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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >The Chemistrode: A Droplet-based Microfluidic Device For Stimulation And Recording With High Temporal, Spatial, And Chemical Resolution
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The Chemistrode: A Droplet-based Microfluidic Device For Stimulation And Recording With High Temporal, Spatial, And Chemical Resolution

机译:The Chemistrode:基于液滴的微流控设备,具有高时空,空间和化学分辨率,可用于刺激和记录

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Microelectrodes enable localized electrical stimulation and recording, and they have revolutionized our understanding of the spa-tiotemporal dynamics of systems that generate or respond to electrical signals. However, such comprehensive understanding of systems that rely on molecular signals-e.g., chemical communication in multicellular neural, developmental, or immune systems-remains elusive because of the inability to deliver, capture, and interpret complex chemical information. To overcome this challenge, we developed the "chemistrode," a plug-based microfluidic device that enables stimulation, recording, and analysis of molecular signals with high spatial and temporal resolution. Stimulation with and recording of pulses as short as 50 ms was demonstrated. A pair of chemistrodes fabricated by multilayer soft lithography recorded independent signals from 2 locations separated by 15 μm. Like an electrode, the chemistrode does not need to be built into an experimental system-it is simply brought into contact with a chemical or biological substrate, and, instead of electrical signals, molecular signals are exchanged. Recorded molecular signals can be injected with additional reagents and analyzed off-line by multiple, independent techniques in parallel (e.g., fluorescence correlation spectroscopy, MALDI-MS, and fluorescence microscopy). When recombined, these analyses provide a time-resolved chemical record of a system's response to stimulation. Insulin secretion from a single murine islet of Langerhans was measured at a frequency of 0.67 Hz by using the chemistrode. This article characterizes and tests the physical principles that govern the operation of the chemistrode to enable its application to probing local dynamics of chemically responsive matter in chemistry and biology.
机译:微电极实现了局部电刺激和记录,它们彻底改变了我们对产生或响应电信号的系统的时空动力学的理解。但是,由于无法传递,捕获和解释复杂的化学信息,因此对依赖分子信号的系统(例如多细胞神经系统,发育系统或免疫系统中的化学通讯)的这种全面理解仍然难以实现。为了克服这一挑战,我们开发了“化学杀虫剂”,这是一种基于塞子的微流体装置,能够以高时空分辨率刺激,记录和分析分子信号。演示了短至50 ms的脉冲刺激和记录功能。通过多层软光刻技术制造的一对化学棒记录了两个相距15μm位置的独立信号。就像电极一样,化学电极无需内置于实验系统中,只需将其与化学或生物底物接触即可,并且可以代替电信号交换分子信号。记录的分子信号可以注入其他试剂,并通过多种独立的并行技术离线分析(例如荧光相关光谱,MALDI-MS和荧光显微镜)。重新组合后,这些分析将提供时间分辨的化学记录,以记录系统对刺激的反应。通过使用化学电极,以0.67Hz的频率测量朗格汉斯的单个鼠类胰岛的胰岛素分泌。本文描述并测试了控制化学溶极操作的物理原理,以使其能够用于探测化学和生物学中化学反应性物质的局部动力学。

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