纳米技术
材料科学
生物相容性材料
工程类
计算机科学
过程(计算)
工作(物理)
灵活性(工程)
限制
相(物质)
作者
Chuan Yang,Xinxin Yan,Yue Hou,Xiaolong Sun,Sahithi Lingala,Yang Yang,Ziyu Wang,Rui Xiong
出处
期刊:Research
[American Association for the Advancement of Science]
日期:2026-01-01
卷期号:9: 1338-1338
被引量:1
标识
DOI:10.34133/research.1338
摘要
Advancements in biomedical interfaces increasingly demand technologies that can seamlessly bridge the gap between biological tissues and therapeutic systems. Microneedle (MN) technology has emerged as a minimally invasive platform for transdermal drug delivery (TDD) and biosensing, offering tunable geometries, efficient skin penetration, and reduced patient discomfort. However, the inherent limitations of conventional microfabrication techniques in terms of structural complexity, multi-material compatibility, and functional modularization have markedly constrained the development of next-generation biomedical systems. In recent years, 3-dimensional (3D) printing has positioned itself as a highly promising additive manufacturing (AM) technology, offering exceptional design freedom and high-resolution fabrication capabilities for the development of MN platforms with embedded microchannels and integrated multifunctionality. Herein, a comprehensive analysis of recent progress in 3D-printed MNs is provided, with emphasis placed on advances in architectural innovations, intelligent system integration, and their expanding applications in personalized drug delivery and intelligent theranostic platforms. Furthermore, an in-depth examination of the core challenges hindering the clinical translation of 3D-printed MNs, particularly regarding manufacturing processes, material selection, and standardization requirements, is presented, offering a forward-looking perspective on the paradigm shift of MNs from passive delivery terminals to active, closed-loop health platforms.
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