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Gradual conversion of cellular stress patterns into pre-stressed matrix architecture during in vitro tissue growth

机译:在体外组织生长过程中细胞应力模式逐渐转变为预应力矩阵结构

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摘要

The complex arrangement of the extracellular matrix (ECM) produced by cells during tissue growth, healing and remodelling is fundamental to tissue function. In connective tissues, it is still unclear how both cells and the ECM become and remain organized over length scales much larger than the distance between neighbouring cells. While cytoskeletal forces are essential for assembly and organization of the early ECM, how these processes lead to a highly organized ECM in tissues such as osteoid is not clear. To clarify the role of cellular tension for the development of these ordered fibril architectures, we used an in vitro model system, where pre-osteoblastic cells produced ECM-rich tissue inside channels with millimetre-sized triangular cross sections in ceramic scaffolds. Our results suggest a mechanical handshake between actively contracting cells and ECM fibrils: the build-up of a long-range organization of cells and the ECM enables a gradual conversion of cell-generated tension to pre-straining the ECM fibrils, which reduces the work cells have to generate to keep mature tissue under tension.
机译:细胞在组织生长,愈合和重塑过程中产生的细胞外基质(ECM)的复杂排列是组织功能的基础。在结缔组织中,尚不清楚细胞和ECM如何在远大于相邻细胞之间距离的长度尺度上变得并保持组织。尽管细胞骨架力对于早期ECM的组装和组织至关重要,但这些过程如何导致组织(如类骨质)中高度组织化的ECM尚不清楚。为了阐明细胞张力在这些有序原纤维结构发展中的作用,我们使用了体外模型系统,其中成骨细胞在陶瓷支架中的通道内产生了富含ECM的组织,该组织具有毫米大小的三角形横截面。我们的结果表明,主动收缩的细胞与ECM原纤维之间存在机械握手:细胞和ECM的长距离组织的积累使细胞产生的张力逐渐转化为预紧ECM原纤维,从而减少了工作量细胞必须产生以使成熟组织保持张力。

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