Department of Bioengineering, Institute for Stem Cell and Regenerative Medicine, University of Washington, Seattle, WA 98195, USA.
Department of Electrical and Computer Engineering, Seoul National University, Seoul 151-742, Korea.
Sci Rep. 2016 Jul 27;6:29749. doi: 10.1038/srep29749.
To investigate complex biophysical relationships driving directed cell migration, we developed a biomimetic platform that allows perturbation of microscale geometric constraints with concomitant nanoscale contact guidance architectures. This permits us to elucidate the influence, and parse out the relative contribution, of multiscale features, and define how these physical inputs are jointly processed with oncogenic signaling. We demonstrate that collective cell migration is profoundly enhanced by the addition of contract guidance cues when not otherwise constrained. However, while nanoscale cues promoted migration in all cases, microscale directed migration cues are dominant as the geometric constraint narrows, a behavior that is well explained by stochastic diffusion anisotropy modeling. Further, oncogene activation (i.e. mutant PIK3CA) resulted in profoundly increased migration where extracellular multiscale directed migration cues and intrinsic signaling synergistically conspire to greatly outperform normal cells or any extracellular guidance cues in isolation.
为了研究驱动定向细胞迁移的复杂生物物理关系,我们开发了一种仿生平台,该平台允许微尺度几何约束发生干扰,同时具有纳米级的接触导向结构。这使我们能够阐明多尺度特征的影响,并解析出它们的相对贡献,以及定义这些物理输入如何与致癌信号共同处理。我们证明,在没有其他限制的情况下,通过添加合同指导线索,集体细胞迁移得到了极大的增强。然而,尽管纳米级线索在所有情况下都促进了迁移,但当几何约束变窄时,微尺度定向迁移线索占据主导地位,这种行为可以通过随机扩散各向异性建模得到很好的解释。此外,癌基因激活(即突变 PIK3CA)导致迁移率显著增加,此时细胞外多尺度定向迁移线索和内在信号协同作用,大大优于正常细胞或任何单独的细胞外导向线索。