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利用受生物启发的热触发脂质体在微流控装置中实现高效混合和试剂递送。

Using bioinspired thermally triggered liposomes for high-efficiency mixing and reagent delivery in microfluidic devices.

作者信息

Vreeland Wyatt N, Locascio Laurie E

机构信息

Analytical Chemistry Division, National Institute of Standards and Technology, 100 Bureau Drive, MS 8394, Gaithersburg, Maryland 20899-8394, USA.

出版信息

Anal Chem. 2003 Dec 15;75(24):6906-11. doi: 10.1021/ac034850j.

Abstract

High-efficiency mixing is of fundamental importance for the successful development and application of lab-on-a-chip devices. In this report, we present the use of bioinspired thermally triggered liposomes for the controlled delivery and subsequent rapid mixing of reagents in a microfluidic device. In this technique, reagents are encapsulated inside the aqueous interior of liposomes that are dispersed evenly throughout a microfluidic system. Mixing of the encapsulated reagent and reaction do not occur until the reagent is released by a thermal trigger. This approach takes advantage of the dramatically increased lipid membrane permeability of liposomes near the gel-to-liquid phase transition temperature (T(m)) to deliver reagents at a precise location in the microfluidic device through the modulation of temperature. Implementation of this technique requires the encapsulation of the desired reagent in a liposome whose formulation has an appropriate T(m), as well as accurate spatial control of the temperature in the microfluidic device. As the liposomes are uniformly dispersed through the microfluidic channel, mixing occurs quite rapidly upon the release of the reagent. We demonstrate this technique by using several formulations of thermally triggered liposomes to release the hydrophilic fluorescent dyes at controlled locations in a polycarbonate microfluidic device. Additionally, we demonstrate a DNA labeling reaction using liposomes in a capillary-based microfluidic device. Under the conditions studied here, mixing and reaction are complete in approximately 200 microm of channel length. We believe this approach holds great promise for the performance of rapid high-throughput assays and in particular for biological analytes whose native environment is mimicked by the liposome.

摘要

高效混合对于芯片实验室设备的成功开发和应用至关重要。在本报告中,我们展示了利用受生物启发的热触发脂质体在微流控设备中进行试剂的可控递送及随后的快速混合。在该技术中,试剂被封装在脂质体的水相内部,脂质体均匀分散在整个微流控系统中。直到试剂通过热触发释放出来,封装的试剂与反应才会发生。这种方法利用了脂质体在接近凝胶 - 液相转变温度(T(m))时脂质膜通透性显著增加的特性,通过调节温度在微流控设备的精确位置递送试剂。实施该技术需要将所需试剂封装在具有合适T(m)配方的脂质体中,以及对微流控设备中的温度进行精确的空间控制。由于脂质体均匀分散在微流控通道中,试剂释放后混合会相当迅速地发生。我们通过使用几种热触发脂质体配方在聚碳酸酯微流控设备的受控位置释放亲水性荧光染料来证明该技术。此外,我们在基于毛细管的微流控设备中展示了使用脂质体的DNA标记反应。在此处研究的条件下,混合和反应在大约200微米的通道长度内完成。我们相信这种方法对于快速高通量分析,特别是对于其天然环境被脂质体模拟的生物分析物的性能具有很大的前景。

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