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High-throughput nanohole array based system to monitor multiple binding events in real time

机译:基于高通量纳米孔阵列的系统可实时监控多个结合事件

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We have developed an integrated label-free, real-time sensing system that is able to monitor multiple biomolecular binding events based on the changes in the intensity of extraordinary optical transmission (EOT) through nanohole arrays. The core of the system is a sensing chip containing multiple nanohole arrays embedded within an optically thick gold film, where each array functions as an independent sensor. Each array is a square array containing 10 x 10 nanoholes (150 nm in diameter), occupying a total area of 3.3 mu m x 3.3 mu m. The integrated system includes a laser light source, a temperature-regulated flow cell encasing the sensing chip, motorized optics, and a charge-coupled detector (CCD) camera. For demonstration purposes, sensing chips containing 25 nanohole arrays were studied for their use in multiplexed detection, although the sensing chip could be easily populated to contain up to 20 164 nanohole arrays within its 0.64 cm(2) sensing area. Using this system, we successfully recorded 25 separate binding curves between glutathione S-transferase (GST) and anti-GST simultaneously in real time with good sensitivity. The system responds to binding events in a concentration-dependent manner, showing a sharp linear response to anti-GST at concentrations ranging from 13 to 290 nM. The EOT intensity-based approach also enables the system to monitor multiple bindings simultaneously and continuously, offering a temporal resolution on milliseconds scale that is decided only by the camera speed and exposure time. The small footprint of the sensing arrays combined with the EOT intensity-based approach enables the system to resolve binding events that occurred on nanohole sensing arrays spaced 96 mu m apart, with a reasonable prediction of resolving binding events spaced 56 mu m apart. This work represents a new direction that implements nanohole arrays and EOT intensity to meet high-throughput, spatial and temporal resolution, and sensitivity requirements in drug discovery and proteomics studies.
机译:我们已经开发了一个集成的无标签实时传感系统,该系统能够基于通过纳米孔阵列的非凡光学传输(EOT)强度的变化来监视多个生物分子结合事件。该系统的核心是一个感应芯片,该感应芯片包含多个纳米孔阵列,这些阵列嵌入光学厚的金膜中,其中每个阵列都充当一个独立的传感器。每个阵列是包含10 x 10纳米孔(直径150 nm)的正方形阵列,总面积为3.3μmx 3.3μm。该集成系统包括一个激光光源,一个装有传感芯片的温度调节流通池,电动光学系统以及一个电荷耦合检测器(CCD)摄像机。出于演示目的,研究了包含25个纳米孔阵列的传感芯片在多重检测中的应用,尽管该传感芯片可以很容易地填充到在其0.64 cm(2)传感区域内包含多达20164个纳米孔阵列。使用该系统,我们成功地实时实时记录了25条单独的谷胱甘肽S-转移酶(GST)和抗GST之间的结合曲线,并具有良好的灵敏度。该系统以浓度依赖性方式响应结合事件,在浓度范围为13至290 nM的情况下,显示出对抗GST的强烈线性响应。基于EOT强度的方法还使系统能够同时连续监视多个绑定,从而提供毫秒级的时间分辨率,该分辨率仅由相机速度和曝光时间决定。与基于EOT强度的方法相结合的传感阵列占位面积小,使系统能够解决在间隔为96μm的纳米孔传感阵列上发生的结合事件,并有合理的预测来解决间隔为56μm的结合事件。这项工作代表了实现纳米孔阵列和EOT强度以满足药物发现和蛋白质组学研究中的高通量,时空分辨率和灵敏度要求的新方向。

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