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Mathematical modeling and experimental validation of cancer cell migration in a three-dimensional tumor matrix.

机译:三维肿瘤基质中癌细胞迁移的数学模型和实验验证。

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摘要

Understanding the processes and mechanisms of cancer cell migration and metastasis are critical to the fields of oncology and drug design. However, little is known about the controlling factors that influence cell migration and metastasis especially under complex micro-environmental conditions. The focus of this research is to study cell migration phenomena in response to two major factors - chemotaxis and durotaxis. The effects of other control parameters, such as fluid flow rates and concentration of nutrients, are also investigated using a simulated three-dimensional cell culture system. The simulation is based on a two-scale approach by solving coupled partial differential equations involving the Stokes-Brinkman equation with continuous stress at the interface between the porous media and the channel for the fluid flow profile in the system, the convection-diffusion equation for the distribution of nutrients, and the Newtonian formulation of motion for tumor cells. The simulation results show very good agreement with experimental data from literature and our collaborative lab at Virginia Tech. Three applications of the developed cell migration model were used to investigate the capabilities of the model in more complex biological systems. These applications include cell migration at a different spatial scale, cell migration in a more biologically relevant complex vasculature, and cell migration in a standardized model of a whole prostate gland. The simulation results demonstrate that the model is capable of predicting, to a certain extent, cell migration velocities in those different cases. The significance of this research is to provide some clue and insight for further investigation in the processes of cancer metastasis.
机译:了解癌细胞迁移和转移的过程和机制对肿瘤学和药物设计领域至关重要。然而,对于影响细胞迁移和转移的控制因素知之甚少,尤其是在复杂的微环境条件下。这项研究的重点是研究对两个主要因素-趋化性和durotaxis响应的细胞迁移现象。还使用模拟的三维细胞培养系统研究了其他控制参数的影响,例如流体流速和养分浓度。该模拟基于两尺度方法,通过求解涉及Stokes-Brinkman方程的耦合偏微分方程,该方程在多孔介质与系统中流体流动通道之间的界面处具有连续应力,而对流扩散方程为营养成分的分布以及肿瘤细胞的牛顿运动公式。仿真结果显示与文献资料以及我们在Virginia Tech的合作实验室的实验数据非常吻合。已开发的细胞迁移模型的三个应用程序用于研究该模型在更复杂的生物系统中的功能。这些应用包括在不同空间尺度上的细胞迁移,在生物学上更相关的复杂脉管系统中的细胞迁移以及在整个前列腺组织的标准化模型中的细胞迁移。仿真结果表明,该模型能够在一定程度上预测这些不同情况下的细胞迁移速度。这项研究的意义在于为癌症转移过程的进一步研究提供一些线索和见解。

著录项

  • 作者

    Boukhris, Sarah J.;

  • 作者单位

    The University of Texas at San Antonio.;

  • 授予单位 The University of Texas at San Antonio.;
  • 学科 Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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