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Probing Cellular Dynamics with a Chemical Signal Generator

机译:用化学信号发生器探测细胞动力学

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摘要

Observations of material and cellular systems in response to time-varying chemical stimuli can aid the analysis of dynamic processes. We describe a microfluidic “chemical signal generator,” a technique to apply continuously varying chemical concentration waveforms to arbitrary locations in a microfluidic channel through feedback control of the interface between parallel laminar (co-flowing) streams. As the flow rates of the streams are adjusted, the channel walls are exposed to a chemical environment that shifts between the individual streams. This approach can be used to probe the dynamic behavior of objects or substances adherent to the interior of the channel. To demonstrate the technique, we exposed live fibroblast cells to ionomycin, a membrane-permeable calcium ionophore, while assaying cytosolic calcium concentration. Through the manipulation of the laminar flow interface, we exposed the cells' endogenous calcium handling machinery to spatially-contained discrete and oscillatory intracellular disturbances, which were observed to elicit a regulatory response. The spatiotemporal precision of the generated signals opens avenues to previously unapproachable areas for potential investigation of cell signaling and material behavior.
机译:对随时间变化的化学刺激作出反应的物质和细胞系统的观察有助于分析动态过程。我们描述了一种微流体“化学信号发生器”,该技术通过对平行层流(同流)之间的界面进行反馈控制,将连续变化的化学浓度波形应用于微流体通道中的任意位置。随着物流的流速的调节,通道壁暴露于在各个物流之间移动的化学环境。该方法可用于探测粘附在通道内部的物体或物质的动态行为。为了证明该技术,我们在分析细胞溶质钙浓度的同时,将活成纤维细胞暴露于离子霉素(一种可透过膜的钙离子载体)中。通过层流接口的操纵,我们使细胞的内源钙处理机制暴露于空间上离散的和振荡的细胞内扰动,据观察这些扰动引起调节反应。所产生信号的时空精度为以前无法​​接近的领域开辟了道路,可用于研究细胞信号传导和物质行为。

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