Madhusoodanan Geethu, Roy Amrita Arup, Kalkundri Tejaswini, Preman Namitha K, Rana Komal, Datta Deepanjan, Dhas Namdev, Mutalik Srinivas
Department of Pharmaceutics, Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education Manipal 576104 Karnataka India
Department of Pharmacognosy, Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education Manipal 576104 Karnataka India.
RSC Adv. 2025 Sep 12;15(40):33312-33335. doi: 10.1039/d5ra05275k. eCollection 2025 Sep 11.
In recent years, 3D-printed Polymeric Microneedles (PMNs) have been at the forefront of innovations in several biomedical applications, especially in Transdermal drug delivery (TDD) systems. Biocompatible polymers are preferred for their tunable properties that mimic the natural cellular environment, enhancing their clinical suitability. However, their limitations in mechanical strength and stability often require hybridization with synthetic polymers for optimal PMN fabrication. 3D-printed PMNs enable minimally invasive, patient-centric drug delivery, and this review examines diverse microneedle (MN) designs to enhance TDD efficacy, supporting cost-effective clinical translation. This review highlights key aspects like physicochemical properties and their crucial role in additive manufacturing drug delivery systems, which have been underreported. The different sections delve into the challenges of polymeric resin mixes adapted for vat polymerisation and how they can be considered biocompatible, providing detailed insights into the integration potential within future public healthcare frameworks. Furthermore, the review illuminates the clinical outlook, future potential, and strategic directions of PMNs as a pivotal system for TDD, incorporating progress made over the past decade. This review will explore the prospects, benefits, and drawbacks of drug delivery 3D-printed PMN array, addressing key research gaps essential for advancing the industrialization of this cost-effective drug delivery system.
近年来,3D打印聚合物微针(PMNs)在多种生物医学应用的创新领域处于前沿位置,尤其是在透皮给药(TDD)系统中。生物相容性聚合物因其可调节的特性而备受青睐,这些特性能够模拟自然细胞环境,从而提高其临床适用性。然而,它们在机械强度和稳定性方面的局限性通常需要与合成聚合物进行杂交,以实现最佳的PMN制造。3D打印的PMN能够实现微创、以患者为中心的药物递送,本综述探讨了多种微针(MN)设计,以提高TDD疗效,支持具有成本效益的临床转化。本综述强调了一些关键方面,如物理化学性质及其在增材制造药物递送系统中的关键作用,而这些方面此前报道较少。不同章节深入探讨了适用于光固化聚合的聚合物树脂混合物所面临的挑战,以及如何将它们视为生物相容性材料,详细介绍了其在未来公共医疗框架内的整合潜力。此外,本综述阐述了PMN作为TDD关键系统的临床前景、未来潜力和战略方向,并纳入了过去十年所取得的进展。本综述将探讨3D打印PMN阵列药物递送的前景、益处和缺点,解决推进这种具有成本效益的药物递送系统产业化所需的关键研究空白。