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首页> 外文期刊>Micromachines >Micro Vacuum Chuck and Tensile Test System for Bio-Mechanical Evaluation of 3D Tissue Constructed of Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes (hiPS-CM)
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Micro Vacuum Chuck and Tensile Test System for Bio-Mechanical Evaluation of 3D Tissue Constructed of Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes (hiPS-CM)

机译:微型真空吸盘和拉伸测试系统,用于对人诱导的多能干细胞衍生的心肌细胞(hiPS-CM)构建的3D组织进行生物力学评估

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In this report, we propose a micro vacuum chuck (MVC) which can connect three-dimensional (3D) tissues to a tensile test system by vacuum pressure. Because the MVC fixes the 3D tissue by vacuum pressure generated on multiple vacuum holes, it is expected that the MVC can fix 3D tissue to the system easily and mitigate the damage which can happen by handling during fixing. In order to decide optimum conditions for the size of the vacuum holes and the vacuum pressure, various sized vacuum holes and vacuum pressures were applied to a normal human cardiac fibroblast 3D tissue. From the results, we confirmed that a square shape with 100 μm sides was better for fixing the 3D tissue. Then we mounted our developed MVCs on a specially developed tensile test system and measured the bio-mechanical property (beating force) of cardiac 3D tissue which was constructed of human induced pluripotent stem cell-derived cardiomyocytes (hiPS-CM); the 3D tissue had been assembled by the layer-by-layer (LbL) method. We measured the beating force of the cardiac 3D tissue and confirmed the measured force followed the Frank-Starling relationship. This indicates that the beating property of cardiac 3D tissue obtained by the LbL method was close to that of native cardiac tissue.
机译:在此报告中,我们提出了一种微型真空吸盘(MVC),该真空吸盘可以通过真空压力将三维(3D)组织连接到拉伸测试系统。由于MVC通过在多个真空孔上产生的真空压力来固定3D组织,因此期望MVC可以轻松地将3D组织固定到系统上,并减轻固定过程中操作可能造成的损坏。为了确定真空孔的大小和真空压力的最佳条件,将各种尺寸的真空孔和真空压力施加到正常人心脏成纤维细胞3D组织。从结果中,我们确认了侧面为100μm的正方形更适合固定3D组织。然后,我们将开发的MVC安装在专门开发的拉伸测试系统上,并测量了由人诱导的多能干细胞衍生的心肌细胞(hiPS-CM)构建的心脏3D组织的生物力学性能(搏动力); 3D组织已通过逐层(LbL)方法组装。我们测量了心脏3D组织的搏动力,并确认所测量的力服从Frank-Starling关系。这表明通过LbL方法获得的心脏3D组织的跳动特性接近天然心脏组织的跳动特性。

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