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Combining Dynamic Stretch and Tunable Stiffness to Probe Cell Mechanobiology In Vitro

机译:结合动态拉伸和可调节的刚度来体外探测细胞力学生物学。

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摘要

Cells have the ability to actively sense their mechanical environment and respond to both substrate stiffness and stretch by altering their adhesion, proliferation, locomotion, morphology, and synthetic profile. In order to elucidate the interrelated effects of different mechanical stimuli on cell phenotype in vitro, we have developed a method for culturing mammalian cells in a two-dimensional environment at a wide range of combined levels of substrate stiffness and dynamic stretch. Polyacrylamide gels were covalently bonded to flexible silicone culture plates and coated with monomeric collagen for cell adhesion. Substrate stiffness was adjusted from relatively soft (G′ = 0.3 kPa) to stiff (G′ = 50 kPa) by altering the ratio of acrylamide to bis-acrylamide, and the silicone membranes were stretched over circular loading posts by applying vacuum pressure to impart near-uniform stretch, as confirmed by strain field analysis. As a demonstration of the system, porcine aortic valve interstitial cells (VIC) and human mesenchymal stem cells (hMSC) were plated on soft and stiff substrates either statically cultured or exposed to 10% equibiaxial or pure uniaxial stretch at 1Hz for 6 hours. In all cases, cell attachment and cell viability were high. On soft substrates, VICs cultured statically exhibit a small rounded morphology, significantly smaller than on stiff substrates (p<0.05). Following equibiaxial cyclic stretch, VICs spread to the extent of cells cultured on stiff substrates, but did not reorient in response to uniaxial stretch to the extent of cells stretched on stiff substrates. hMSCs exhibited a less pronounced response than VICs, likely due to a lower stiffness threshold for spreading on static gels. These preliminary data demonstrate that inhibition of spreading due to a lack of matrix stiffness surrounding a cell may be overcome by externally applied stretch suggesting similar mechanotransduction mechanisms for sensing stiffness and stretch.
机译:细胞具有通过改变其粘附力,增殖,运动,形态和合成特性来主动感知其机械环境并对底物刚度和拉伸做出响应的能力。为了阐明体外不同机械刺激对细胞表型的相互影响,我们开发了一种在二维环境下以较大范围的底物刚度和动态拉伸组合水平培养哺乳动物细胞的方法。将聚丙烯酰胺凝胶共价键合到柔性有机硅培养板上,并涂上单体胶原以粘附细胞。通过改变丙烯酰胺与双丙烯酰胺的比例,将基材的刚度从相对较软的(G'= 0.3 kPa)调整为坚硬的(G'= 50 kPa),并通过施加真空压力使硅树脂膜在圆形的加载柱上拉伸以赋予应变场分析证实,拉伸接近均匀。作为系统的演示,将猪主动脉瓣间质细胞(VIC)和人间充质干细胞(hMSC)铺在静态培养的硬质基质上,或以1Hz的频率在10%等轴或纯单轴拉伸下暴露6小时。在所有情况下,细胞附着和细胞活力都很高。在软基质上,静态培养的VIC表现出较小的圆形形态,明显小于在硬基质上(p <0.05)。在等双轴循环拉伸之后,VIC扩散到在刚性基质上培养的细胞程度,但没有响应单轴拉伸而重定向到在刚性基质上拉伸的细胞程度。 hMSC与VIC相比,反应较不明显,这可能是由于散布在静态凝胶上的刚性阈值较低。这些初步数据表明,可通过外部施加的拉伸来克服由于缺乏围绕细胞的基质刚度而引起的扩散抑制,这暗示了用于感测刚度和拉伸的类似机械转导机制。

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