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通过改变最大速度的方向、大小和位置,在螺旋微通道中高通量分离癌细胞。

High-throughput isolation of cancer cells in spiral microchannel by changing the direction, magnitude and location of the maximum velocity.

机构信息

Department of Mechanical Engineering, Tarbiat Modares University, Tehran, Iran.

Department of Medical Sciences, Tarbiat Modares University, Tehran, Iran.

出版信息

Sci Rep. 2023 Feb 24;13(1):3213. doi: 10.1038/s41598-023-30275-x.

Abstract

Circulating tumor cells (CTCs) are scarce cancer cells that rarely spread from primary or metastatic tumors inside the patient's bloodstream. Determining the genetic characteristics of these paranormal cells provides significant data to guide cancer staging and treatment. Cell focusing using microfluidic chips has been implemented as an effective method for enriching CTCs. The distinct equilibrium positions of particles with different diameters across the microchannel width in the simulation showed that it was possible to isolate and concentrate breast cancer cells (BCCs) from WBCs at a moderate Reynolds number. Therefore we demonstrate high throughput isolation of BCCs using a passive, size-based, label-free microfluidic method based on hydrodynamic forces by an unconventional (combination of long loops and U-turn) spiral microfluidic device for isolating both CTCs and WBCs with high efficiency and purity (more than 90%) at a flow rate about 1.7 mL/min, which has a high throughput compared to similar ones. At this golden flow rate, up to 92% of CTCs were separated from the cell suspension. Its rapid processing time, simplicity, and potential ability to collect CTCs from large volumes of patient blood allow the practical use of this method in many applications.

摘要

循环肿瘤细胞(CTCs)是罕见的癌细胞,它们很少从患者血液中的原发性或转移性肿瘤中扩散。确定这些超自然细胞的遗传特征为癌症分期和治疗提供了重要数据。使用微流控芯片进行细胞聚焦已被实施为富集 CTCs 的有效方法。模拟中不同直径的粒子在微通道宽度上的不同平衡位置表明,有可能在中等雷诺数下从白细胞(WBCs)中分离和浓缩乳腺癌细胞(BCCs)。因此,我们展示了一种基于被动、基于尺寸、无标记的微流控方法,通过一种非传统的(长环和 U 型转弯的组合)螺旋微流控装置,利用流体动力高效且高纯度(超过 90%)地分离 CTCs 和 WBCs,其在约 1.7 mL/min 的流速下具有高通量,与类似装置相比具有更高的通量。在这个黄金流速下,多达 92%的 CTCs 从细胞悬浮液中分离出来。它的快速处理时间、简单性以及从大量患者血液中收集 CTCs 的潜在能力,使得该方法在许多应用中具有实际用途。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/63e7/9958115/3e6f541b8365/41598_2023_30275_Fig1_HTML.jpg

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