The Charles Stark Draper Laboratory, Cambridge, MA, USA.
Lab Chip. 2014 Feb 21;14(4):710-21. doi: 10.1039/c3lc51105g.
Reciprocating microfluidic drug delivery, as compared to steady or pulsed infusion, has unique features which may be advantageous in many therapeutic applications. We have previously described a device, designed for wearable use in small animal models, that periodically infuses and then withdraws a sub-microliter volume of drug solution to and from the endogenous fluid of the inner ear. This delivery approach results in zero net volume of liquid transfer while enabling mass transport of compounds to the cochlea by means of diffusion and mixing. We report here on an advanced wearable delivery system aimed at further miniaturization and complex dosing protocols. Enhancements to the system include the incorporation of a planar micropump to generate reciprocating flow and a novel drug reservoir that maintains zero net volume delivery and permits programmable modulation of the drug concentration in the infused bolus. The reciprocating pump is fabricated from laminated polymer films and employs a miniature electromagnetic actuator to meet the size and weight requirements of a head-mounted in vivo guinea pig testing system. The reservoir comprises a long microchannel in series with a micropump, connected in parallel with the reciprocating flow network. We characterized in vitro the response and repeatability of the planar pump and compared the results with a lumped element simulation. We also characterized the performance of the reservoir, including repeatability of dosing and range of dose modulation. Acute in vivo experiments were performed in which the reciprocating pump was used to deliver a test compound to the cochlea of anesthetized guinea pigs to evaluate short-term safety and efficacy of the system. These advances are key steps toward realization of an implantable device for long-term therapeutic applications in humans.
往复微流控药物输送与稳定或脉冲输注相比,具有独特的特点,在许多治疗应用中可能具有优势。我们之前描述了一种设计用于小动物模型的可穿戴设备,该设备周期性地将亚微升体积的药物溶液注入和抽出内耳的内源性液体。这种输送方法在实现化合物通过扩散和混合向耳蜗的质量传递的同时,不会产生净液体转移量。我们在此报告一种旨在进一步小型化和复杂给药方案的先进可穿戴输送系统。该系统的增强功能包括并入平面微泵以产生往复流动和新型药物储液器,该储液器保持零净体积输送并允许对注入的药物浓度进行可编程调节。往复泵由层压聚合物膜制成,并采用微型电磁致动器以满足头戴式体内豚鼠测试系统的尺寸和重量要求。储液器由与微泵串联的长微通道组成,与往复流网络并联连接。我们对平面泵的响应和重复性进行了体外表征,并将结果与集总元件模拟进行了比较。我们还对储液器的性能进行了表征,包括给药的重复性和剂量调节范围。在麻醉的豚鼠中进行了急性体内实验,使用往复泵将测试化合物输送到耳蜗,以评估该系统的短期安全性和疗效。这些进展是实现用于人类长期治疗应用的植入式设备的关键步骤。