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微毛细管对红细胞流动和形状的限制作用。

Confinement effect on the microcapillary flow and shape of red blood cells.

作者信息

Nouaman Mohammed, Darras Alexis, Wagner Christian, Recktenwald Steffen M

机构信息

Dynamics of Fluids, Department of Experimental Physics, Saarland University, 66123 Saarbrücken, Germany.

出版信息

Biomicrofluidics. 2024 Apr 1;18(2):024104. doi: 10.1063/5.0197208. eCollection 2024 Mar.

Abstract

The ability to change shape is essential for the proper functioning of red blood cells (RBCs) within the microvasculature. The shape of RBCs significantly influences blood flow and has been employed in microfluidic lab-on-a-chip devices, serving as a diagnostic biomarker for specific pathologies and enabling the assessment of RBC deformability. While external flow conditions, such as the vessel size and the flow velocity, are known to impact microscale RBC flow, our comprehensive understanding of how their shape-adapting ability is influenced by channel confinement in biomedical applications remains incomplete. This study explores the impact of various rectangular and square channels, each with different confinement and aspect ratios, on the RBC flow behavior and characteristic shapes. We demonstrate that rectangular microchannels, with a height similar to the RBC diameter in combination with a confinement ratio exceeding 0.9, are required to generate distinctive well-defined croissant and slipper-like RBC shapes. These shapes are characterized by their equilibrium positions in the channel cross section, and we observe a strong elongation of both stable shapes in response to the shear rate across the different channels. Less confined channel configurations lead to the emergence of unstable other shape types that display rich shape dynamics. Our work establishes an experimental framework to understand the influence of channel size on the single-cell flow behavior of RBCs, providing valuable insights for the design of biomicrofluidic single-cell analysis applications.

摘要

红细胞(RBC)在微血管系统中正常发挥功能,其改变形状的能力至关重要。红细胞的形状显著影响血流,已被应用于微流控芯片实验室设备中,作为特定病理状态的诊断生物标志物,并用于评估红细胞的可变形性。虽然已知诸如血管大小和流速等外部流动条件会影响微观尺度的红细胞流动,但我们对其形状适应能力在生物医学应用中如何受到通道限制的全面理解仍不完整。本研究探讨了各种具有不同限制和纵横比的矩形和方形通道对红细胞流动行为和特征形状的影响。我们证明,需要高度与红细胞直径相似且限制比超过0.9的矩形微通道,才能产生独特的、轮廓分明的新月形和拖鞋状红细胞形状。这些形状的特征在于它们在通道横截面中的平衡位置,并且我们观察到,在不同通道中,这两种稳定形状都会因剪切速率而强烈伸长。限制较小的通道配置会导致出现不稳定的其他形状类型,这些形状表现出丰富的形状动态变化。我们的工作建立了一个实验框架,以了解通道大小对红细胞单细胞流动行为的影响,为生物微流控单细胞分析应用的设计提供了有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0126/10994673/792e7ebcd2c0/BIOMGB-000018-024104_1-g001.jpg

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