Cytoskeletal strains in modeled optohydrodynamically stressed healthy and diseased biological cells.

Sean S Kohles, Yu Liang, Asit K Saha
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引用次数: 2

Abstract

Controlled external chemomechanical stimuli have been shown to influence cellular and tissue regeneration/degeneration, especially with regards to distinct disease sequelae or health maintenance. Recently, a unique three-dimensional stress state was mathematically derived to describe the experimental stresses applied to isolated living cells suspended in an optohydrodynamic trap (optical tweezers combined with microfluidics). These formulae were previously developed in two and three dimensions from the fundamental equations describing creeping flows past a suspended sphere. The objective of the current study is to determine the full-field cellular strain response due to the applied three-dimensional stress environment through a multiphysics computational simulation. In this investigation, the multiscale cytoskeletal structures are modeled as homogeneous, isotropic, and linearly elastic. The resulting computational biophysics can be directly compared with experimental strain measurements, other modeling interpretations of cellular mechanics including the liquid drop theory, and biokinetic models of biomolecule dynamics. The described multiphysics computational framework will facilitate more realistic cytoskeletal model interpretations, whose intracellular structures can be distinctly defined, including the cellular membrane substructures, nucleus, and organelles.

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在模拟的光流体动力学中,细胞骨架菌株对健康和患病的生物细胞施加压力。
受控的外部化学机械刺激已被证明可以影响细胞和组织的再生/退化,特别是在不同的疾病后遗症或健康维持方面。最近,一种独特的三维应力状态被数学推导出来,用于描述悬浮在光流体动力学陷阱(光镊与微流体相结合)中的分离活细胞的实验应力。这些公式以前是在二维和三维的基本方程中推导出来的,这些基本方程描述了通过悬浮球体的蠕动流动。本研究的目的是通过多物理场计算模拟来确定由于施加的三维应力环境引起的全场细胞应变响应。在本研究中,多尺度细胞骨架结构被建模为均匀的、各向同性的和线性弹性的。由此产生的计算生物物理学可以直接与实验应变测量、细胞力学的其他建模解释(包括液滴理论)和生物分子动力学的生物动力学模型进行比较。所描述的多物理场计算框架将促进更现实的细胞骨架模型解释,其细胞内结构可以明确定义,包括细胞膜亚结构,细胞核和细胞器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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