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Anisotropic Strain Fields Enhance Matrix Remodeling through Elevated TGF-P Signaling

机译:各向异性应变场通过提高TGF-P信号增强矩阵重塑

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In this work, we demonstrate the unique effect of controlled anisotropic strain on fibroblast behavior in 3D engineered tissue environments. Anisotropy of biaxial strain resulted in increased cellular orientation and collagen fiber alignment. Transforming growth factor beta-1 (TGFpi) gene expression and pSmad2 nuclear translocation increased with biaxial directionality. Myofibroblastic alpha-smooth muscle actin (a-SMA) decreased with applied strain similar to mechanically unloaded hydrogels. Collectively, these results demonstrate a novel mechanobiological mechanism by which fibroblasts develop rapid anisotropic matrix striation while maintaining phenotype quiescence.
机译:在这项工作中,我们证明了受控各向异性菌株对3D工程组织环境中成纤维细胞行为的独特作用。双轴应变的各向异性导致细胞取向增加和胶原纤维取向。转化生长因子β-1(TGFPI)基因表达和PSMAD2核易位随比性方向性增加。肌纤维细胞α-平滑肌肌动蛋白(A-SMA)随着施加的应变而下降,类似于机械卸载的水凝胶。总的来说,这些结果表明了一种新的机制机制,成纤维细胞在保持表型静脉的同时发育快速的各向异性基质突变。

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