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SpheroidSim-Preliminary evaluation of a new computational tool to predict the influence of cell cycle time and phase fraction on spheroid growth

机译:新的计算工具的初步评估预测细胞周期时间和相位分数对球状生长的影响

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Background There is a relative paucity of research that integrates materials science and bioengineering with computational simulations to decipher the intricate processes promoting cancer progression. Therefore, a first-generation computational model, SpheroidSim, was developed that includes a biological data set derived from a bioengineered spheroid model to obtain a quantitative description of cell kinetics. Results SpheroidSim is a 3D agent-based model simulating the growth of multicellular cancer spheroids. Cell cycle time and phases mathematically motivated the population growth. SpheroidSim simulated the growth dynamics of multiple spheroids by individually defining a collection of specific phenotypic traits and characteristics for each cell. Experimental data derived from a hydrogel-based spheroid model were fit to the predictions providing insight into the influence of cell cycle time (CCT) and cell phase fraction (CPF) on the cell population. A comparison of the number of active cells predicted for each analysis showed that the value and method used to define CCT had a greater effect on the predicted cell population than CPF. The model predictions were similar to the experimental results for the number of cells, with the predicted total number of cells varying by 8% and 12%, respectively, compared to the experimental data. Conclusions SpheroidSim is a first step in developing a biologically based predictive tool capable of revealing fundamental elements in cancer cell physiology. This computational model may be applied to study the effect of the microenvironment on spheroid growth and other cancer cell types that demonstrate a similar multicellular clustering behavior as the population develops. (c) 2018 American Institute of Chemical Engineers Biotechnol.
机译:背景技术存在相对缺乏的研究,可以将材料科学和生物工程集成在计算模拟中,以破译促进癌症进展的复杂过程。因此,开发了第一代计算模型,其包括衍生自生物工程球体模型的生物数据集以获得细胞动力学的定量描述。结果Spheroidsim是一种基于3D代理的模型,模拟多细胞癌球体的生长。数学上的细胞周期时间和阶段促进人口增长。 Spheroidsim通过单独定义每种细胞的特定表型性状和特性的集合来模拟多个球状体的生长动态。源自水凝胶基球体模型​​的实验数据适合于提供对细胞循环时间(CCT)和细胞相位级分(CPF)对细胞群体的影响的洞察。对每个分析预测的有源电池数量的比较表明,用于定义CCT的值和方法对预测的细胞群具有比CPF更大的效果。与实验数据相比,模型预测与细胞数量的实验结果类似于细胞数量,预测的总细胞数量分别为8%和12%。结论Spheroidsim是开发能够揭示癌细胞生理学中基本元素的生物基础的预测工具的第一步。该计算模型可以应用于研究微环境对球形生长和其他癌细胞类型的影响,这些癌细胞类型显示出与人口发展相似的多细胞聚类行为。 (c)2018美国化学工程师学院Biotechnol。

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