On-demand drug delivery bioelectronics through a water-processable low dimensional highly conductive MXene layer

On-demand drug delivery holds great promise to optimize pharmaceutical efficacy while minimizing the side effects. However, existing on-demand drug delivery systems often require complicated manufacturing processes that preclude their wide implementation of a broad range of drugs. In this work, we d...

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Veröffentlicht in:Lab on a chip 2024-06, Vol.24 (13), p.3294-334
Hauptverfasser: Kwon, Hyeok-jin, Wu, Yizhang, Li, Yuan, Yuan, Gongkai, Lopez, Rene, Huang, Ke, Bai, Wubin
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Sprache:eng
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Zusammenfassung:On-demand drug delivery holds great promise to optimize pharmaceutical efficacy while minimizing the side effects. However, existing on-demand drug delivery systems often require complicated manufacturing processes that preclude their wide implementation of a broad range of drugs. In this work, we demonstrate the introduction of MXene-coated microneedles (MNs) into bioelectronics for digitally controllable gate-valve drug delivery. MXenes, featuring high electronic conductivity, excellent biocompatibility, and solution processibility, enable low-cost scalability for printable bioelectronics. In an electrolytic state ( e.g. , body fluid), the coated MXene is oxidized and desorbed due to redox reactions caused by electrical bias, allowing the underlying drug to be controllably released. The MXene-incorporated drug delivery system not only demonstrates excellent biocompatibility and operational stability, but also features low-cost construction and sustainable usage. Besides, these MXene-coated MNs allow both on-demand transformation and local-region customization, further increasing the structural versatility and capability of multidrug delivery systems. Water-processable MXene layer applied to microneedle toward on-demand drug delivery bioelectronics.
ISSN:1473-0197
1473-0189
1473-0189
DOI:10.1039/d4lc00234b