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Nanoporous micro-element arrays for particle interception in microfluidic cell separation

机译:在微流体细胞分离用于颗粒拦截纳米多孔微元件阵列

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摘要

The ability to control cell-surface interactions in order to achieve binding of specific cell types is a major challenge for microfluidic immunoaffinity cell capture systems. In the majority of existing systems, the functionalized capture surface is constructed of solid materials, where flow stagnation at the solid-liquid interface is detrimental to the convection of cells to the surface. We study the use of ultra-high porosity (99%) nanoporous micro-posts in microfluidic channels for enhancing interception efficiency of particles in flow. We show using both modelling and experiment that nanoporous posts improve particle interception compared to solid posts through two distinct mechanisms: the increase of direct interception, and the reduction of near-surface hydrodynamic resistance. We provide initial validation that the improvement of interception efficiency also results in an increase in capture efficiency when comparing nanoporous vertically aligned carbon nanotube (VACNT) post arrays with solid PDMS post arrays of the same geometry. Using both bacteria (~1 μm) and cancer cell lines (~15 μm) as model systems, we found capture efficiency increases by 6-fold and 4-fold respectively. The combined model and experimental platform presents a new generation of nanoporous microfluidic devices for cell isolation.
机译:控制细胞表面相互作用以实现特定细胞类型的结合的能力是微流体免疫亲和细胞捕获系统的主要挑战。在大多数现有系统中,官能化捕获表面由固体材料构成,其中固体液体界面处的流动停滞是对对表面的对比有害。我们研究了在微流体通道中使用超高孔隙度(99%)纳米多孔微柱,以提高流动中颗粒的截取效率。我们展示了使用纳米多孔柱的建模和实验,通过两种不同的机制与实体柱相比改善粒子拦截:直接拦截的增加,以及近表面流体动力学的降低。我们提供初始验证,即当将纳米多孔垂直对准的碳纳米管(VACNT)阵列与同一几何形状的固体PDMS阵列进行比较时,截取效率的提高也导致捕获效率的增加。使用细菌(〜1μm)和癌细胞系(〜15μm)作为模型系统,我们发现捕获效率分别增加6倍和4倍。组合模型和实验平台呈现了新一代用于细胞分离的纳米多孔微流体装置。

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