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A nanoporous alumina microelectrode array for functional cell-chip coupling

机译:用于功能性细胞-芯片偶联的纳米多孔氧化铝微电极阵列

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摘要

The design of electrode interfaces has a strong impact on cell-based bioelectronic applications. We present a new type of microelectrode array chip featuring a nanoporous alumina interface. The chip is fabricated in a combination of top-down and bottom-up processes using state-of-the-art clean room technology and self-assembled generation of nanopores by aluminum anodization. The electrode characteristics are investigated in phosphate buffered saline as well as under cell culture conditions. We show that the modified microelectrodes exhibit decreased impedance compared to planar microelectrodes, which is caused by a nanostructuring effect of the underlying gold during anodization. The stability and biocompatibility of the device are demonstrated by measuring action potentials from cardiomyocyte-like cells growing on top of the chip. Cross sections of the cell-surface interface reveal that the cell membrane seals the nanoporous alumina layer without bending into the sub-50 nm apertures. The nanoporous microelectrode array device may be used as a platform for combining extracellular recording of cell activity with stimulating topographical cues.
机译:电极界面的设计对基于细胞的生物电子应用有很大影响。我们提出了一种新型的具有纳米多孔氧化铝界面的微电极阵列芯片。该芯片采用自上而下和自下而上的工艺制造,结合了最先进的洁净室技术和铝阳极氧化技术自组装生成的纳米孔。在磷酸盐缓冲盐水中以及在细胞培养条件下研究电极特性。我们显示,与平面微电极相比,改性微电极表现出降低的阻抗,这是由阳极氧化过程中底层金的纳米结构效应引起的。通过测量在芯片顶部生长的心肌样细胞的动作电位,可以证明该装置的稳定性和生物相容性。细胞表面界面的横截面表明,细胞膜密封了纳米多孔氧化铝层,而没有弯曲到低于50 nm的孔中。纳米多孔微电极阵列装置可用作将细胞活性的细胞外记录与刺激形貌线索相结合的平台。

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