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Cell traction force in a confined microenvironment with double-sided micropost arrays

机译:具有双面微柱阵列的密闭微环境中的细胞牵引力

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Three-dimensional (3D) cell migrations are regulated by force interactions between cells and a 3D extracellular matrix (ECM). Mapping the 3D traction force generated by cells on the surrounding ECM with controlled confinement and contact area will be useful in understanding cell migration. In this study, double-sided micropost arrays were fabricated. The cell traction force was mapped by microposts on the top and bottom of opposing surfaces with a controlled separating distance to create different confinements. The density of micropost arrays was modified to investigate the effect of cell contact area on 3D traction force development. Using MC3T3-E1 osteoblastic cells, the leading traction force was found to increase with additional contact surface on the top. Summing force vectors on both surfaces, a large force imbalance was found from the leading to trailing regions for fast migrating cells. With 10 μm separation and densely arranged microposts, the traction force on the top surface was the largest at 28.6 ± 2.5 nN with the highest migration speed of 0.61 ± 0.07 μm min ~(?1) . Decreasing the density of the top micropost arrays resulted in a reduced traction force on the top and lower migration speed. With 15 μm separation, the cell traction force on the top and migration speed further decreased simultaneously. These results revealed traction force development on 3D ECM with varied degrees of confinement and contact area, which is important in regulating 3D cell migration.
机译:三维(3D)细胞迁移受到细胞与3D细胞外基质(ECM)之间的力相互作用的调节。在受控的限制范围和接触面积下,绘制由周围ECM上的细胞生成的3D牵引力将有助于理解细胞迁移。在这项研究中,制作了双面微柱阵列。细胞的牵引力通过微柱在相对表面的顶部和底部以可控制的分隔距离进行映射,以创建不同的限制。修改了微柱阵列的密度,以研究细胞接触面积对3D牵引力发展的影响。使用MC3T3-E1成骨细胞,发现牵引力随着顶部的附加接触表面而增加。两个表面上的力矢量相加,发现从快速移动细胞的前部到尾部区域存在很大的力不平衡。分离10μm,微柱排列紧密,顶面上的牵引力最大,为28.6±2.5 nN,迁移速度最高,为0.61±0.07μmmin〜(?1)。降低顶部微柱阵列的密度会导致顶部的牵引力降低,迁移速度降低。间距为15μm时,顶部的细胞牵引力和迁移速度会同时下降。这些结果表明,牵引力在3D ECM上具有不同程度的限制和接触面积,这在调节3D细胞迁移中很重要。

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