Joint Graduate Program in Bioengineering, University of California at Berkeley, Berkeley, California 94720, USA.
Department of Biology and Molelcular and Cellular Physiology, Stanford University, Stanford, California 94305, USA.
Nat Mater. 2014 Apr;13(4):409-17. doi: 10.1038/nmat3891. Epub 2014 Mar 9.
Many normal and pathological biological processes involve the migration of epithelial cell sheets. This arises from complex emergent behaviour resulting from the interplay between cellular signalling networks and the forces that physically couple the cells. Here, we demonstrate that collective migration of an epithelium can be interactively guided by applying electric fields that bias the underlying signalling networks. We show that complex, spatiotemporal cues are locally interpreted by the epithelium, resulting in rapid, coordinated responses such as a collective U-turn, divergent migration, and unchecked migration against an obstacle. We observed that the degree of external control depends on the size and shape of the cell population, and on the existence of physical coupling between cells. Together, our results offer design and engineering principles for the rational manipulation of the collective behaviour and material properties of a tissue.
许多正常和病理的生物过程都涉及上皮细胞片的迁移。这是由于细胞信号网络之间的相互作用以及物理连接细胞的力产生的复杂涌现行为所致。在这里,我们证明通过施加偏向基础信号网络的电场,可以对上皮细胞的集体迁移进行交互式引导。我们表明,上皮细胞可以局部地解释复杂的时空线索,从而导致快速,协调的反应,例如集体 U 形转弯,发散迁移以及在障碍物前不受控制的迁移。我们观察到,外部控制的程度取决于细胞群体的大小和形状,以及细胞之间物理连接的存在。总之,我们的研究结果为合理操纵组织的集体行为和材料特性提供了设计和工程原理。