Butler James P, Tolić-Nørrelykke Iva Marija, Fabry Ben, Fredberg Jeffrey J
Physiology Program, Harvard School of Public Health, 665 Huntington Avenue, Boston, MA 02115, USA.
Am J Physiol Cell Physiol. 2002 Mar;282(3):C595-605. doi: 10.1152/ajpcell.00270.2001.
Adherent cells exert tractions on their surroundings. These tractions can be measured by observing the displacements of beads embedded on a flexible gel substrate on which the cells are cultured. This paper presents an exact solution to the problem of computing the traction field from the observed displacement field. The solution rests on recasting the relationship between displacements and tractions into Fourier space, where the recovery of the traction field is especially simple. We present two subcases of the solution, depending on whether or not tractions outside the observed cell boundaries are set to be zero. The implementation is computationally efficient. We also give the solution for the traction field in a representative human airway smooth muscle cell contracted by treatment with histamine. Finally, we give explicit formulas for reducing the traction and displacement fields to contraction moments, the orientation of the principal axes of traction, and the strain energy imparted by the cell to the substrate.
贴壁细胞会对其周围环境施加牵引力。这些牵引力可以通过观察嵌入细胞所培养的柔性凝胶基质上的珠子的位移来测量。本文给出了一个从观测位移场计算牵引力场问题的精确解。该解基于将位移与牵引力之间的关系重铸到傅里叶空间,在那里恢复牵引力场特别简单。根据观测细胞边界外的牵引力是否设为零,我们给出了该解的两种子情况。该实现具有计算效率。我们还给出了用组胺处理收缩的代表性人气道平滑肌细胞中牵引力场的解。最后,我们给出了将牵引力场和位移场简化为收缩矩、牵引力主轴方向以及细胞赋予基质的应变能的显式公式。