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3D打印技术制备透皮贴剂

Manufacturing of a Transdermal Patch in 3D Printing.

作者信息

Villota Isabella, Calvo Paulo César, Campo Oscar Iván, Villarreal-Gómez Luis Jesús, Fonthal Faruk

机构信息

Biomedical Engineering Research Group-GBIO, Universidad Autónoma de Occidente, Cali 760030, Colombia.

Facultad de Ciencias de la Ingeniería y Tecnología, Universidad Autónoma de baja California, Tijuana 21500, Baja California, Mexico.

出版信息

Micromachines (Basel). 2022 Dec 10;13(12):2190. doi: 10.3390/mi13122190.

Abstract

Diabetes mellitus is an endocrine disorder that affects glucose metabolism, making the body unable to effectively use the insulin it produces. Transdermal drug delivery (TDD) has attracted strong interest from researchers, as it allows minimally invasive and painless insulin administration, showing advantages over conventional delivery methods. Systems composed of microneedles (MNs) assembled in a transdermal patch provide a unique route of administration, which is innovative with promising results. This paper presents the design of a transdermal patch composed of 25 microneedles manufactured with 3D printing by stereolithography with a class 1 biocompatible resin and a printing angle of 0°. Finite element analysis with ANSYS software is used to obtain the mechanical behavior of the microneedle (MN). The values obtained through the analysis were: a Von Misses stress of 18.057 MPa, a maximum deformation of 2.179×10-3, and a safety factor of 4. Following this, through a flow simulation, we find that a pressure of 1.084 Pa and a fluid velocity of 4.800 ms were necessary to ensure a volumetric flow magnitude of 4.447×10-5cm3s. Furthermore, the parameters found in this work are of great importance for the future implementation of a transdermal drug delivery device.

摘要

糖尿病是一种影响葡萄糖代谢的内分泌紊乱疾病,会使身体无法有效利用自身分泌的胰岛素。经皮给药(TDD)引起了研究人员的浓厚兴趣,因为它能实现微创且无痛的胰岛素给药,相较于传统给药方式具有优势。由组装在透皮贴片中的微针(MN)组成的系统提供了一种独特的给药途径,具有创新性且前景可观。本文介绍了一种透皮贴片的设计,该贴片由25根微针组成,采用立体光刻3D打印技术,使用1类生物相容性树脂,打印角度为0°制造而成。使用ANSYS软件进行有限元分析,以获得微针(MN)的力学行为。通过分析得到的值为:冯·米塞斯应力为18.057MPa,最大变形为2.179×10 - 3,安全系数为4。在此之后,通过流动模拟,我们发现需要1.084Pa的压力和4.800m/s的流体速度,以确保体积流量大小为4.447×10 - 5cm³/s。此外,本研究中发现的参数对于未来经皮给药装置的实施具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d046/9783581/afa2abbeb4f7/micromachines-13-02190-g001.jpg

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