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Finite element simulation of cell-substrate decohesion by laser-induced stress waves.

机译:激光诱导应力波对细胞-基底脱粘的有限元模拟。

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Fundamental to the development and application of biomedical devices is an understanding of the adhesion of cells to substrates. There are many experimental techniques and papers dedicated to the study of cell adhesion. This work aims to elucidate on the cell detachment mechanism in a recently reported cell adhesion measurement experiment by laser-induced stress wave technique. In the experiment the absorption of an Nd:YAG laser pulse generates a stress wave of nanoseconds duration that interacts with and detaches the cell adhered to a Si substrate. Due to the ultra-short timescale involved in the experiment, details of the detachment process were not readily observable. In this work, dynamic finite element method is used to simulate the cell-substrate decohesion process under the laser-induced stress wave loading. The results show that the combined effect of nanosecond stress wave pulse and the specific cell geometry results in a complex stress-strain state along the cell-substrate interface. The principal failure mechanism is large interfacial strains realized from the cell's tendency to spread and elongate on the substrate as a result of substrate acceleration. The cells behave like a soft elastic solid during the detachment process due to the large difference between their characteristic response time and the ultra-short duration of the applied stress wave. Evolution of the cell geometry from hydrophobic to hydrophilic contact results in the same detachment process.
机译:生物医学设备的开发和应用的基础是对细胞对基质粘附的理解。有许多用于研究细胞粘附的实验技术和论文。这项工作旨在阐明在最近报道的通过激光诱导的应力波技术进行的细胞粘附性测量实验中的细胞分离机制。在实验中,Nd:YAG激光脉冲的吸收会产生持续时间为纳秒的应力波,该应力波会与粘附在Si基板上的电池相互作用并使其脱离。由于实验涉及的时间极短,因此无法轻易观察到分离过程的细节。在这项工作中,动态有限元方法被用来模拟在激光诱导的应力波载荷下细胞-基底的脱粘过程。结果表明,纳秒应力波脉冲和特定的单元几何形状的共同作用导致沿单元-基底界面的应力-应变状态复杂。主要的失效机理是大的界面应变,这是由于细胞由于基底加速而在基底上扩散和伸长的趋势而实现的。由于其特征响应时间与施加的应力波的超短持续时间之间存在较大差异,因此在分离过程中,这些单元的行为类似于柔软的弹性固体。从疏水接触到亲水接触的细胞几何结构演变导致相同的分离过程。

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