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一种用于癌细胞通过狭窄微通道的传输的计算模型。

A computational model for the transit of a cancer cell through a constricted microchannel.

机构信息

School of Engineering and Materials Science, Queen Mary University of London, London, E1 4NS, UK.

School of Engineering and Information Technology, University of New South Wales, Canberra, ACT, 2600, Australia.

出版信息

Biomech Model Mechanobiol. 2023 Aug;22(4):1129-1143. doi: 10.1007/s10237-023-01705-6. Epub 2023 Feb 28.

Abstract

We propose a three-dimensional computational model to simulate the transient deformation of suspended cancer cells flowing through a constricted microchannel. We model the cell as a liquid droplet enclosed by a viscoelastic membrane, and its nucleus as a smaller stiffer capsule. The cell deformation and its interaction with the suspending fluid are solved through a well-tested immersed boundary lattice Boltzmann method. To identify a minimal mechanical model that can quantitatively predict the transient cell deformation in a constricted channel, we conduct extensive parametric studies of the effects of the rheology of the cell membrane, cytoplasm and nucleus and compare the results with a recent experiment conducted on human leukaemia cells. We find that excellent agreement with the experiment can be achieved by employing a viscoelastic cell membrane model with the membrane viscosity depending on its mode of deformation (shear versus elongation). The cell nucleus limits the overall deformation of the whole cell, and its effect increases with the nucleus size. The present computational model may be used to guide the design of microfluidic devices to sort cancer cells, or to inversely infer cell mechanical properties from their flow-induced deformation.

摘要

我们提出了一个三维计算模型来模拟悬浮癌细胞通过狭窄微通道时的瞬态变形。我们将细胞建模为一个由粘弹性膜封闭的液滴,其核为较小的刚性胶囊。细胞变形及其与悬浮液的相互作用通过经过充分验证的浸入边界格子玻尔兹曼方法求解。为了确定能够定量预测狭窄通道中瞬态细胞变形的最小力学模型,我们对细胞膜、细胞质和细胞核的流变学影响进行了广泛的参数研究,并将结果与最近对人类白血病细胞进行的实验进行了比较。我们发现,通过采用依赖于变形模式(剪切与拉伸)的粘弹性细胞膜模型,可以与实验取得非常好的一致性。细胞核限制了整个细胞的整体变形,其影响随着细胞核尺寸的增加而增加。目前的计算模型可用于指导设计用于分选癌细胞的微流控装置,或者从细胞的流致变形来推断其力学特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d5d/10366299/c94ed9790a0b/10237_2023_1705_Fig1_HTML.jpg

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