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首页> 外文期刊>Lab on a chip >The application of an optically switched dielectrophoretic (ODEP) force for the manipulation and assembly of cell-encapsulating alginate microbeads in a microfluidic perfusion cell culture system for bottom-up tissue engineering
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The application of an optically switched dielectrophoretic (ODEP) force for the manipulation and assembly of cell-encapsulating alginate microbeads in a microfluidic perfusion cell culture system for bottom-up tissue engineering

机译:光开关介电电泳(ODEP)力在用于自下而上组织工程的微流灌注细胞培养系统中操纵和组装囊封藻酸盐微珠的应用

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This study reports the utilisation of an optically switched dielectrophoretic (ODEP) force for the manipulation and assembly of cell-encapsulating alginate microbeads in a microfluidic perfusion cell culture system for bottom-up tissue engineering. One of the key features of this system is the ODEP force-based mechanism, which allows a commercial projector to be coupled with a computer to manipulate and assemble cell-encapsulating microbeads in an efficient, manageable, and user-friendly manner. Another distinctive feature is the design of the microfluidic cell culture chip, which allows the patterned cell-encapsulating microbeads to be cultivated on site under culture medium perfusion conditions. For demonstrating its application in bottom-up cartilage tissue engineering, chondrocyte-encapsulating alginate microbeads varying in encapsulated cell densities were generated. The manipulation forces associated with operating the alginate microbeads were experimentally evaluated. The results revealed that the measured manipulation forces increased with increases in both the applied electric voltage and the number of cells in the alginate microbeads. Nevertheless, the observed manipulation force was found to be independent of the size of the cell-free alginate microbeads. It can be speculated that the friction force may influence the estimation of the ODEP force within the experimental conditions investigated. In this study, chondrocyte-encapsulating alginate microbeads with three different cell densities were manipulated and assembled in the proposed microfluidic system to form a compact sheet-like cell culture construct that imitates the cell distribution in the cross-section of native articular cartilage. Moreover, the demonstration case also showed that the cell viability of the cultured cells in the microfluidic system remained as high as 96 ± 2%. In this study, four sheet-like cell culture constructs were stacked to create a larger assembled cell culture construct. The cell distribution inside the cell culture construct was further confirmed by a confocal microscopy observation, which showed that the distribution was similar to that in native articular cartilage. As a whole, the proposed system holds great promise as a platform for engineering tissue constructs with easily tunable inner cell distributions.
机译:这项研究报告了利用光开关介电电泳(ODEP)力在用于自下而上的组织工程的微流灌注细胞培养系统中操纵和组装细胞封装藻酸盐微珠。该系统的关键特征之一是基于ODEP力的机制,该机制允许将商用投影仪与计算机耦合,以高效,可管理和用户友好的方式操纵和组装包裹细胞的微珠。另一个独特的特征是微流体细胞培养芯片的设计,该芯片允许在培养基灌注条件下就地培养图案化的包裹细胞的微珠。为了证明其在自下而上的软骨组织工程中的应用,生成了囊化细胞密度的软骨细胞包囊藻酸盐微珠。通过实验评估了与藻酸盐微珠操作有关的操纵力。结果表明,测得的操纵力随施加电压和藻酸盐微珠中细胞数量的增加而增加。然而,发现观察到的操纵力与无细胞藻酸盐微珠的大小无关。可以推测,在所研究的实验条件下,摩擦力可能会影响ODEP力的估计。在这项研究中,具有三种不同细胞密度的囊化软骨细胞的藻酸盐微珠在拟议的微流体系统中进行了操纵和组装,以形成紧凑的片状细胞培养构建体,该构建体模仿了天然关节软骨横截面上的细胞分布。此外,示范案例还表明,微流系统中培养细胞的细胞活力仍高达96±2%。在这项研究中,四个薄片状细胞培养构建体被堆叠以创建更大的组装细胞培养构建体。共聚焦显微镜观察进一步证实了细胞培养物构建体内的细胞分布,这表明该分布与天然关节软骨中的分布相似。总体而言,拟议的系统作为具有易于调节的内部细胞分布的工程组织构造的平台具有广阔的前景。

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