Sunami Hiroshi, Shimizu Yusuke, Kishimoto Hidehiro
Faculty of Medicine, University of the Ryukyus, Okinawa 903-0215, Japan.
Graduate School of Medicine, University of the Ryukyus, Okinawa 903-0215, Japan.
Biophys Physicobiol. 2023 Dec 29;21(1):e210004. doi: 10.2142/biophysico.bppb-v21.0004. eCollection 2024.
Cell migration plays an important role in the development and maintenance of multicellular organisms. Factors that induce cell migration and mechanisms controlling their expression are important for determining the mechanisms of factor-induced cell migration. Despite progress in the study of factor-induced cytotaxis, including chemotaxis and haptotaxis, precise control of the direction of cell migration over a wide area has not yet been achieved. Success in this area would update the cell migration assays, superior cell separation technologies, and artificial organs with high biocompatibility. The present study therefore sought to control the direction of cell migration over a wide area by adjusting the three-dimensional shape of the cell scaffold. The direction of cell migration was influenced by the shape of the cell scaffold, thereby optimizing cell adhesion and protrusion. Anisotropic arrangement of these three-dimensional shapes into a periodic structure induced unidirectional cell migration. Three factors were required for unidirectional cell migration: 1) the sizes of the anisotropic periodic structures had to be equal to or lower than the size of the spreading cells, 2) cell migration was restricted to a runway approximately the width of the cell, and 3) cells had to be prone to extension of long protrusions in one direction. Because the first two factors had been identified previously in studies of cell migration in one direction using two-dimensional shaped patterns, these three factors are likely important for the mechanism by which cell scaffold shapes regulate cell migration.
细胞迁移在多细胞生物的发育和维持过程中发挥着重要作用。诱导细胞迁移的因素以及控制其表达的机制对于确定因子诱导的细胞迁移机制至关重要。尽管在因子诱导的细胞趋化性研究方面取得了进展,包括趋化性和趋触性,但尚未实现对大面积细胞迁移方向的精确控制。该领域的成功将更新细胞迁移检测方法、先进的细胞分离技术以及具有高生物相容性的人工器官。因此,本研究旨在通过调整细胞支架的三维形状来控制大面积细胞迁移的方向。细胞迁移的方向受细胞支架形状的影响,从而优化细胞黏附和突起。将这些三维形状各向异性排列成周期性结构可诱导单向细胞迁移。单向细胞迁移需要三个因素:1)各向异性周期性结构的尺寸必须等于或小于铺展细胞的尺寸;2)细胞迁移被限制在大约细胞宽度的跑道上;3)细胞必须易于在一个方向上延伸长突起。由于前两个因素先前已在使用二维形状模式进行的单向细胞迁移研究中得到确认,因此这三个因素可能对细胞支架形状调节细胞迁移的机制很重要。