molecules and Druggability Assessment/International Cooperative Laboratory of Traditional Chinese Medicine Modernization and Innovative Drug Development of Ministry of Education (MOE) of China/College of Pharmacy, Jinan University, Guangzhou 511436, China.
School of Mechatronic Engineering, Guangdong Polytechnic Normal University, Guangzhou 510665, China.
Int J Pharm. 2024 Sep 30;663:124547. doi: 10.1016/j.ijpharm.2024.124547. Epub 2024 Aug 2.
Microneedles (MNs) have gained increasing attention in the biomedical field, owing to their notable advantages over injectable and transdermal preparations. The mechanical properties of MNs are the key to determine whether MNs can puncture the skin for efficient drug delivery and therapeutic purposes. However, there is still lacking of a systemic summary on how to improve the mechanical properties of MNs. Herein, this review mainly analyzes the key factors affecting the mechanical properties of MNs from the theoretical point of view and puts forward improvement approaches. First, we analyzed the major stresses exerted on the MNs during skin puncture and described general methods to evaluate the mechanical properties of MNs. We then provided detail examples to elucidate how the physicochemical properties of single polymer, formulation compositions, and geometric parameters affected the mechanical properties of MNs. Overall, the mechanical strength of MNs can be enhanced by tuning the crosslinking density, crystallinity degree, and molecular weight of single polymer, introducing polysaccharides and nano-microparticles as reinforcers to form complex with polymer, and optimizing the geometric parameters of MNs. Therefore, this review will provide critical guidance on how to fabricate MNs with robust mechanical strength for successful transdermal drug delivery.
微针(MNs)在生物医学领域受到越来越多的关注,这主要是因为它们相较于可注射和经皮制剂具有显著的优势。MNs 的力学性能是决定 MNs 是否能够刺穿皮肤以实现高效药物输送和治疗目的的关键。然而,目前仍然缺乏系统地总结如何改善 MNs 力学性能的研究。本文主要从理论角度分析了影响 MNs 力学性能的关键因素,并提出了相应的改善方法。首先,我们分析了 MNs 在皮肤穿刺过程中所受的主要应力,并描述了评估 MNs 力学性能的一般方法。然后,我们提供了详细的示例来说明单聚合物的理化性质、配方组成和几何参数如何影响 MNs 的力学性能。总体而言,可以通过调整单聚合物的交联密度、结晶度和分子量,引入多糖和纳米颗粒作为增强剂与聚合物形成复合物,以及优化 MNs 的几何参数来增强 MNs 的机械强度。因此,本文的综述将为制造具有稳健机械强度的 MNs 以实现成功的经皮药物输送提供重要的指导。