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Spatially resolved shear distribution in microfluidic chip for studying force transduction mechanisms in cells

机译:空间分辨剪切力在微流控芯片中的分布,用于研究细胞中的力传递机制

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摘要

Fluid shear stress has profound effects on cell physiology. Here we present a versatile microfluidic method capable of generating variable magnitudes, gradients, and different modes of shear flow, to study sensory and force transduction mechanisms in cells. The chip allows cell culture under spatially resolved shear flow conditions as well as study of cell response to shear flow in real-time. Using this chip, we studied the effects of chronic shear stress on cellular functions of Madin-Darby Canine Kidney (MDCK), renal epithelial cells. We show that shear stress causes reorganization of actin cytoskeleton, which suppresses flow-induced Ca~(2+) response.
机译:流体剪切应力对细胞生理学具有深远的影响。在这里,我们提出了一种通用的微流体方法,能够产生可变的幅度,梯度和不同的剪切流模式,以研究细胞中的感觉和力传导机制。该芯片允许在空间分辨的剪切流条件下进行细胞培养,并实时研究细胞对剪切流的响应。使用该芯片,我们研究了慢性切应力对Madin-Darby犬肾脏(MDCK),肾上皮细胞的细胞功能的影响。我们表明,剪切应力导致肌动蛋白细胞骨架的重组,从而抑制流动诱导的Ca〜(2+)反应。

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