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Study of Real-Time Spatial and Temporal Behavior of Bacterial Biofilms Using 2-D Impedance Spectroscopy

机译:使用2-D阻抗光谱研究细菌生物膜的实时空间和时间行为研究

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Objective: The purpose of this paper is to demonstrate the use of 2-D impedance spectroscopy to identify areas of biofilm growth on a CMOS biosensor microelectrode-array. Methods: This paper presents the design and use of a novel multichannel impedance spectroscopy instrument to allow 2-D spatial and temporal evaluation of biofilm growth. The custom-designed circuits can provide a wide range of frequencies (1 Hz-100 kHz) to allow customization of impedance measurements, as the frequency of interest varies based on the type and state of biofilm under measurement. The device is capable of taking measurements as fast as once per second on the entire set of impedance sensors, allowing real-time observation. It also supports adjustable stimulus voltages. The distance between neighboring sensors is 220 micrometers which provides reasonable spatial resolution for biofilm study. Results: Biofilm was grown on the surface of the chip, occupancy was measured using the new tool, and the results were validated optically using fluorescent staining. The results show that the developed tool can be used to determine the bacterial biofilm presence at a given location. Conclusion: This paper confirms that 2-D impedance spectroscopy can be used to measure biofilm occupancy. The new tool developed to perform the measurements was able to display real-time results, and determine biofilm coverage of the array electrodes. Significance: The system presented in this report is the first fully integrated 2-D EIS measurement system with full software support for capturing biofilm growth dynamics in real-time. Due to its ability to nondestructively monitor biofilms over time, 2-D impedance spectroscopy using a microelectrode-array is a useful tool for studying biofilms.
机译:目的:本文的目的是证明使用2-D阻抗光谱法识别CMOS生物传感器微电极阵列上的生物膜生长区域。方法:本文提出了一种新型多通道阻抗光谱仪的设计和使用,以允许生物膜生长的2-D空间和时间评估。定制设计的电路可以提供广泛的频率(1 Hz-100 kHz),以允许自定义阻抗测量,因为感兴趣的频率是基于测量下生物膜的类型和状态。该装置能够在整个阻抗传感器上每秒快速测量,允许实时观察。它还支持可调节的刺激电压。相邻传感器之间的距离是220微米,为生物膜研究提供合理的空间分辨率。结果:生物膜在芯片表面上生长,使用新工具测量占用率,并使用荧光染色光学验证结果。结果表明,开发的工具可用于在给定位置确定细菌生物膜存在。结论:本文证实2-D阻抗光谱可用于测量生物膜占用率。开发用于执行测量的新工具能够显示实时结果,并确定阵列电极的生物膜覆盖。意义:本报告中提供的系统是第一个完全集成的2-D EIS测量系统,具有全面的软件支持,可以实时捕获生物膜生长动态。由于其能够随着时间的推移进行无损监测生物膜,使用微电极阵列的2-D阻抗光谱是用于研究生物膜的有用工具。

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