用于传感和给药的微针的快速成型制造。

Expert opinion on drug delivery Pub Date : 2024-07-01 Epub Date: 2024-07-26 DOI:10.1080/17425247.2024.2384696
Tuba Bedir, Sachin Kadian, Shubhangi Shukla, Oguzhan Gunduz, Roger Narayan
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引用次数: 0

摘要

导言:微针(MNs)是一种微型化、无痛、微创的平台,近几十年来在药物输送、疾病监测、疾病诊断和美容等多个领域引起了广泛关注。目前已采用多种制造方法来制造 MN,但这些方法都存在制造过程复杂、成本高、耗时长等缺点。在这种情况下,采用增材制造(AM)技术制造 MN,可以快速制造出精密复杂的 MN 原型,并可根据所需的形状和尺寸灵活定制 MN。此外,通过将 MN 与各种技术相结合,AM 在制造复杂的透皮给药系统和医疗设备方面大有可为:本综述广泛概述了具有制造 MNs 巨大潜力的各种 AM 技术。此外,还讨论了不同类型的 MN 及其制造材料。重点介绍了三维打印 MNs 在透皮给药和生物传感领域的最新应用:本综述还提到了关键障碍,包括药物负载、生物相容性和监管要求,这些都是大规模采用 AM 方法生产 MN 所必须解决的问题,以及未来的发展趋势。
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Additive manufacturing of microneedles for sensing and drug delivery.

Introduction: Microneedles (MNs) are miniaturized, painless, and minimally invasive platforms that have attracted significant attention over recent decades across multiple fields, such as drug delivery, disease monitoring, disease diagnosis, and cosmetics. Several manufacturing methods have been employed to create MNs; however, these approaches come with drawbacks related to complicated, costly, and time-consuming fabrication processes. In this context, employing additive manufacturing (AM) technology for MN fabrication allows for the quick production of intricate MN prototypes with exceptional precision, providing the flexibility to customize MNs according to the desired shape and dimensions. Furthermore, AM demonstrates significant promise in the fabrication of sophisticated transdermal drug delivery systems and medical devices through the integration of MNs with various technologies.

Areas covered: This review offers an extensive overview of various AM technologies with great potential for the fabrication of MNs. Different types of MNs and the materials utilized in their fabrication are also discussed. Recent applications of 3D-printed MNs in the fields of transdermal drug delivery and biosensing are highlighted.

Expert opinion: This review also mentions the critical obstacles, including drug loading, biocompatibility, and regulatory requirements, which must be resolved to enable the mass-scale adoption of AM methods for MN production, and future trends.

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