Journal Article10.1002/adma.202411112
Engineering the Functional Expansion of Microneedles
Shengfei Yang,Yihua Xu,Mingjian Zhu,Yawei Yu,Weitong Hu,Tianyuan Zhang,Jianqing Gao +6 more
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TL;DR: This review integrates microneedle technology with interdisciplinary engineering approaches, including electronics, electromagnetic, photonic, and mechanical engineering, to expand their functional capabilities in biomonitoring, theranostics, and treatment applications.
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Abstract: Abstract Microneedles (MNs), composed of an array of micro‐sized needles and a supporting base, have transcended their initial use to replace hypodermic needles in drug delivery and fluid collection, advancing toward multifunctional platforms. In this review, four major areas are summarized in interdisciplinary engineering approaches combined with MNs technology. First, electronics engineering, the most extensively researched field, enables applications in biomonitoring, electrical stimulation, and closed‐loop theranostics through the generation, transmission, and transformation of electrical signals. Second, in electromagnetic engineering, the responsiveness of electromagnetic induction offers prospects for remote and programmable therapeutic applications. Third, photonic engineering endows MNs with novel functionalities, such as waveguiding and photonic manipulation to enhance optical therapeutic capabilities and facilitate the visualization of disease progression and treatment processes. Lastly, it reviewed the role of mechanical engineering in conferring shape adaptability and programmable motion features necessary for various MNs applications. This review focuses on the functionalities that emerge from the intersection of MNs with complementary engineering technologies, aiming to inspire further research and innovation in microneedle technology for biomedical applications.
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Citations
"Microneedle-Based Wearable Sensors: A New Frontier in Real-Time Biomarker Monitoring".
Swapnil N. Jain,Yogesh V Bhise +1 more
TL;DR: Microneedle-based wearable sensors enable real-time, minimally invasive biomarker monitoring in interstitial fluid, revolutionizing healthcare diagnostics and personalized medicine with applications in diabetes management, athletic performance, and metabolic status assessment.
Ionic Hydrogel Sensors toward Next‐Gen Personalized Healthcare
Yue Sun,Guo Tian,Weili Deng,Weiqing Yang +3 more
Abstract: Abstract The increasing emphasis on personal healthcare highlights the importance of advanced monitoring systems. Ionic hydrogels have emerged as promising candidates for next‐generation health monitoring devices due to their composition and mechanical similarity to biological tissues. This review comprehensively elucidates the current advancements in ionic hydrogels, including material sources, conductive mechanisms, fabrication strategies, and key characteristics. Subsequently, state‐of‐the‐art healthcare‐related sensing technologies based on ionic hydrogels are discussed, covering sensing mechanisms, optimization strategies, and representative applications in monitoring physiological forces, electrophysiological signals, biochemical markers, and other vital indicators. Finally, the current challenges hindering the transition of ionic hydrogels from concepts to practical applications are critically analyzed, along with prospective research avenues to guide the development of practical ionic hydrogel‐based healthcare solutions.
Transdermal delivery of near-infrared photothermal-responsive PDA@Ag through dissolvable carboxymethyl chitosan films coated on PEGDA microneedle arrays for potential antibacterial applications
Ya Gao,Jianlin Li,Nengqing Wang,Gao Haonan,Wang Yingbo,Ya Gao,Jianlin Li,Nengqing Wang,Gao Haonan,Wang Yingbo +9 more
Abstract: We developed a PEGDA microneedle patch with a CMC film containing PDA@Ag NPs. It enhances skin permeability for rapid drug release, enabling antimicrobial and analgesic treatment of skin infections.
References
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Zhengxin Yang,Li Zhang +1 more
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TL;DR: A review on the state-of-the-art magnetic actuation systems for miniature robots is presented in this paper, with the goal of providing readers with a better understanding of magnetic actuators and guidance for future system design.
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Engineering Microneedle Patches for Improved Penetration: Analysis, Skin Models and Factors Affecting Needle Insertion
Pooyan Makvandi,Melissa Kirkby,Aaron R.J. Hutton,Majid Shabani,Cynthia K.Y. Yiu,Zahra Baghbantaraghdari,Rezvan Jamaledin,Marco Carlotti,Barbara Mazzolai,Virgilio Mattoli,Ryan F. Donnelly +10 more
TL;DR: In this article, the authors present a review of the pain signal and its management during application of transdermal microneedle (MN) and typical hypodermic needles.
4D Printing of a Bioinspired Microneedle Array with Backward‐Facing Barbs for Enhanced Tissue Adhesion
Daehoon Han,Riddish S. Morde,Stefano Mariani,Antonino A. La Mattina,Emanuele Vignali,Chen Yang,Giuseppe Barillaro,Howon Lee +7 more
TL;DR: Improved tissue adhesion of the bioinspired MN allows for more stable and robust performance for drug delivery, biofluid collection, and biosensing.
254
Micromachined electrodes for biopotential measurements
TL;DR: In this article, the authors describe the microfabrication, packaging and testing of a micromachined dry biopotential electrode, which consists of an array of micro-dimensioned, very sharp spikes, designed for penetration of human skin.
253
Microneedle patch for the ultrasensitive quantification of protein biomarkers in interstitial fluid.
Zheyu Wang,Jingyi Luan,Anushree Seth,Lin Liu,Minli You,Prashant Gupta,Priya Rathi,Yixuan Wang,Sisi Cao,Qisheng Jiang,Xiao Zhang,Rohit Gupta,Qingjun Zhou,Jeremiah J. Morrissey,Erica L. Scheller,Jai S. Rudra,Srikanth Singamaneni +16 more
TL;DR: In this paper, a microneedle patch for fast in vivo sampling and on-needle quantification of target protein biomarkers in interstitial fluid was used. But the results were limited by the use of plasmonic fluorophores, an ultrabright fluorescent label, and a magnetic backing layer.