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Both contractile axial and lateral traction force dynamics drive amoeboid cell motility

机译:收缩轴向和侧向牵引力动力学都驱动变形细胞运动

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Chemotaxing Dictyostelium discoideum cells adapt their morphology and migration speed in response to intrinsic and extrinsic cues. Using Fourier traction force microscopy, we measured the spatiotemporal evolution of shape and traction stresses and constructed traction tension kymographs to analyze cell motility as a function of the dynamics of the cell’s mechanically active traction adhesions. We show that wild-type cells migrate in a step-wise fashion, mainly forming stationary traction adhesions along their anterior–posterior axes and exerting strong contractile axial forces. We demonstrate that lateral forces are also important for motility, especially for migration on highly adhesive substrates. Analysis of two mutant strains lacking distinct actin cross-linkers ( mhcA? and abp120? cells) on normal and highly adhesive substrates supports a key role for lateral contractions in amoeboid cell motility, whereas the differences in their traction adhesion dynamics suggest that these two strains use distinct mechanisms to achieve migration. Finally, we provide evidence that the above patterns of migration may be conserved in mammalian amoeboid cells.
机译:趋化盘基网柄菌盘状细胞响应于内在和外在线索而适应其形态和迁移速度。使用傅里叶牵引力显微镜,我们测量了形状和牵引应力的时空演变,并构建了牵引张力运动记录仪,以分析细胞动力与细胞机械活性牵引黏附动力学的关系。我们表明,野生型细胞以逐步的方式迁移,主要沿其前后轴形成固定的牵引粘连,并施加强大的收缩轴向力。我们证明了横向力对于运动性也很重要,特别是对于在高粘性基材上的迁移而言。对两种在正常和高粘附性底物上缺乏独特的肌动蛋白交联剂(mhcAβ和abp120β细胞)的突变菌株的分析支持了侧向收缩在变形虫细胞运动中的关键作用,而其牵引粘附动力学的差异表明这两个菌株使用不同的机制来实现迁移。最后,我们提供证据表明上述迁移模式在哺乳动物变形虫细胞中可能是保守的。

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