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有效边界修正用于提高细胞分离效率的确定性横向微流控通道:数值与实验研究。

Effective Boundary Correction for Deterministic Lateral Displacement Microchannels to Improve Cell Separation: A Numerical and Experimental Study.

机构信息

School of Electrical and Computer Engineering, College of Engineering, University of Tehran, Tehran 1439957131, Iran.

Department of Electrical and Computer Engineering, University of Virginia, Charlottesville, VA 22908, USA.

出版信息

Biosensors (Basel). 2024 Sep 29;14(10):466. doi: 10.3390/bios14100466.

Abstract

Particle separation and sorting techniques based on microfluidics have found extensive applications and are increasingly gaining prominence. This research presents the design and fabrication of a microfluidic device for separating cells using deterministic lateral displacement (DLD), enabling accuracy and continuity while being size-based. Nevertheless, it remains demanding, to completely reverse the detrimental effects of the boundaries that disturb the fluidic flow in the channel and reduce particle separation efficiency. This study introduces a novel approach to enhance the boundary structure of channels. By using this design, separation efficiency is boosted, and the fluid behavior around the walls is improved. The boundary correction (BC) enhances the operation of the microchannel and is very effective in microchannels. With boundary correction, the device exhibited improved separation efficiencies, but in its absence, separation efficiencies dropped. The collected microscopic images of the isolation of prostate cancer cell lines and red blood cells revealed promising outcomes. The efficiency of circulating tumor cell (CTC) throughput in the microfluidic channel, quantified as the ratio or proportion of tumor cells exiting the channel to cells entering it, exceeds 93%. Moreover, the efficiency of CTC isolation, expressed as the proportion of tumor cells from the upper outlet of the microfluidic channel to all cells, is over 89%. Additionally, the efficiency of red blood cell isolation, evaluated as the ratio of red blood cells from the lower outlet of the microfluidic channel to all cells, surpasses 77%. While using the same DLD separator without boundary correction reduced the separation efficiency by around 5%.

摘要

基于微流控的粒子分离和分选技术得到了广泛的应用,并越来越受到重视。本研究设计并制作了一种基于微流控的微流控芯片,用于通过确定性侧向位移(DLD)分离细胞,实现基于尺寸的准确性和连续性。然而,要完全消除边界对通道内流体流动的干扰并降低粒子分离效率的不利影响仍然具有挑战性。本研究提出了一种增强通道边界结构的新方法。通过使用这种设计,分离效率得到了提高,并且改善了壁面附近的流体行为。边界修正(BC)增强了微通道的操作,在微通道中非常有效。有边界修正时,器件的分离效率提高,但没有边界修正时,分离效率降低。收集的前列腺癌细胞系和红细胞分离的微观图像显示出有希望的结果。循环肿瘤细胞(CTC)在微流控通道中的通过量效率,以肿瘤细胞离开通道与进入通道的细胞的比例或比例来定量,超过 93%。此外,CTC 分离效率,以微流控通道上部出口的肿瘤细胞与所有细胞的比例来表示,超过 89%。此外,以微流控通道下部出口的红细胞与所有细胞的比例来评估的红细胞分离效率超过 77%。而使用没有边界修正的相同 DLD 分离器会使分离效率降低约 5%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa04/11506467/7c87f8cdac7f/biosensors-14-00466-g001.jpg

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