拇指大小的3d打印钹微针阵列(CyMA)用于增强透皮给药。

IF 4.4 2区 医学 Q1 PHARMACOLOGY & PHARMACY
Ziyan Chen, Kai Ye, Huayi Wu, Lanyuan Peng, Zeyu Chen
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引用次数: 0

摘要

经皮给药是针注射和口服给药的一个令人信服的替代方案,因为它通过其无创和无痛给药方法增强了患者的依从性和便利性。微针的使用穿透角质层的屏障,促进药物在皮肤上的持续输送。然而,它们的功效受到分子扩散缓慢和通常需要外部触发的限制。本文介绍了一种轻量化和最小化的3d打印微针阵列,采用钹型超声换向器作为更深更快的透皮给药的外部引擎。建立了理论有限元模型,对结构参数进行了优化设计。优化后的组装原型采用高精度3D打印制造,重量仅为20 g。使用糖尿病小鼠模型的体内实验表明,CyMA局部胰岛素递送可达到与腹腔内给药相当的全身效果。这种紧凑和有效的微针给药技术在皮肤和口腔内的治疗应用中提供了相当大的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thumb-sized 3D-Printed cymbal microneedle array (CyMA) for enhanced transdermal drug delivery.

Transdermal drug delivery presents a compelling alternative to both needle injection and oral ingestion of medication, as it enhances patient adherence and convenience through its non-invasive and painless administration method. The use of microneedles penetrates the barrier of the stratum corneum, facilitating the sustained delivery of drugs across the skin. However, their efficacy has been limited by the slow diffusion of molecules and often requires external triggers. Herein, a lightweight and minimized 3D-printed microneedle array is introduced, employing a cymbal-type ultrasound transducer, as the external engine for deeper and faster transdermal drug delivery. A theoretical finite element model was developed and the optimization design was conducted for structural parameters. The optimized assembled prototype was fabricated using high-precision 3D printing and weighs only 20 g. In vivo experiments using a diabetic mouse model demonstrate that local insulin delivery with CyMA achieves systemic effects comparable to intraperitoneal administration. Such compact and effective microneedle delivery technology offers considerable promise therapeutic applications on the skin and intraoral use.

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来源期刊
CiteScore
8.80
自引率
4.10%
发文量
211
审稿时长
36 days
期刊介绍: The European Journal of Pharmaceutics and Biopharmaceutics provides a medium for the publication of novel, innovative and hypothesis-driven research from the areas of Pharmaceutics and Biopharmaceutics. Topics covered include for example: Design and development of drug delivery systems for pharmaceuticals and biopharmaceuticals (small molecules, proteins, nucleic acids) Aspects of manufacturing process design Biomedical aspects of drug product design Strategies and formulations for controlled drug transport across biological barriers Physicochemical aspects of drug product development Novel excipients for drug product design Drug delivery and controlled release systems for systemic and local applications Nanomaterials for therapeutic and diagnostic purposes Advanced therapy medicinal products Medical devices supporting a distinct pharmacological effect.
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