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Cellular forces and matrix assembly coordinate fibrous tissue repair

机译:细胞力和基质组装协调纤维组织修复

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摘要

Planar in vitro models have been invaluable tools to identify the mechanical basis of wound closure. Although these models may recapitulate closure dynamics of epithelial cell sheets, they fail to capture how a wounded fibrous tissue rebuilds its 3D architecture. Here we develop a 3D biomimetic model for soft tissue repair and demonstrate that fibroblasts ensconced in a collagen matrix rapidly close microsurgically induced defects within 24 h. Traction force microscopy and time-lapse imaging reveal that closure of gaps begins with contractility-mediated whole-tissue deformations. Subsequently, tangentially migrating fibroblasts along the wound edge tow and assemble a progressively thickening fibronectin template inside the gap that provide the substrate for cells to complete closure. Unlike previously reported mechanisms based on lamellipodial protrusions and purse-string contraction, our data reveal a mode of stromal closure in which coordination of tissue-scale deformations, matrix assembly and cell migration act together to restore 3D tissue architecture.
机译:平面体外模型是确定伤口闭合机械基础的宝贵工具。尽管这些模型可以概括上皮细胞片的闭合动力学,但它们无法捕获受伤的纤维组织如何重建其3D结构。在这里,我们开发了用于软组织修复的3D仿生模型,并证明了在胶原蛋白基质中聚集的成纤维细胞可在24小时内迅速闭合显微手术引起的缺损。牵引力显微镜和延时成像显示,间隙的闭合始于收缩性介导的整个组织变形。随后,沿伤口边缘丝线切向迁移成纤维细胞,并在间隙内组装逐渐增厚的纤连蛋白模板,从而为细胞提供完成封闭的基质。与先前报道的基于层状脂质体突起和钱包链收缩的机制不同,我们的数据揭示了一种基质闭合模式,其中组织规模的变形,基质组装和细胞迁移的协调共同作用以恢复3D组织结构。

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