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Free-standing kinked nanowire transistor probes for targeted intracellular recording in three dimensions

纳米线 移液管 纳米技术 材料科学 晶体管 炸薯条 小型化 光电子学 纳米尺度 化学 计算机科学 电气工程 电压 电信 工程类 物理化学
作者
Quan Qing,Zhe Jiang,Lin Xu,Ruixuan Gao,Liqiang Mai,Charles M. Lieber
出处
期刊:Nature Nanotechnology [Nature Portfolio]
卷期号:9 (2): 142-147 被引量:243
标识
DOI:10.1038/nnano.2013.273
摘要

Recording intracellular (IC) bioelectrical signals is central to understanding the fundamental behaviour of cells and cell networks in, for example, neural and cardiac systems1,2,3,4. The standard tool for IC recording, the patch-clamp micropipette5 is applied widely, yet remains limited in terms of reducing the tip size, the ability to reuse the pipette5 and ion exchange with the cytoplasm6. Recent efforts have been directed towards developing new chip-based tools1,2,3,4,7,8,9,10,11,12,13, including micro-to-nanoscale metal pillars7,8,9, transistor-based kinked nanowires10,11 and nanotube devices12,13. These nanoscale tools are interesting with respect to chip-based multiplexing, but, so far, preclude targeted recording from specific cell regions and/or subcellular structures. Here we overcome this limitation in a general manner by fabricating free-standing probes in which a kinked silicon nanowire with an encoded field-effect transistor detector serves as the tip end. These probes can be manipulated in three dimensions within a standard microscope to target specific cells or cell regions, and record stable full-amplitude IC action potentials from different targeted cells without the need to clean or change the tip. Simultaneous measurements from the same cell made with free-standing nanowire and patch-clamp probes show that the same action potential amplitude and temporal properties are recorded without corrections to the raw nanowire signal. In addition, we demonstrate real-time monitoring of changes in the action potential as different ion-channel blockers are applied to cells, and multiplexed recording from cells by independent manipulation of two free-standing nanowire probes. A nanowire-based probe for recording intracellular electrical signals can be manipulated in three dimensions to target specific cells or cell regions.

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