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Synergy between Rho signaling and matrix density in cyclic stretch-induced stress fiber organization

机译:循环拉伸诱导应力纤维组织中RHO信号传导与矩阵密度的协同作用

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Cells adapt in response to mechanical stimulation to ensure adequate tissue functioning. F-actin stress fibers provide a key element in the adaptation process. The high sensitivity and fast adaptation of the F-actin cytoskeleton to cyclic strain have been studied extensively in a 2-D environment; however, 3-D data are scarce. Our previous work showed that stress fibers organize perpendicular to cyclic stretching (stretch-avoidance) in three dimensions. However, stretch-avoidance was absent when cells populated a high density matrix. In this study our aim was to obtain more insight into the synergy between matrix density and the signaling pathways that govern stress fiber remodeling. Therefore we studied stress fiber organization in 3-D reconstituted collagen tissues (at low and high matrix density), subjected to cyclic stretch upon interference with molecular signaling pathways. In particular, the influence of the small GTPase Rho and its downstream effectors were studied. Only at low matrix density does stress fiber stretch avoidance show a stretch-magnitude-dependent response. The activity of matrix metalloproteinases (MMPs), Rho-kinase and myosin light chain kinase are essential for stress fiber reorientation. Although high matrix density restricts stress fiber reorientation, Rho activation can overcome this restriction, but only in the presence of active MMPs. Results from this study highlight a synergistic action between matrix remodeling and Rho signaling in cyclic-stretch-induced stress fiber organization in 3-D tissue.
机译:细胞响应机械刺激而适应确保足够的组织功能。 F-actin应力纤维在适应过程中提供了一个关键元件。在2-D环境中,已经在分别研究了F-actin细胞骨架对循环菌株的高灵敏度和快速调整;但是,3-D数据稀缺。我们以前的工作表明,应力纤维在三个维度中组织垂直于循环拉伸(拉伸)。然而,当细胞填充高密度基质时,不存在拉伸避免。在这项研究中,我们的目的是获得更多地洞察矩阵密度与控制应力纤维重塑的信号通路之间的协同作用。因此,我们在3-D重构的胶原组织(以低和高矩阵密度)中研究了应力纤维组织,在干扰分子信号传导途径时经受循环伸展。特别地,研究了小GTPA酶Rho及其下游效应的影响。只有在低矩阵密度下,应力纤维拉伸避免避免显示拉伸幅度依赖性响应。基质金属蛋白酶(MMPs),RHO-激酶和肌蛋白轻链激酶的活性对于应力纤维重新定位是必不可少的。虽然高矩阵密度限制应力光纤重新定位,但是rho激活可以克服这种限制,但仅在存在活性MMPS的情况下。本研究的结果突出了三维组织循环拉伸诱导应力纤维组织中基质重塑与RHO信号的协同作用。

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