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在径向柱装置(RAPID)中使用全血进行无堵塞连续操作。

Clogging-free continuous operation with whole blood in a radial pillar device (RAPID).

作者信息

Mehendale Ninad, Sharma Oshin, Pandey Shilpi, Paul Debjani

机构信息

Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Powai, Mumbai, 400076, India.

出版信息

Biomed Microdevices. 2018 Aug 17;20(3):75. doi: 10.1007/s10544-018-0319-z.

Abstract

Pillar-based passive microfluidic devices combine the advantages of simple designs, small device footprint, and high selectivity for size-based separation of blood cells. Most of these device designs have been validated with dilute blood samples. Handling whole blood in pillar-based devices is extremely challenging due to clogging. The high proportion of cells (particularly red blood cells) in blood, the varying sizes and stiffness of the different blood cells, and the tendency of the cells to aggregate lead to clogging of the pillars within a short period. We recently reported a ra dial pi llar d evice (RAPID) design for continuous and high throughput separation of multi-sized rigid polystyrene particles in a single experiment. In the current manuscript, we have given detailed guidelines to modify the design of RAPID for any application with deformable objects (e.g. cells). We have adapted RAPID to work with whole blood without any pre-processing steps. We were successful in operating the device with whole blood for almost 6 h, which is difficult to achieve with most pillar-based devices. The availability of multiple parallel paths for the cells and the provision for a self-generating cross flow in the device design were the main reasons behind the minimal clogging in our device. We also observed that a vibrator motor attached to the inlet tubing occasionally disturbed the cell clumps. As an illustration of the improved device design, we demonstrated up to ∼ 60-fold enrichment of platelets.

摘要

基于柱体的被动微流控装置结合了设计简单、设备占地面积小以及对基于尺寸的血细胞分离具有高选择性等优点。这些装置设计大多已在稀释血液样本中得到验证。由于堵塞问题,在基于柱体的装置中处理全血极具挑战性。血液中细胞比例高(尤其是红细胞)、不同血细胞大小和硬度各异以及细胞聚集的倾向导致柱体在短时间内堵塞。我们最近报道了一种径向柱体装置(RAPID)设计,可在单个实验中对多种尺寸的刚性聚苯乙烯颗粒进行连续和高通量分离。在当前的论文中,我们给出了详细指南,用于将RAPID设计修改为适用于任何涉及可变形物体(如细胞)的应用。我们对RAPID进行了改进,使其无需任何预处理步骤即可处理全血。我们成功地用全血操作该装置近6小时,这对大多数基于柱体的装置来说很难实现。装置设计中为细胞提供多条平行路径以及产生自交叉流是我们的装置堵塞最少的主要原因。我们还观察到,连接到进样管的振动电机偶尔会扰乱细胞团块。作为改进装置设计的一个例证,我们展示了血小板富集倍数高达约60倍。

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