测量过氧化氢瞬态浓度梯度的电化学微电极阵列

Siddarth V. Sridharan, J. F. Rivera, Xin Jin, D. Janes, J. Rickus, M. Alam
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引用次数: 0

摘要

了解神经元中神经递质释放和再摄取等生物过程,癌细胞中适应细胞代谢的葡萄糖转运涉及测量扩散时间常数从几百毫秒到几分钟不等的动态浓度梯度。[1]许多先前的电化学传感器报告使用单电极,并使用诸如采用移动探针的自参考方法等技术实现空间信息。这些方法的缺点是设置复杂,时间和空间分辨率差,不适合便携式,多分析物,高通量应用。[2]在这项工作中,一组可单独寻址的铂微电极被用于瞬态和梯度的安培测量,具有快速的响应时间和良好的空间分辨率。目标分析物过氧化氢(H2O2)是酶促反应(例如葡萄糖与葡萄糖氧化酶)中产生的次级物质,它负责氧化还原反应,从而在这些系统中产生电极电流。由于H2O2氧化的反应常数很大,相关的电流响应近似于传感器电极的固有响应时间。为了产生局部梯度/瞬态,并最终模拟细胞功能,使用大型铂盘电极(LPE)作为偏置控制的H2O2汇[3],其时间常数低至1s。
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Electrochemical micro-electrode arrays for measurement of transient concentration gradients of hydrogen peroxide
Understanding biological processes such as neurotransmitter release and reuptake in neurons, glucose transport for adapted cell metabolism in cancer cells involves measuring dynamic concentration gradients with diffusion time constants varying from a few hundred milliseconds to a few minutes. [1] Many prior electrochemical sensor reports utilize single electrodes, and achieve spatial information using techniques such as the self-referencing approach, which employs a moving probe. These approaches suffer from setup complexity, poor temporal and spatial resolution and poor suitability for portable, multi-analyte, high throughput applications. [2] In this work, an array of individually addressable platinum micro-electrodes was employed for amperometric measurement of transients and gradients with fast response time and good spatial resolution. The target analyte, hydrogen peroxide (H2O2), is the secondary species generated in enzymatic reactions (e.g. glucose with glucose oxidase), and is responsible for the redox reaction that lead to electrode current in such systems. Since the reaction constant for oxidation of H2O2 is large, the associated current response approximates the inherent response time of the sensor electrodes. In order to generate local gradients/transients, and eventually to mimic cellular function, a large platinum disk electrode (LPE) was used as a bias-controlled H2O2 sink [3], with time constants as low as 1s.
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