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Fabrication of microporous inorganic microneedles by centrifugal casting method for transdermal extraction and delivery

机译:用离心铸造方法制备微孔无机微针,用于透皮萃取和输送

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Microneedle patches have been widely used as transdermal transport systems because of their painless and easy application. Marked rigidity, strength, biocompatibility, and physiological stability are unique features of microneedles fabricated from ceramic materials to be used as microneedle patches. However, the conventional ceramic microneedles are typically dense structures with limited free space for biomolecule loading. A facile method is required for fabrication of biocompatible ceramic microneedles with interconnected porosity. Herein, the simple method of centrifugal casting was developed for fabrication of microporous microneedles from alumina suspensions. The slurry or resin-based alumina suspensions were casted into micromolds under centrifugal force, followed by sintering at high temperatures. The effects of particle size, solvent type, binder amount, resin content and sintering temperature on the microstructure and mechanical properties of microneedles were investigated. By optimizing the process parameters, highly porous (up to 60%) microneedles with interconnected micropores (of diameter similar to 1-1.5 mu m) were produced. The microporous microneedles were biocompatible and mechanically strong for skin penetration. The potential use of the microneedles for transdermal transportation of biomolecules was shown by fast and accurate extraction of glucose from a skin model and efficient loading and fast release of insulin under physiological conditions. The results suggested that the microporous alumina microneedles may serve as molecular transport systems in transdermal biosensing and drug delivery.
机译:由于它们无痛和易于应用,微针斑块已被广泛用作透皮传输系统。标记的刚性,强度,生物相容性和生理稳定性是由陶瓷材料制造的微针的独特特征,以用作微针贴剂。然而,常规陶瓷微针通常是具有有限的生物分子负载的致密结构。需要一种容纳方法来制造具有相互连接的孔隙率的生物相容性陶瓷微针。这里,开发了用于制造来自氧化铝悬浮液的微孔微针的简单离心铸造方法。将浆料或树脂的氧化铝悬浮液浇铸到离心力下的微胶质中,然后在高温下烧结。研究了粒度,溶剂型,粘合剂量,树脂含量和烧结温度对微肾微观结构和机械性能的影响。通过优化工艺参数,产生具有互连微孔(直径与1-1.5μm的直径)的高孔(高达60%)微针。微孔微针在生物相容性和机械强度下进行皮肤渗透。通过从皮肤模型和生理条件下的胰岛素的快速和精确提取葡萄糖来显示微孔对生物分子进行透皮传输的潜在使用。结果表明,微孔氧化铝微针可用作透皮生物传感和药物递送中的分子运输系统。

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