纳米结构聚吡咯层在磁性可导航的3D打印微设备上的实现,用于靶向胃肠道药物输送

Q1 Materials Science Multifunctional Materials Pub Date : 2020-12-01 DOI:10.1088/2399-7532/abc735
R. Bernasconi, N. Favara, N. Fouladvari, M. Invernizzi, M. Levi, S. Pané, L. Magagnin
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引用次数: 6

摘要

在可远程导航的微载体上整合药物释放聚合物层是治疗多种疾病最有前景的策略之一。由于这种方法,给药可以精确地针对特定器官,从而限制副作用和药物浪费。在此背景下,本工作描述了用于靶向药物递送的3D打印和湿金属化微器件的制造。微转运蛋白是立体光刻印刷的,并涂上一系列材料,赋予它们特定的功能,如磁化率和化学惰性。本体和纳米结构(NA)形式的聚吡咯(PPy)被电沉积作为顶层,以引入药物递送特性。从形态和功能的角度对制造的微器件进行了表征。特别是,研究了远程磁控制和药物释放行为。所获得的结果显示出高的磁性可操作性和良好的载药能力,通过在微器件表面纳米结构PPy层进一步提高了载药能力。本工作中描述的磁操纵载体的一个可能应用是局部给药,用于治疗胃肠道的许多典型疾病(例如,慢性病)。
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Nanostructured polypyrrole layers implementation on magnetically navigable 3D printed microdevices for targeted gastrointestinal drug delivery
The integration of drug releasing polymeric layers on remotely navigable microcarriers is one of the most promising therapeutic strategies for a wide variety of diseases. Thanks to this approach, administration can be precisely targeted to a specific organ, limiting thus side effects and drug waste. In this context, the present work describes the fabrication of 3D printed and wet metallized microdevices intended for targeted drug delivery. Microtransporters are stereolithography printed and coated with a sequence of materials to impart them specific functionalities, like magnetizability and chemical inertness. Polypyrrole (PPy), in both bulk and nanostructured (NA) form, is electrodeposited as top layer to introduce drug delivery properties. Fabricated microdevices are characterized from the morphological and functional point of view. In particular, remote magnetic control and drug release behavior are investigated. Results obtained show a high magnetic maneuverability and good drug loading capability, which is further improved by nanostructuring the PPy layer applied on the surface of the microdevices. A possible application for the magnetically steered carriers described in the present work is localized drug administration for the therapy of many diseases typical of the gastrointestinal tract (e.g. Chron’s disease).
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来源期刊
Multifunctional Materials
Multifunctional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
12.80
自引率
0.00%
发文量
9
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