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Screening Platform for Cell Contact Guidance Based on Inorganic Biomaterial Micro/nanotopographical Gradients

机译:基于无机生物材料微/纳米音响梯度的细胞接触引导筛选平台

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摘要

High -throughput screening (HTS) methods based on topography gradients or arrays have been extensively used to investigate cell material interactions. However, it is a huge technological challenge to cost efficiently prepare topographical gradients of inorganic biomaterials due to their inherent material properties. Here, we developed a novel strategy translating PDMS-based wrinkled topography gradients with amplitudes from 49 to 2561 nm and wavelengths between 464 and 7121 nm to inorganic biomaterials (Sio(2), Ti/Tio(2), Cr/Cro(3), and AL(2)O(3)) which are frequently used clinical materials. Optimal substratum conditions promoted human bone-marrow derived mesenchymal stem cell alignment, elongation, cytoskeleton arrangement, filopodia development as well as cell adhesion in vitro, which depended both on topography and interface material. This study displays a positive correlation between cell alignment and the orientation of cytoskeleton, filopodia, and focal adhesions. This platform vastly minimizes the experimental efforts both for inorganic material interface engineering and cell biological assessments in a facile and effective approach. The practical application of the HTS technology is expected to aid in the acceleration of developments of inorganic clinical biomaterials.
机译:基于地形梯度或阵列的高行动力筛选(HTS)方法已被广泛地用于研究细胞材料相互作用。然而,由于其固有的材料特性,它是一种巨大的技术挑战,以促进无机生物材料的地形梯度。在这里,我们开发了一种将基于PDMS的皱纹地形梯度的新策略转化为从49到2561nm的幅度和464和7121nm之间的波长到无机生物材料(SiO(2),Ti / TiO(2),Cr / CRO(3)和常用临床材料的Al(2)O(3))。最佳底层病症促进人骨髓衍生的间充质干细胞排列,伸长,细胞骨架布置,箔膜显影以及体外的细胞粘附,这依赖于地形和界面材料。该研究显示细胞对准与细胞骨架,丝透露症和焦粘连之间的正相关性。该平台极大地减少了在易于和有效的方法中对无机材料界面工程和细胞生物学评估的实验努力。 HTS技术的实际应用预计有助于加速无机临床生物材料的发展。

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