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首页> 外文期刊>Drug delivery and translational research >A novel scalable fabrication process for the production of dissolving microneedle arrays
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A novel scalable fabrication process for the production of dissolving microneedle arrays

机译:一种用于生产溶解微针阵列的新型可伸缩制造工艺

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摘要

Microneedle arrays have emerged as an alternative method for transdermal drug delivery. Although micromolding using a centrifugation method is widely used to prepare microneedles in laboratory, few researchers were focused on manufacturing processes capable of facile scale-up. A novel female mold was initially designed in this study, namely double-penetration female mold (DPFM) with the pinpoints covered by waterproof breather membrane which was beneficial to reduce the influence of gas resistance and solution viscosity. In addition, DPFM-based positive-pressure microperfusion technique (PPPT) was proposed for the scale-up fabrication of dissolving microneedle arrays (DMNA). In this method, polymer solution and base solution were poured into the DPFM by pressure difference, followed by drying and demolding. The results of optimal microscopy and SEM revealed that the obtained microneedles were uniformly distributed conical-shaped needles. The skin penetration test showed that DMNA prepared using PPPT were able to penetrate the rat skin with a high penetration rate. To realize the transition of microneedles fabrication from laboratory to industry, an automatic equipment was further designed in this study. Different from micromolding method using centrifugation, the equipment based on PPPT and DPFM has superiorities in the scale-up fabrication of microneedles in a highly effective, controllable, and scalable way.
机译:微针阵列已成为透皮药物递送的替代方法。虽然使用离心方法的微胶体被广泛用于在实验室中制备微针,但很少有研究人员专注于能够进行扩展的制造工艺。在本研究中最初设计了一种新型的女性模具,即双穿透母模(DPFM),具有防水通气膜覆盖的精确点,这有利于降低耐气体抗性和溶液粘度的影响。此外,提出了基于DPFM的正压微熔技术(PPPT),用于溶解微针阵列(DMNA)的放大制造。在该方法中,通过压力差倒入DPFM中的聚合物溶液和碱溶液,然后干燥和脱髓。最佳显微镜和SEM的结果表明,所获得的微针是均匀分布的圆锥形针。皮肤渗透试验显示使用PPPT制备的DMNA能够以高渗透率渗透大鼠皮肤。为了实现微针制造从实验室到工业的转变,在本研究中进一步设计了一种自动设备。与使用离心的微旋转方法不同,基于PPPT和DPFM的设备具有高效,可控和可扩展的方式的微针的制造中的优势。

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