CityU Shenzhen Research Institute , Shenzhen 518057, China.
ACS Appl Mater Interfaces. 2016 Jul 20;8(28):17976-86. doi: 10.1021/acsami.6b06789. Epub 2016 Jul 11.
Left-right (LR) asymmetry of tissue/organ structure is a morphological feature essential for many tissue functions. The ability to incorporate the LR formation in constructing tissue/organ replacement is important for recapturing the inherent tissue structure and functions. However, how LR asymmetry is formed remains largely underdetermined, which creates significant hurdles to reproduce and regulate the formation of LR asymmetry in an engineering context. Here, we report substrate rigidity functioning as an effective switch that turns on the development of LR asymmetry. Using micropatterned cell-adherent stripes on rigid substrates, we found that cells collectively oriented at a LR-biased angle relative to the stripe boundary. This LR asymmetry was initiated by a LR-biased migration of cells at stripe boundary, which later generated a velocity gradient propagating from stripe boundary to the center. After a series of cell translocations and rotations, ultimately, an LR-biased cell orientation within the micropatterned stripe was formed. Importantly, this initiation and propagation of LR asymmetry was observed only on rigid but not on soft substrates, suggesting that the LR asymmetry was regulated by rigid substrate probably through the organization of actin cytoskeleton. Together, we demonstrated substrate rigidity as a determinant factor that mediates the self-organizing LR asymmetry being unfolded from single cells to multicellular organization. More broadly, we anticipate that our findings would pave the way for rebuilding artificial tissue constructs with inherent LR asymmetry in the future.
组织/器官结构的左右(LR)不对称是许多组织功能所必需的形态特征。将 LR 形成纳入构建组织/器官替代物的能力对于重新获得固有组织结构和功能非常重要。然而,LR 不对称性是如何形成的在很大程度上仍未确定,这给在工程学背景下复制和调节 LR 不对称性的形成带来了重大障碍。在这里,我们报告了基质刚性作为一种有效的开关,它可以开启 LR 不对称性的发展。我们使用刚性基底上的微图案化细胞附着条带发现,细胞相对于条带边界集体定向在 LR 偏置的角度。这种 LR 不对称性是由细胞在条带边界处的 LR 偏置迁移引发的,随后产生了从条带边界到中心的速度梯度。经过一系列的细胞易位和旋转,最终,在微图案化条带内形成了 LR 偏置的细胞取向。重要的是,这种 LR 不对称性的启动和传播仅在刚性基底上观察到,而不在软基底上观察到,这表明 LR 不对称性是通过刚性基底调节的,可能是通过肌动蛋白细胞骨架的组织来调节的。总的来说,我们证明了基质刚性作为一个决定因素,介导了从单个细胞到多细胞组织的自我组织的 LR 不对称性的展开。更广泛地说,我们预计我们的发现将为未来重建具有固有 LR 不对称性的人工组织构建物铺平道路。