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Oriented and Vectorial Patterning of Cardiac Myocytes Using a Microfluidic Dielectrophoresis Chip - Towards Engineered Cardiac Tissue with Controlled Macroscopic Anisotropy

机译:定向和矢量模式的心肌细胞使用微流控介电泳芯片-走向具有受控的宏观各向异性的工程心脏组织

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Recently, the ability to create engineered heart tissues with a preferential cell orientation has gained much interest. Here, we present a novel method to construct a cardiac myocyte tissue-like structure using a combination of dielectrophoresis and electro-orientation via a microfluidic chip. Using the interdigitated-castellated microelectrodes, the induction of a mutually attractive dielectrophoretic force between cardiac myocytes can lead the cells moving close to each other and forming a tissue-like structure with orientation along the AC electric field between the electrode gaps. Both experimental results and theoretical analysis have indicated that a large orientation torque and force can be achieved by choosing an optimal frequency and decreasing the conductivity of the medium to a low level, where the orientation torque weakly depends on the frequency. In this paper, electromechanical experiments were performed to demonstrate the structural and functional anisotropy of the electro-oriented structure.
机译:近来,产生具有优先的细胞取向的工程化心脏组织的能力引起了人们的极大兴趣。在这里,我们提出了一种新颖的方法,通过介电电泳和通过微流控芯片的电定向的组合来构建心肌细胞组织样结构。使用叉指状的微电极,在心肌细胞之间相互吸引的介电泳力的感应可以导致细胞彼此靠近移动,并形成沿着电极间隙之间的交流电场定向的组织状结构。实验结果和理论分析均表明,通过选择最佳频率并将介质的电导率降低至较低水平即可获得较大的定向扭矩和作用力,而定向扭矩几乎不依赖于频率。在本文中,进行了机电实验,以证明电取向结构的结构和功能各向异性。

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