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A self-powered battery-driven drug delivery device that can function as a micromotor and galvanically actuate localized payload release
期刊文章

A self-powered battery-driven drug delivery device that can function as a micromotor and galvanically actuate localized payload release

Q. Cui, T.-H. Le, Y.-J. Lin, Y.-B. Miao, I.-T. Sung, W.-B. Tsai, H.-Y. Chan, Z.-H. Lin 和 H.-W. Sung
Nano Energy, 卷.66
2019
Web of Science ID: WOS:000503062400040

摘要

Galvanic cell Micromotor pH stimulus Redox-active material Self-powered battery Cell death Drug products Electrochemical cells Electrolytes Mammals Micromotors Redox reactions Secondary batteries Targeted drug delivery Tissue Drug delivery devices Drug delivery vehicles Electrolyte solutions Galvanic cells Physiological environment Poly-3 ,4-ethylenedioxythiophene Redox active materials Self-powered Controlled drug delivery
Most drug delivery vehicles lack thrust that propels them to disease sites for payload delivery. Herein, a microrod comprising a zinc (Zn) core and a positively-charged poly(3,4-ethylenedioxythiophene) (PEDOT+) shell incorporating an anionic model drug, which form a “galvanic cell” in an electrolyte solution, is proposed as a battery-driven drug delivery device. Upon immersion of the proposed Zn-based batteries in a physiological environment, two sets of redox reactions that compete with each other in a manner determined by the local pH occur spontaneously. At low pH, the reduction of H+ to H2 bubbles, which are essential to propel the Zn batteries as micromotors, prevails, while at higher pH, the reduction of PEDOT+ to actuate galvanically payload release dominates. Observations in mice suggest that the self-powered Zn batteries may rapidly react and move in the gastric fluid after oral administration, considerably improving their penetration and retention in the mucus layer for localized drug release, similar to those directly injected into the subcutaneous tissue. None of the investigated tissues exhibits any significant inflammation or cell apoptosis, revealing that the developed Zn-based batteries have potential to serve as safe drug delivery devices. © 2019 Elsevier Ltd

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https://www.scopus.com/inward/record.uri?eid=2-s2.0-85072610628&doi=10.1016%2fj.nanoen.2019.104120&partnerID=40&md5=49802b424941b173d87e8b8b1e0190e2檢視

相關連結

InCites亮點

本研究成果之相關指標(擷取自 InCites Benchmarking & Analytics)

合作類型
機構合作
引用書目主題
1 Clinical & Life Sciences
1.42 Bacteriology
1.42.1190 Bacterial Motility
Web Of Science研究領域
Chemistry, Physical
Materials Science, Multidisciplinary
Nanoscience & Nanotechnology
Physics, Applied
ESI研究領域
Materials Science

聯合國永續發展目標(SDGs)

此研究成果有助於達成以下目標:

#3 Good Health and Well-Being

來源:來自InCites的SDGs

詳細資料

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