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Development of an Integrated Microfluidic Perfusion Cell Culture System for Real-Time Microscopic Observation of Biological Cells

机译:用于生物细胞实时显微镜观察的集成微流灌注细胞培养系统的开发

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This study reports an integrated microfluidic perfusion cell culture system consisting of a microfluidic cell culture chip, and an indium tin oxide (ITO) glass-based microheater chip for micro-scale perfusion cell culture, and its real-time microscopic observation. The system features in maintaining both uniform, and stable chemical or thermal environments, and providing a backflow-free medium pumping, and a precise thermal control functions. In this work, the performance of the medium pumping scheme, and the ITO glass microheater were experimentally evaluated. Results show that the medium delivery mechanism was able to provide pumping rates ranging from 15.4 to 120.0 μL·min−1. In addition, numerical simulation and experimental evaluation were conducted to verify that the ITO glass microheater was capable of providing a spatially uniform thermal environment, and precise temperature control with a mild variation of ±0.3 °C. Furthermore, a perfusion cell culture was successfully demonstrated, showing the cultured cells were kept at high cell viability of 95 ± 2%. In the process, the cultured chondrocytes can be clearly visualized microscopically. As a whole, the proposed cell culture system has paved an alternative route to carry out real-time microscopic observation of biological cells in a simple, user-friendly, and low cost manner.
机译:这项研究报告了一个集成的微流灌注细胞培养系统,该系统由微流细胞培养芯片和基于铟锡氧化物(ITO)的用于微尺度灌注细胞培养的玻璃微加热器芯片组成,并进行实时显微镜观察。该系统的特点是维持均匀和稳定的化学或热环境,并提供无回流的介质泵送和精确的热控制功能。在这项工作中,对介质泵送方案和ITO玻璃微加热器的性能进行了实验评估。结果表明,介质输送机理能够提供15.4〜120.0μL·min -1 的泵送速率。另外,进行了数值模拟和实验评估,以验证ITO玻璃微加热器能够提供空间均匀的热环境,并能以±0.3°C的温和变化进行精确的温度控制。此外,成功地证明了灌注细胞培养,表明培养的细胞保持在95±2%的高细胞存活率。在此过程中,可以通过显微镜清楚地观察培养的软骨细胞。总体而言,拟议的细胞培养系统为以简单,用户友好和低成本的方式对生物细胞进行实时显微镜观察铺平了另一条途径。

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