首页> 外文会议>2011 International Symposium on Micro-NanoMechatronics and Human Science >Fabrication of microfluidic device on temperature-responsive cell culture surface for studying the shear stress-dependent cell detachment
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Fabrication of microfluidic device on temperature-responsive cell culture surface for studying the shear stress-dependent cell detachment

机译:用于研究剪切应力依赖性细胞脱离的温度响应性细胞培养表面微流体装置的制备

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We proposed a novel approach to quantitatively estimate the strength of cell-material interaction by using microfluidic system. The microfluidic device was made of poly (dimethylsiloxane) chip bonding on the temperature-responsive cell culture surface consisted of poly(N-isopropylacrylamide) (PIPAAm) grafted tissue culture polystyrene (TCPS) (PIPAAm-TCPS), containing five parallel test channels for cell culture. This construction allows concurrent generating five different shear forces applied to cells in each microchannel by varying the resistance of each channel, as well as obtaining identical cell incubation in each test channel. Bovine aortic endothelial cells were well adhered and spread on PIPAAm-TCPS in each channel at cell culture temperature of 37°C. Reducing temperature below the lower critical solution temperature of PIPAAm and starting flow, cells were peeled off from the hydrophilic PIPAAm-TCPS by the shear forces generated by flow. Shear stress dependent cell detachment process was evaluated with the different shear stress. Critical shear stress for cell detachment was achieved through studying the effect of shear stress on cell detachment times. As a result, the bonding strength between cells and hydrated PIPAAm-TCPS was weaker than that in other cell bonding biomaterials.
机译:我们提出了一种新颖的方法,通过使用微流控系统来定量估计细胞-材料相互作用的强度。微流体装置由键合在温度响应性细胞培养表面上的聚二甲基硅氧烷芯片制成,该细胞由聚(N-异丙基丙烯酰胺)(PIPAAm)接枝的组织培养聚苯乙烯(TCPS)(PIPAAm-TCPS)组成,包含五个平行的测试通道细胞培养。这种结构允许通过改变每个通道的阻力并同时在每个测试通道中获得相同的细胞孵育,同时产生五个不同的剪切力,这些剪切力施加到每个微通道中的细胞。牛主动脉内皮细胞粘附良好,并在37°C的细胞培养温度下在每个通道的PIPAAm-TCPS上铺展。将温度降低到低于PIPAAm的下临界溶液温度并开始流动,通过流动产生的剪切力将细胞从亲水性PIPAAm-TCPS剥离。用不同的剪切应力评估了依赖于剪切应力的细胞脱离过程。通过研究剪切应力对细胞分离时间的影响,获得了用于细胞分离的临界剪切应力。结果,细胞与水合PIPAAm-TCPS之间的结合强度比其他细胞结合生物材料弱。

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