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Sub-10-nm intracellular bioelectronic probes from nanowire–nanotube heterostructures

机译:纳米线-纳米管异质结构的亚-10-纳米细胞内生物电子探针

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摘要

The miniaturization of bioelectronic intracellular probes with a wide dynamic frequency range can open up opportunities to study biological structures inaccessible by existing methods in a minimally invasive manner. Here, we report the design, fabrication, and demonstration of intracellular bioelectronic devices with probe sizes less than 10 nm. The devices are based on a nanowire–nanotube heterostructure in which a nanowire field-effect transistor detector is synthetically integrated with a nanotube cellular probe. Sub-10-nm nanotube probes were realized by a two-step selective etching approach that reduces the diameter of the nanotube free-end while maintaining a larger diameter at the nanowire detector necessary for mechanical strength and electrical sensitivity. Quasi-static water-gate measurements demonstrated selective device response to solution inside the nanotube, and pulsed measurements together with numerical simulations confirmed the capability to record fast electrophysiological signals. Systematic studies of the probe bandwidth in different ionic concentration solutions revealed the underlying mechanism governing the time response. In addition, the bandwidth effect of phospholipid coatings, which are important for intracellular recording, was investigated and modeled. The robustness of these sub-10-nm bioelectronics probes for intracellular interrogation was verified by optical imaging and recording the transmembrane resting potential of HL-1 cells. These ultrasmall bioelectronic probes enable direct detection of cellular electrical activity with highest spatial resolution achieved to date, and with further integration into larger chip arrays could provide a unique platform for ultra-high-resolution mapping of activity in neural networks and other systems.
机译:具有宽动态频率范围的生物电子细胞内探针的小型化可以为以现有的方法以微创的方式研究难以接近的生物结构提供机会。在这里,我们报告探针尺寸小于10 nm的细胞内生物电子设备的设计,制造和演示。这些设备基于纳米线-纳米管异质结构,其中纳米线场效应晶体管检测器与纳米管细胞探针合成在一起。十纳米以下的纳米管探针是通过两步选择性蚀刻方法实现的,该方法可减小纳米管自由端的直径,同时在纳米线检测器上保持较大的直径,这对于机械强度和电灵敏度而言是必需的。准静态水闸测量证明了选择性器件对纳米管内部溶液的响应,脉冲测量与数值模拟一起证实了记录快速电生理信号的能力。对不同离子浓度溶液中探针带宽的系统研究揭示了控制时间响应的潜在机制。此外,对磷脂涂层的带宽效应(对细胞内记录很重要)进行了研究和建模。通过光学成像和记录HL-1细胞的跨膜静息电位,验证了这些亚10纳米以下生物电子探针对细胞内讯问的鲁棒性。这些超小型生物电子探针能够以迄今为止达到的最高空间分辨率直接检测细胞电活动,并且进一步集成到更大的芯片阵列中,可以为神经网络和其他系统中的活动超高分辨率映射提供独特的平台。

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