Yang Peijing, Song Qinghua, Zhang Lujie, Liu Zhanqiang, Ma Haifeng
School of Mechanical Engineering, Shandong University, Jinan 250061, PR China; State Key Laboratory of Advanced Equipment and Technology for Metal Forming, Shandong University, Jinan 250061, PR China; Key Laboratory of High Efficiency and Clean Mechanical Manufacture, Ministry of Education, Jinan 250061, PR China.
School of Mechanical Engineering, Shandong University, Jinan 250061, PR China; State Key Laboratory of Advanced Equipment and Technology for Metal Forming, Shandong University, Jinan 250061, PR China; Key Laboratory of High Efficiency and Clean Mechanical Manufacture, Ministry of Education, Jinan 250061, PR China; Key National Demonstration Center for Experimental Mechanical Engineering Education, Jinan 250061, PR China.
Eur J Pharm Biopharm. 2025 Jan;206:114583. doi: 10.1016/j.ejpb.2024.114583. Epub 2024 Nov 26.
Hydrogel microneedles have attracted significant attention in drug delivery due to their non-invasiveness and efficient administration. However, a thorough understanding of the drug transport mechanism is essential to achieve controlled drug delivery and geometry optimization of microneedles. In this study, a new swelling-obstruction-mechanics model is presented to describe the swelling and drug release behavior of hydrogel microneedles. The model integrates the swelling kinetics, the obstruction scaling of drug molecules, and the mechanical properties of hydrogel and skin and reveals the effects of swelling of the microneedle matrix and drug molecules on drug release. Subsequently, numerical simulations were conducted using the model, which enabled the optimization of hydrogel microneedle design parameters by adjusting the input variables. The results show that the geometric parameters of microneedles, especially the cross-sectional shape, have a significant effect on the drug release performance. Nevertheless, the parameters affect each other and need to be considered in the selection of a variety of factors. Additionally, penetration depth significantly affects drug release efficiency, highlighting the need for auxiliary application devices. In summary, the model advances both theoretical understanding and practical design of hydrogel microneedles, identifying key factors in drug release and optimizing their efficiency and reliability for clinical applications.
水凝胶微针因其无创性和给药效率高而在药物递送领域引起了广泛关注。然而,要实现药物的可控递送和微针几何形状的优化,深入了解药物传输机制至关重要。在本研究中,提出了一种新的溶胀-阻碍-力学模型,以描述水凝胶微针的溶胀和药物释放行为。该模型整合了溶胀动力学、药物分子的阻碍尺度以及水凝胶和皮肤的力学性能,揭示了微针基质和药物分子的溶胀对药物释放的影响。随后,使用该模型进行了数值模拟,通过调整输入变量实现了水凝胶微针设计参数的优化。结果表明,微针的几何参数,尤其是横截面形状,对药物释放性能有显著影响。然而,这些参数相互影响,在选择多种因素时需要综合考虑。此外,穿透深度显著影响药物释放效率,这突出了辅助应用装置的必要性。总之,该模型推动了水凝胶微针的理论理解和实际设计,确定了药物释放的关键因素,并优化了其在临床应用中的效率和可靠性。