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深度流体动力学流动限制:用于具有地形变化的开放基板的微米级液体定位

Deep-Reaching Hydrodynamic Flow Confinement: Micrometer-Scale Liquid Localization for Open Substrates With Topographical Variations.

作者信息

Oskooei Ali, Kaigala Govind V

出版信息

IEEE Trans Biomed Eng. 2017 Jun;64(6):1261-1269. doi: 10.1109/TBME.2016.2597297.

Abstract

We present a method for nonintrusive localization and reagent delivery on immersed biological samples with topographical variation on the order of hundreds of micrometers. Our technique, which we refer to as the deep-reaching hydrodynamic flow confinement (DR-HFC), is simple and passive: it relies on a deep-reaching hydrodynamic confinement delivered through a simple microfluidic probe design to perform localized microscale alterations on substrates as deep as 600 μm. Designed to scan centimeter-scale areas of biological substrates, our method passively prevents sample intrusion by maintaining a large gap between the probe and the substrate. The gap prevents collision of the probe and the substrate and reduces the shear stress experienced by the sample. We present two probe designs: linear and annular DR-HFC. Both designs comprise a reagent-injection aperture and aspiration apertures that serve to confine the reagent. We identify the design parameters affecting reagent localization and depth by DR-HFC and study their individual influence on the operation of DR-HFC numerically. Using DR-HFC, we demonstrate localized binding of antihuman immunoglobulin G (IgG) onto an activated substrate at various depths from 50 to 600 μm. DR-HFC provides a readily implementable approach for noninvasive processing of biological samples applicable to the next generation of diagnostic and bioanalytical devices.

摘要

我们提出了一种用于对具有数百微米量级地形变化的浸没生物样品进行非侵入式定位和试剂递送的方法。我们的技术,即深度流体动力流限制(DR-HFC),简单且被动:它依靠通过简单的微流体探针设计实现的深度流体动力限制,对深达600μm的底物进行局部微观尺度的改变。为扫描生物底物的厘米级区域而设计,我们的方法通过在探针和底物之间保持较大间隙来被动防止样品侵入。该间隙可防止探针与底物碰撞,并降低样品所经历的剪切应力。我们展示了两种探针设计:线性和环形DR-HFC。两种设计均包括一个试剂注入孔和用于限制试剂的抽吸孔。我们确定了影响DR-HFC试剂定位和深度的设计参数,并通过数值研究了它们对DR-HFC操作的各自影响。使用DR-HFC,我们证明了抗人免疫球蛋白G(IgG)在50至600μm的不同深度处与活化底物的局部结合。DR-HFC为适用于下一代诊断和生物分析设备的生物样品非侵入性处理提供了一种易于实施的方法。

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