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通过减小粘弹性微流体中十字形横截面微通道的尺寸来提高亚微米级颗粒的富集效果。

Improving the Enrichment of Submicron-Sized Particles by Size Decreasing of Cruciform Cross-Sectional Microchannel in Viscoelastic Microfluidics.

作者信息

Jang Jaekyeong, Kim Eunjin, Kim Sungdong, Jeong Ok-Chan, Lee Sangwook, Cho Younghak

机构信息

Department of Mechanical Design and Robot Engineering, Seoul National University of Science and Technology, Seoul 01811, Republic of Korea.

PCL Inc., Seoul 08510, Republic of Korea.

出版信息

Biosensors (Basel). 2025 Jun 9;15(6):370. doi: 10.3390/bios15060370.

Abstract

The manipulation of cells and bioparticles has garnered significant interest in the field of viscoelastic microfluidics, particularly regarding its capacity for single-stream focusing within a three-dimensional and simple microchannel structure. The inherent simplicity of this method enables the effective manipulation of particles, facilitating the separation and focusing of various cell types, including blood cells, circulating tumor cells (CTCs), and microalgae. However, the viscoelastic nature of the particles imposes limitations in the handling of submicron-sized particles, due to a significant decrease in the viscoelastic force acting on the particle. In this study, we propose a microfluidic device featuring a cruciform cross-sectional microchannel with 45 µm and 45 µm of its vertical and horizontal size, respectively. The cruciform microchannel, which has a 270° reflex angle on four corners, can increase the viscoelastic force on the particles, allowing the device to focus submicron-sized particles down to 180 nm in a single-stream manner. It is important to note that the single-stream formation was maintained, while the channel width at the outlet region was drastically increased, allowing for the enrichment of submicron-sized particles. For biological feasibility, the proposed device also demonstrates the single-stream focusing on biological particles such as bacteria. The presented microfluidic device would have great potential for the focusing and enrichment of nanoparticles including bacteria in a highly robust manner, expecting its use in the various fields such as diverse biological analysis and biomedical research.

摘要

细胞和生物颗粒的操控在粘弹性微流体领域引起了广泛关注,特别是其在三维简单微通道结构内实现单流聚焦的能力。这种方法固有的简单性使得能够有效地操控颗粒,便于分离和聚焦包括血细胞、循环肿瘤细胞(CTC)和微藻在内的各种细胞类型。然而,由于作用在颗粒上的粘弹性力显著降低,颗粒的粘弹性性质对亚微米级颗粒的操控造成了限制。在本研究中,我们提出了一种微流体装置,其具有十字形横截面微通道,垂直尺寸和水平尺寸分别为45 µm和45 µm。十字形微通道在四个角上具有270°的反射角,可以增加作用在颗粒上的粘弹性力,使该装置能够以单流方式聚焦低至180 nm的亚微米级颗粒。值得注意的是,在出口区域的通道宽度大幅增加的情况下,单流形成得以维持,从而实现了亚微米级颗粒的富集。为了验证生物可行性,所提出的装置还展示了对细菌等生物颗粒的单流聚焦。所展示的微流体装置在以高度稳健的方式聚焦和富集包括细菌在内的纳米颗粒方面具有巨大潜力,有望应用于各种生物分析和生物医学研究等领域。

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