Multiplexed and Switchable Release of Distinct Fluids from Microneedle Platforms via Conducting Polymer Nanoactuators for Potential Drug Delivery.

Gabriela Valdés-Ramírez, Joshua R Windmiller, Jonathan C Claussen, Alexandra G Martinez, Filiz Kuralay, Ming Zhou, Nandi Zhou, Ronen Polsky, Philip R Miller, Roger Narayan, Joseph Wang
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引用次数: 43

Abstract

We report on the development of a microneedle-based multiplexed drug delivery actuator that enables the controlled delivery of multiple therapeutic agents. Two individually-addressable channels on a single microneedle array, each paired with its own reservoir and conducting polymer nanoactuator, are used to deliver various permutations of two unique chemical species. Upon application of suitable redox potentials to the selected actuator, the conducting polymer is able to undergo reversible volume changes, thereby serving to release a model chemical agent in a controlled fashion through the corresponding microneedle channels. Time-lapse videos offer direct visualization and characterization of the membrane switching capability and, along with calibration investigations, confirm the ability of the device to alternate the delivery of multiple reagents from individual microneedles of the array with higher precision and temporal resolution than conventional drug delivery actuators. Analytical modeling offers prediction of the volumetric flow rate through a single microneedle and accordingly can be used to assist in the design of subsequent microneedle arrays. The robust solid-state design and lack of mechanical components circumvent reliability issues that challenge fragile conventional microelectromechanical drug delivery devices. This proof-of-concept study demonstrates the potential of the drug delivery actuator system to aid in the rapid administration of multiple therapeutic agents and indicates the potential to counteract diverse biomedical conditions.

通过导电聚合物纳米致动器从微针平台上多路和可切换地释放不同的流体,用于潜在的药物输送。
我们报告了一种基于微针的多路药物递送致动器的开发,该致动器能够控制多种治疗剂的递送。单个微针阵列上的两个可单独寻址的通道,每个通道都有自己的储层和导电聚合物纳米致动器,用于传递两种独特化学物质的各种排列。在选定的致动器上施加合适的氧化还原电位后,导电聚合物能够经历可逆的体积变化,从而通过相应的微针通道以受控的方式释放模型化学剂。延时视频提供了膜切换能力的直接可视化和表征,并且与校准调查一起,证实了该设备能够从阵列的单个微针交替递送多种试剂,比传统的药物递送驱动器具有更高的精度和时间分辨率。分析建模提供了通过单个微针的体积流量预测,因此可以用于辅助后续微针阵列的设计。坚固的固态设计和缺乏机械部件,避免了传统微机电给药装置面临的可靠性问题。这项概念验证研究证明了药物输送致动器系统在帮助多种治疗剂快速给药方面的潜力,并表明了对抗各种生物医学条件的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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