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首页> 外文期刊>Scientific reports. >Dynamic tensile forces drive collective cell migration through three-dimensional extracellular matrices
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Dynamic tensile forces drive collective cell migration through three-dimensional extracellular matrices

机译:动态拉伸力通过三维细胞外基质驱动集体细胞迁移

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Collective cell migration drives tissue remodeling during development, wound repair, and metastatic invasion. The physical mechanisms by which cells move cohesively through dense three-dimensional (3D) extracellular matrix (ECM) remain incompletely understood. Here, we show directly that migration of multicellular cohorts through collagenous matrices occurs via a dynamic pulling mechanism, the nature of which had only been inferred previously in 3D. Tensile forces increase at the invasive front of cohorts, serving a physical, propelling role as well as a regulatory one by conditioning the cells and matrix for further extension. These forces elicit mechanosensitive signaling within the leading edge and align the ECM, creating microtracks conducive to further migration. Moreover, cell movements are highly correlated and in phase with ECM deformations. Migrating cohorts use spatially localized, long-range forces and consequent matrix alignment to navigate through the ECM. These results suggest biophysical forces are critical for 3D collective migration.
机译:集体细胞迁移在开发,伤口修复和转移侵袭过程中转化组织重塑。细胞通过致密的三维(3D)细胞外基质(ECM)通过致密的三维(3D)移动的物理机制仍然不完全理解。在这里,我们直接显示通过胶原族矩阵的多细胞队列迁移通过动态拉动机构,其性质仅在3D中推断出来。拉伸力在群体的侵袭性前面增加,通过调节细胞和基质来提供物理,推进的角色以及调节效果,以进一步延伸。这些力引起了领先边缘内的机械敏感信令并对准ECM,以进一步迁移的方式创建MicroTracks。此外,细胞运动与ECM变形高度相关,并且相位相位。迁移队列使用空间本地化,远程力量和随后的矩阵对齐来浏览ECM。这些结果表明生物物理力量对于3D集体迁移至关重要。

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