Lin Ziliang Carter, Xie Chong, Osakada Yasuko, Cui Yi, Cui Bianxiao
Department of Applied Physics, Stanford University, Stanford, California 94305, USA.
Department of Material Science and Engineering, Stanford University, Stanford, California 94305, USA.
Nat Commun. 2014;5:3206. doi: 10.1038/ncomms4206.
Intracellular recording of action potentials is important to understand electrically-excitable cells. Recently, vertical nanoelectrodes have been developed to achieve highly sensitive, minimally invasive and large-scale intracellular recording. It has been demonstrated that the vertical geometry is crucial for the enhanced signal detection. Here we develop nanoelectrodes of a new geometry, namely nanotubes of iridium oxide. When cardiomyocytes are cultured upon those nanotubes, the cell membrane not only wraps around the vertical tubes but also protrudes deep into the hollow centre. We show that this nanotube geometry enhances cell-electrode coupling and results in larger signals than solid nanoelectrodes. The nanotube electrodes also afford much longer intracellular access and are minimally invasive, making it possible to achieve stable recording up to an hour in a single session and more than 8 days of consecutive daily recording. This study suggests that the nanoelectrode performance can be significantly improved by optimizing the electrode geometry.
动作电位的细胞内记录对于理解电兴奋性细胞很重要。最近,已开发出垂直纳米电极以实现高灵敏度、微创和大规模的细胞内记录。已经证明,垂直几何形状对于增强信号检测至关重要。在此,我们开发了一种新几何形状的纳米电极,即氧化铱纳米管。当心肌细胞培养在这些纳米管上时,细胞膜不仅围绕垂直管包裹,还深入到中空中心。我们表明,这种纳米管几何形状增强了细胞 - 电极耦合,并产生比实心纳米电极更大的信号。纳米管电极还提供更长时间的细胞内接入且微创,使得在单次记录中能够实现长达一小时的稳定记录以及连续多天超过8天的每日记录。这项研究表明,通过优化电极几何形状可以显著提高纳米电极性能。