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Real-Time Impedance Monitoring of Epithelial Cultures with Inkjet-Printed Interdigitated-Electrode Sensors

机译:采用喷墨印刷的互脱电极传感器的上皮培养的实时阻抗监测

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摘要

From electronic devices to large-area electronics, from individual cells to skin substitutes, printing techniques are providing compelling applications in wide-ranging fields. Research has thus fueled the vision of a hybrid, printing platform to fabricate sensors/electronics and living engineered tissues simultaneously. Following this interest, we have fabricated interdigitated-electrode sensors (IDEs) by inkjet printing to monitor epithelial cell cultures. We have fabricated IDEs using flexible substrates with silver nanoparticles as a conductive element and SU-8 as the passivation layer. Our sensors are cytocompatible, have a topography that simulates microgrooves of 300 µm width and ~4 µm depth, and can be reused for cellular studies without detrimental in the electrical performance. To test the inkjet-printed sensors and demonstrate their potential use for monitoring laboratory-growth skin tissues, we have developed a real-time system and monitored label-free proliferation, migration, and detachment of keratinocytes by impedance spectroscopy. We have found that variations in the impedance correlate linearly to cell densities initially seeded and that the main component influencing the total impedance is the isolated effect of the cell membranes. Results obtained show that impedance can track cellular migration over the surface of the sensors, exhibiting a linear relationship with the standard method of image processing. Our results provide a useful approach for non-destructive in-situ monitoring of processes related to both in vitro epidermal models and wound healing with low-cost ink-jetted sensors. This type of flexible sensor as well as the impedance method are promising for the envisioned hybrid technology of 3D-bioprinted smart skin substitutes with built-in electronics.
机译:从电子设备到大面积电子设备,从个体细胞到皮肤替代品,印刷技术在宽范围的田地中提供了令人信服的应用。因此,研究推动了混合动力,印刷平台的视觉,以同时制造传感器/电子和生物工程组织。在这种兴趣之后,我们通过喷墨印刷制造了互指电极传感器(IDE)以监测上皮细胞培养物。我们使用具有银纳米颗粒的柔性基板具有制造的IDE,作为导电元件和SU-8作为钝化层。我们的传感器是细胞系势的,具有模拟300μm宽度和〜4μm深度的微型侵蚀性的地形,并且可以为蜂窝研究重复使用,而不有利于电气性能。为了测试喷墨印刷的传感器并证明他们对监测实验室生长皮肤组织的潜在用途,我们开发了一种实时系统,并通过阻抗光谱学监测了角蛋白细胞的无标记增殖,迁移和脱离。我们发现阻抗的变化线性地与最初接种的细胞密度相关,并且影响总阻抗的主要成分是细胞膜的分离效果。得到的结果表明,阻抗可以跟踪传感器表面上的蜂窝迁移,与图像处理的标准方法表现出线性关系。我们的结果提供了一种有用的方法,用于非破坏性原位监测与体外表皮模型和伤口愈合,与低成本的墨水喷射传感器有关的过程。这种类型的柔性传感器以及阻抗方法对带内置电子设备的3D-Bioplinted Smart Sell替代品的设想的混合技术很有希望。

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