Department of Chemical and Biochemical Engineering, Seamans Center for the Engineering Arts & Sciences, University of Iowa, Iowa City, IA 52245, USA.
Adv Drug Deliv Rev. 2013 Nov;65(11-12):1611-25. doi: 10.1016/j.addr.2013.07.003. Epub 2013 Jul 13.
The drive to design micro-scale medical devices which can be reliably and uniformly mass produced has prompted many researchers to adapt processing technologies from the semiconductor industry. By operating at a much smaller length scale, the resulting biologically-oriented microelectromechanical systems (BioMEMS) provide many opportunities for improved drug delivery: Low-dose vaccinations and painless transdermal drug delivery are possible through precisely engineered microneedles which pierce the skin's barrier layer without reaching the nerves. Low-power, low-volume BioMEMS pumps and reservoirs can be implanted where conventional pumping systems cannot. Drug formulations with geometrically complex, extremely uniform micro- and nano-particles are formed through micromolding or with microfluidic devices. This review describes these BioMEMS technologies and discusses their current state of implementation. As these technologies continue to develop and capitalize on their simpler integration with other MEMS-based systems such as computer controls and telemetry, BioMEMS' impact on the field of drug delivery will continue to increase.
设计能够可靠且均匀批量生产的微尺度医疗设备的动力促使许多研究人员从半导体行业中采用加工技术。通过在更小的长度尺度上操作,由此产生的面向生物的微机电系统(BioMEMS)为改进药物输送提供了许多机会:通过精确设计的微针可以进行低剂量疫苗接种和无痛透皮药物输送,这些微针刺穿皮肤的屏障层而不会触及神经。低功率、低体积的 BioMEMS 泵和储液器可以植入传统泵送系统无法到达的地方。通过微成型或微流控设备形成具有几何形状复杂、极其均匀的微纳米颗粒的药物制剂。本文综述了这些 BioMEMS 技术,并讨论了它们的当前实施状态。随着这些技术的不断发展,并利用它们与其他基于 MEMS 的系统(如计算机控制和遥测)更简单的集成,BioMEMS 对药物输送领域的影响将继续增加。