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首页> 外文期刊>Biomedical Microdevices >Development of high-throughput perfusion-based microbioreactor platform capable of providing tunable dynamic tensile loading to cells and its application for the study of bovine articular chondrocytes
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Development of high-throughput perfusion-based microbioreactor platform capable of providing tunable dynamic tensile loading to cells and its application for the study of bovine articular chondrocytes

机译:能够为细胞提供可调节的动态拉伸负荷的高通量灌注型生物反应器平台的开发及其在牛关节软骨细胞研究中的应用

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摘要

Mammalian cells are sensitive to extracellular micro-environments. In order to precisely explore the physiological responses of cells to tensile loading, a stable and well-defined culture condition is required. In this study, a high-throughput perfusion-based microbioreactor platform capable of providing dynamic equibiaxial tensile loading to the cultured cells under a steady culture condition was proposed. The mechanism of generating tensile stimulation to cells is based on the pneumatically-driven deformation of an elastic polydimethylsiloxan (PDMS) membrane which exerts tensile loading to the attached cells. By modulating the magnitude and frequency of the applied pneumatic pressure, various tensile loading can be generated in a controllable manner. In this study, the microbioreactor platform was designed with the aid of the experimentally-validated finite element (FE) analysis to ensure the loading of tensile strain to cells is uniform and definable. Based on this design, the quantitative relationship between the applied pneumatic pressure and the generated tensile strain on the PDMS membrane was established via FE analysis. Results demonstrated that the proposed device was able to generate the tensile strain range (0-0.12), which covers the physiological condition that articular chondrocytes experience tensile strain under human walking condition. In this study, moreover, the effect of tensile loading on the metabolic, biosynthetic and proliferation activities of articular chondrocytes was investigated. Results disclosed that the dynamic tensile loading of 0.12 strain at 1 Hz might significantly up-regulate the synthesis of glycosaminoglycans while such stimulation was found no significant influence on the metabolic activity, the synthesis of collagen, and the proliferation of chondrocytes. Overall, this study has presented a high throughput perfusion micro cell culture device that is suitable for precisely exploring the effect of tensile loading on cell physiology.
机译:哺乳动物细胞对细胞外微环境敏感。为了精确地探索细胞对拉伸负荷的生理反应,需要稳定且定义明确的培养条件。在这项研究中,提出了一种高通量的基于灌注的生物反应器平台,该平台能够在稳定的培养条件下为培养的细胞提供动态等双轴拉伸载荷。对细胞产生拉伸刺激的机制基于弹性聚二甲基硅氧烷(PDMS)膜的气动变形,该膜对附着的细胞施加拉伸载荷。通过调节所施加气压的大小和频率,可以以可控制的方式产生各种拉伸载荷。在这项研究中,借助实验验证的有限元(FE)分析设计了微型生物反应器平台,以确保向细胞加载的拉伸应变均匀且可定义。基于此设计,通过有限元分析,建立了施加的气压与PDMS膜上产生的拉伸应变之间的定量关系。结果表明,所提出的装置能够产生拉伸应变范围(0-0.12),该范围涵盖了关节软骨细胞在人类行走条件下经受拉伸应变的生理条件。此外,在这项研究中,研究了拉伸负荷对关节软骨细胞代谢,生物合成和增殖活性的影响。结果表明,在1 Hz处0.12应变的动态拉伸载荷可能会显着上调糖胺聚糖的合成,而发现这种刺激对代谢活性,胶原蛋白的合成和软骨细胞的增殖没有显着影响。总的来说,这项研究提出了一种高通量灌注微细胞培养装置,适用于精确探索拉伸负荷对细胞生理的影响。

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