Department of Electrical and Computer Engineering, The University of British Columbia, Vancouver, BC, V6T 1Z4, Canada.
Department of Mechanical Engineering, The University of British Columbia, Vancouver, BC, V6T 1Z4, Canada.
Biomed Microdevices. 2019 Nov 19;21(4):100. doi: 10.1007/s10544-019-0449-y.
Microneedles are extremely small and minimally-invasive intradermal drug delivery devices that require controlled, accurate, and repeatable insertions into human skin to perform their functions. Due to high variability and elasticity of human skin, dynamic insertion methods are being sought to ensure success in microneedle insertions into the skin passed the tough stratum corneum layer. Dynamic microneedle insertions have not been thoroughly studied to identify and assess the key parameters influencing the skin fracture to date. Here, we have utilized a previously validated artificial mechanical human skin model to identify and evaluate the factors affecting microneedle insertion. It was determined that a microneedle's velocity at impact against the skin played the most crucial role in successfully inserting microneedle devices of different geometrical features (i.e., tip area) and array size (i.e., number of projections). The findings presented herein will facilitate the development of automated microneedle insertion devices that will enable user-friendly and error-free applications of microneedle technologies for medicine delivery.
微针是一种极其微小且微创的皮内药物输送装置,需要精确、可重复地将其插入人体皮肤以发挥其功能。由于人体皮肤具有高度的可变性和弹性,因此正在寻求动态插入方法,以确保微针成功插入经过坚韧的角质层的皮肤。迄今为止,尚未对动态微针插入进行彻底研究,以确定和评估影响皮肤破裂的关键参数。在这里,我们利用了以前经过验证的人工机械人体皮肤模型来识别和评估影响微针插入的因素。结果表明,微针撞击皮肤时的速度在成功插入具有不同几何特征(即,尖端面积)和阵列尺寸(即,突出物数量)的微针装置方面起着至关重要的作用。本文的研究结果将有助于开发自动化微针插入装置,从而实现微针技术在药物输送方面的用户友好和无错误应用。