Eltayib Eyman M
Department of Pharmaceutics, College of Pharmacy, Jouf University Sakaka 72388 Saudi Arabia
RSC Adv. 2025 Jun 4;15(23):18697-18714. doi: 10.1039/d5ra03274a. eCollection 2025 May 29.
Recent advancements in microneedle (MN) technology have increasingly focused on porous polymeric microneedles (PPMNs), which are, among various types of MN, emerging as a promising platform for diverse biomedical applications, including transdermal drug delivery, interstitial fluid (ISF) extraction, and biosensing. This growing interest stems from their distinctive internal architecture, characterized by continuous nano- or micro-scale pores that enable the efficient transport of drugs and biofluids, primarily through capillary action. The optimal selection of polymeric materials, combined with appropriate fabrication techniques, plays a critical role in enhancing the functional performance of PPMNs while ensuring sufficient mechanical strength. This concise review summarizes recent research progress in the fabrication methods of PPMNs, emphasizing the interplay between polymer(s) choice, manufacturing technique, intended biomedical application, and the resulting structural and functional properties of the microneedles. It also addresses key challenges in the fabrication field and discusses future development.
微针(MN)技术的最新进展越来越多地集中在多孔聚合物微针(PPMN)上,在各种类型的微针中,PPMN正成为一种有前途的平台,可用于多种生物医学应用,包括透皮给药、间质液(ISF)提取和生物传感。这种日益增长的兴趣源于其独特的内部结构,其特征是具有连续的纳米或微米级孔隙,主要通过毛细作用实现药物和生物流体的高效运输。聚合物材料的最佳选择与适当的制造技术相结合,在提高PPMN的功能性能同时确保足够的机械强度方面起着关键作用。这篇简明综述总结了PPMN制造方法的最新研究进展,强调了聚合物选择、制造技术、预期生物医学应用以及由此产生的微针结构和功能特性之间的相互作用。它还探讨了制造领域的关键挑战并讨论了未来发展。