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Microfluidic devices for construction of contractile skeletal muscle microtissues

机译:用于构建收缩性骨骼肌微组织的微流体装置

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Cell-culture microchips mimicking tissue/organ-specific functions are required as alternatives to animal testing for drug discovery and disease models. Although three-dimensional (3D) cell culture microfluidic devices can create more biologically relevant cellular microenvironments and higher throughput analysis platforms of cell behavior than conventional techniques, devices for skeletal muscle cells have not been developed. In the present study, we aimed to develop microfluidic devices for 3D cultures of skeletal muscle cells. Skeletal muscle cells mixed with a collagen type-I solution was introduced into the microchannel for cells (MC-C) and was gelated. Then, the medium was introduced into the microchannel for medium (MC-M). During this process, connecting microchannels (Con-MCs) prevented leakage of the collagen solution mixed with cells from MC-C to MC-M and supplied the nutrients from the medium in MC-M to the cells in MC-C. Skeletal muscle microtissues cultured in the microchannel for a week consisted of myotubes were confirmed by histological analysis and immunofluorescence staining. The skeletal muscle microtissues in the microchannel contracted in response to externally applied electrical stimulation (1 and 50 Hz). These results indicate that the functional skeletal muscle microtissues were constructed in the microchannel. Thus, the microfluidic device for culturing 3D skeletal muscle microtissues presented in this study has a potential to be used for drug discovery and toxicological tests. (C) 2014, The Society for Biotechnology, Japan. All rights reserved.
机译:需要模仿组织/器官特定功能的细胞培养微芯片,作为药物发现和疾病模型的动物测试的替代方法。尽管与常规技术相比,三维(3D)细胞培养微流体设备可以创建生物学上更相关的细胞微环境和更高的细胞行为分析平台,但尚未开发出用于骨骼肌细胞的设备。在本研究中,我们旨在开发用于骨骼肌细胞3D培养的微流控设备。将与I型胶原蛋白溶液混合的骨骼肌细胞引入细胞微通道(MC-C)并凝胶化。然后,将培养基引入培养基微通道(MC-M)。在此过程中,连接微通道(Con-MCs)可防止与细胞混合的胶原蛋白溶液从MC-C泄漏到MC-M,并从MC-M的培养基向MC-C的细胞提供营养。通过组织学分析和免疫荧光染色证实了在微通道中培养了一周的由肌管组成的骨骼肌微组织。微通道中的骨骼肌微组织响应于外部施加的电刺激(1和50 Hz)而收缩。这些结果表明,在微通道中构建了功能性骨骼肌微组织。因此,本研究中介绍的用于培养3D骨骼肌微组织的微流控设备具有用于药物发现和毒理学测试的潜力。 (C)2014,日本生物技术学会。版权所有。

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