Department of Biomedical Engineering, Duke University, Durham, NC, 27708, USA.
Biomech Model Mechanobiol. 2021 Aug;20(4):1209-1230. doi: 10.1007/s10237-021-01452-6. Epub 2021 Mar 25.
The transport of cancerous cells through the microcirculation during metastatic spread encompasses several interdependent steps that are not fully understood. Computational models which resolve the cellular-scale dynamics of complex microcirculatory flows offer considerable potential to yield needed insights into the spread of cancer as a result of the level of detail that can be captured. In recent years, in silico methods have been developed that can accurately and efficiently model the circulatory flows of cancer and other biological cells. These computational methods are capable of resolving detailed fluid flow fields which transport cells through tortuous physiological geometries, as well as the deformation and interactions between cells, cell-to-endothelium interactions, and tumor cell aggregates, all of which play important roles in metastatic spread. Such models can provide a powerful complement to experimental works, and a promising approach to recapitulating the endogenous setting while maintaining control over parameters such as shear rate, cell deformability, and the strength of adhesive binding to better understand tumor cell transport. In this review, we present an overview of computational models that have been developed for modeling cancer cells in the microcirculation, including insights they have provided into cell transport phenomena.
癌细胞在转移扩散过程中通过微循环的运输包含了几个相互依存的步骤,这些步骤还不完全清楚。解决复杂微循环流动的细胞尺度动力学的计算模型具有很大的潜力,可以深入了解癌症的扩散,因为可以捕捉到更详细的信息。近年来,已经开发出了可以准确有效地模拟癌症和其他生物细胞循环流动的计算方法。这些计算方法能够解决详细的流体流动场,这些流动场通过曲折的生理几何形状运输细胞,以及细胞之间的变形和相互作用、细胞与内皮细胞的相互作用以及肿瘤细胞聚集体,所有这些都在转移扩散中起着重要作用。这些模型可以为实验工作提供有力的补充,并且是一种很有前途的方法,可以在保持对剪切率、细胞可变形性和与粘附结合的强度等参数的控制的同时,再现内源性环境,以更好地了解肿瘤细胞的运输。在这篇综述中,我们介绍了为模拟微循环中的癌细胞而开发的计算模型,包括它们为细胞运输现象提供的见解。