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A Biosensor-CMOS Platform and Integrated Readout Circuit in 0.18-μm CMOS Technology for Cancer Biomarker Detection

机译:0.18-μmCMOS技术中的生物传感器-CMOS平台和集成读出电路,用于癌症生物标志物检测

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摘要

This paper presents a biosensor-CMOS platform for measuring the capacitive coupling of biorecognition elements. The biosensor is designed, fabricated, and tested for the detection and quantification of a protein that reveals the presence of early-stage cancer. For the first time, the spermidine/spermine N1 acetyltransferase (SSAT) enzyme has been screened and quantified on the surface of a capacitive sensor. The sensor surface is treated to immobilize antibodies, and the baseline capacitance of the biosensor is reduced by connecting an array of capacitors in series for fixed exposure area to the analyte. A large sensing area with small baseline capacitance is implemented to achieve a high sensitivity to SSAT enzyme concentrations. The sensed capacitance value is digitized by using a 12-bit highly digital successive-approximation capacitance-to-digital converter that is implemented in a 0.18 μm CMOS technology. The readout circuit operates in the near-subthreshold regime and provides power and area efficient operation. The capacitance range is 16.137 pF with a 4.5 fF absolute resolution, which adequately covers the concentrations of 10 mg/L, 5 mg/L, 2.5 mg/L, and 1.25 mg/L of the SSAT enzyme. The concentrations were selected as a pilot study, and the platform was shown to demonstrate high sensitivity for SSAT enzymes on the surface of the capacitive sensor. The tested prototype demonstrated 42.5 μS of measurement time and a total power consumption of 2.1 μW.
机译:本文提出了一种用于测量生物识别元件电容耦合的生物传感器CMOS平台。该生物传感器经过设计,制造和测试,可以检测和定量揭示早期癌症存在的蛋白质。首次在电容传感器的表面上筛选并定量了亚精胺/亚精胺N1乙酰转移酶(SSAT)酶。处理传感器表面以固定抗体,并通过将电容器阵列串联连接以固定暴露区域到分析物来降低生物传感器的基线电容。实现了具有较小基线电容的大传感区域,以实现对SSAT酶浓度的高灵敏度。通过使用以0.18μmCMOS技术实现的12位高度数字逐次逼近电容数字转换器,将检测到的电容值数字化。读出电路以接近阈值的状态工作,并提供功率和面积有效的工作。电容范围为16.137 pF,绝对分辨率为4.5 fF,足以覆盖10 mg / L,5 mg / L,2.5 mg / L和1.25 mg / L SSAT酶的浓度。选择浓度作为先导研究,并显示该平台证明对电​​容传感器表面的SSAT酶具有高度敏感性。经过测试的原型展示了42.5μS的测量时间和2.1μW的总功耗。

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