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PNAS Plus: Synchronized mechanical oscillations at the cell–matrix interface in the formation of tensile tissue

机译:PNAS Plus:拉伸组织形成过程中细胞-基质界面处的同步机械振动

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摘要

The formation of uniaxial fibrous tissues with defined viscoelastic properties implies the existence of an orchestrated mechanical interaction between the cytoskeleton and the extracellular matrix. This study addresses the nature of this interaction. The hypothesis is that this mechanical interplay underpins the mechanical development of the tissue. In embryonic tendon tissue, an early event in the development of a mechanically robust tissue is the interaction of the pointed tips of extracellular collagen fibrils with the fibroblast plasma membrane to form stable interface structures (fibripositors). Here, we used a fibroblast-generated tissue that is structurally and mechanically matched to embryonic tendon to demonstrate homeostasis of cell-derived and external strain-derived tension over repeated cycles of strain and relaxation. A cell-derived oscillatory tension component is evident in this matrix construct. This oscillatory tension involves synchronization of individual cell forces across the construct and is induced in each strain cycle by transient relaxation and transient tensioning of the tissue. The cell-derived tension along with the oscillatory component is absent in the presence of blebbistatin, which disrupts actinomyosin force generation of the cell. The time period of this oscillation (60–90 s) is well-defined in each tissue sample and matches a primary viscoelastic relaxation time. We hypothesize that this mechanical oscillation of fibroblasts with plasma membrane anchored collagen fibrils is a key factor in mechanical sensing and feedback regulation in the formation of tensile tissues.
机译:具有确定的粘弹性的单轴纤维组织的形成暗示在细胞骨架和细胞外基质之间存在协调的机械相互作用。这项研究解决了这种互动的本质。假设是这种机械相互作用支撑了组织的机械发展。在胚胎肌腱组织中,机械坚固的组织发展的早期事件是细胞外胶原纤维的尖尖与成纤维细胞质膜的相互作用,形成稳定的界面结构(纤维沉积剂)。在这里,我们使用了成纤维细胞生成的组织,该组织在结构上和机械上与胚胎肌腱相匹配,以证明在反复的应变和松弛循环中,细胞源性和外部应变源性张力的体内平衡。在这种基质结构中,细胞来源的振荡张力成分是明显的。这种振荡张力涉及跨过构建体的单个细胞力的同步,并且在每个应变周期中通过组织的瞬时松弛和瞬时张紧来诱导。在存在blebbistatin的情况下,缺少源自细胞的张力以及振荡成分,这会破坏细胞的放线菌素力产生。在每个组织样本中都明确定义了这种振荡的时间段(60–90 s),并且与主要的粘弹性松弛时间相匹配。我们假设成纤维细胞与质膜锚定的胶原纤维的这种机械振荡是拉伸组织形成中机械感测和反馈调节的关键因素。

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