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Long-term viability of photosynthetic cells stacked in a hydrogel film within a polydimethylsiloxane microfluidic device

机译:聚二甲基硅氧烷微流体装置内水凝胶薄膜中堆叠的光合细胞的长期生存能力

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Immobilizing cells while maintaining their long-term viability is important to utilize cells in biosensors and energy devices. In this study, we fabricated a hydrogel film of 10 mu m thickness immobilizing photosynthetic cells, using a polydimethylsiloxane microfluidic device, and we monitored the viability of the cells for 30 days. Cell viability was measured by chronoamperometry using two electrodes located in the microfluidic device and was compared between hydrogel-immobilized and non-immobilized cells. The non-immobilized cells showed variation in viability. In contrast, the hydrogel-immobilized cells remained viable for 30 days. A simulation of the oxygen distribution changes by photosynthesis of the cells and mass transfer of cell culture nutrients (NaNO3) suggested that a proper environment for cell survival was effectively established inside the hydrogel. We successfully fabricated a photosynthetic cell-laden hydrogel with potential use in next-generation photosynthesis-based solar cells and sensors.
机译:固定细胞同时保持其长期生存能力,对于在生物传感器和能量设备中利用细胞非常重要。在这项研究中,我们使用聚二甲基硅氧烷微流体装置制造了10微米厚的固定化光合细胞的水凝胶膜,并监测了细胞的生存期为30天。使用位于微流体装置中的两个电极通过计时电流法测量细胞活力,并在水凝胶固定和非固定细胞之间进行比较。未固定的细胞显示出活力的变化。相反,固定有水凝胶的细胞可存活30天。通过细胞的光合作用和细胞培养养分(NaNO3)的质量转移对氧分布变化的模拟表明,在水凝胶内部有效地建立了合适的细胞存活环境。我们成功地制造了一种光合作用负载的水凝胶,该水凝胶可用于下一代基于光合作用的太阳能电池和传感器。

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