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Accuracy and feasibility of piezoelectric inkjet coating technology for applications in microneedle-based transdermal delivery

机译:压电喷墨涂层技术在基于微针的透皮给药中的准确性和可行性

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Coated microneedles have shown immense promise for use in transdermal delivery and diagnostics, due to their ability to painlessly breach the skin's outermost stratum corneum layer and interact with the epidermal layers immediately beneath. In this work, we use an off-the-shelf piezoelectric dispensing system to demonstrate the feasibility of depositing material directly on to steeply-sloping microneedle sidewalls, without the need for specific needle array positioning or material pretreatment. In the first instance, an analysis of deposition accuracy shows that over 95% of dispensed droplets land within 20 pm of the target. Through the use of sequential dispense and drying steps, 3.2 nL of a model drug formulation has been deposited onto both silicon and polymeric microneedles with highly sloped (71 degrees) sidewalls; these are the steepest surfaces that have been coated to date. Finally, preliminary ex-vivo skin studies have been performed to show that the material may be successfully transferred from the needle to skin. Despite the smooth surfaces, ultrasharp tips and steep sidewalls of these structures, piezoelectric dispense techniques are dearly feasible for microneedle coating and may offer a promising alternative to conventional coating processes. (C) 2017 Elsevier B.V. All rights reserved.
机译:包衣的微针具有无痛突破皮肤最外层角质层并与下面的表皮层相互作用的能力,已显示出在经皮递送和诊断中的巨大前景。在这项工作中,我们使用现成的压电分配系统来演示将材料直接沉积到陡峭的微针侧壁上的可行性,而无需进行特定的针阵列定位或材料预处理。首先,对沉积精度的分析表明,超过95%的已分配液滴降落在目标的20 pm内。通过使用顺序分配和干燥步骤,已将3.2 nL的模型药物制剂沉积在侧壁和侧壁高度倾斜(71度)的硅和聚合物微针上。这些是迄今为止已涂过的最陡的表面。最后,已经进行了初步的离体皮肤研究,以表明该材料可以成功地从针头转移到皮肤上。尽管这些结构具有光滑的表面,尖锐的尖端和陡峭的侧壁,但压电分配技术对于微针涂层非常可行,并且可以为传统涂层工艺提供有希望的替代方法。 (C)2017 Elsevier B.V.保留所有权利。

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