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Correlation of in vitro cell adhesion, local shear flow and cell density

机译:体外细胞粘附,局部剪切流动和细胞密度的相关性

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Investigating cell adhesion behavior on biocompatible surfaces under dynamic flow conditions is not only of scientific interest but also a principal step towards development of new medical implant materials. Driven by the improvement of the measurement technique for microfluidic flow fields (scanning particle image velocimetry, sPIV), a semi-automatic correlation of the local shear velocity and the cell detachment probability became possible. The functionality of customized software entitled ‘PIVDAC’ (Particle Image Velocimetry De-Adhesion Correlation) is demonstrated on the basis of detachment measurements using standard sand-blasted titanium implant material. A thermodynamic rate model is applied to describe the process of cell adhesion and detachment. A comparison of the model and our experimental findings, especially in a mild regime, where the shear flow does not simply tear away all cells from the substrate, demonstrates, as predicted, an increase of detachment rate with increasing shear force. Finally, we apply the method to compare experimentally obtained detachment rates under identical flow conditions as a function of cell density and find excellent agreement with previously reported model simulations that consider pure geometrical effects. The demonstrated method opens a wide field of applications to study various cell lines on novel substrates or in time dependent flow fields.
机译:在动态流动条件下研究生物相容性表面上的细胞粘附行为不仅具有科学的兴趣,而且还具有新的医用植入材料的主要阶段。通过改善微流体流动场的测量技术(扫描粒子图像速度,SPIV)的改善,可以进行局部剪切速度的半自动相关性,并且可以成为可能的电池脱离概率。根据使用标准砂喷砂钛植入物材料,基于分离测量来证明定制软件的功能(粒子图像测速术反相相关性)。应用热力学速率模型来描述细胞粘附和脱离的过程。模型和我们的实验结果的比较,尤其是在温和的状态下,其中剪切流量不能简单地撕下来自衬底的所有细胞,如预测的那样,随着剪切力的增加,脱离率的增加。最后,我们将该方法应用于在相同的流动条件下比较实验获得的分离率作为细胞密度的函数,并找到与先前报告的模型模拟的优秀协议,以考虑纯几何效应。说明的方法打开了广泛的应用领域,用于研究新型基板上的各种细胞系或在时间依赖性流场上。

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