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Laser-Assisted Strain Engineering of Thin Elastomer Films to Form Variable Wavy Substrates for Cell Culture

机译:薄弹性体膜激光辅助应变工程,形成细胞培养的可变波浪基材

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摘要

Endothelial and epithelial cells usually grow on a curved environment, at the surface of organs, which many techniques have tried to reproduce. Here a simple method is proposed to control curvature of the substrate. Prestrained thin elastomer films are treated by infrared laser irradiation in order to rigidify the surface of the film. Wrinkled morphologies are produced upon stress relaxation for irradiation doses above a critical value. Wrinkle wavelength and depth are controlled by the prestrain, the laser power, and the speed at which the laser scans the film surface. Stretching of elastomer substrates with a "sand clock"-width profile enables the generation of a stress gradient, which results in patterns of wrinkles with a depth gradient. Thus, different combinations of topography changes on the same substrate can be generated. The wavelength and the depth of the wrinkles, which have the characteristic values within a range of several tens of μm, can be dynamically regulated by the substrate reversible stretching. It is shown that these anisotropic features are efficient substrates to control polarization of cell shapes and orientation of their migration. With this approach a flexible tool is provided for a wide range of applications in cell biophysics studies.
机译:内皮和上皮细胞通常在弯曲环境中生长,在器官表面,许多技术已经尝试繁殖。这里提出了一种简单的方法来控制基板的曲率。通过红外激光照射处理普拉的薄弹性体薄膜,以便将膜的表面损伤。在临界值高于临界值的辐照剂量时产生皱纹形态。皱纹波长和深度由PRESTRAIN,激光功率和激光扫描膜表面的速度控制。用“砂时钟”-Width轮廓的弹性体基材的拉伸能够产生应力梯度,这导致具有深度梯度的皱纹的图案。因此,可以产生不同基板上的地形改变的不同组合。皱纹的波长和深度,其具有在几十μm范围内的特征值,可以通过基板可逆拉伸动态调节。结果表明,这些各向异性特征是有效的基板,以控制细胞形状的偏振和它们迁移的取向。通过这种方法,提供了一种灵活的工具,用于细胞生物物理学研究中的各种应用。

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