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Selectivity and Sensitivity of Near-Infrared Spectroscopic Sensing of β-Hydroxybutyrate, Glucose, and Urea in Ternary Aqueous Solutions

机译:β-羟基丁酸酯,葡萄糖和三元水溶液中尿素近红外光谱传感的选择性及敏感性

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摘要

The next-generation artificial pancreas is under development with the goal to enhance tight glycemic control for people with type 1 diabetes. Such technology requires the integration of a chemical sensing unit combined with an insulin infusion device controlled by an algorithm capable of autonomous operation. The potential of near-infrared spectroscopic sensing to serve as the chemical sensing unit is explored by demonstrating the ability to quantify multiple metabolic biomarkers from a single near-infrared spectrum. Independent measurements of β-hydroxy-butyrate, glucose, and urea are presented based on analysis of near-infrared spectra collected over the combination spectral range of 5000–4000 cm~(–1) for a set of 50 ternary aqueous standard solutions. Spectra are characterized by a 1 μAU root-mean-square (RMS) noise for 100% lines with a resolution of 4 cm~(–1) and an optical path length of 1 mm. Calibration models created by the net analyte signal (NAS) and the partial least squares (PLS) methods provide selective measurements for each analyte with standard errors of prediction in the upper micromolar concentration range. The NAS method is used to determine both the selectivity and sensitivity for each analyte and their values are consistent with these standard errors of prediction. The NAS method is also used to characterize the background spectral variance associated with instrumental and environmental variations associated with buffer spectra collected over a multiday period.
机译:下一代人工胰腺正在研发中,其目标是加强1型糖尿病患者的严格血糖控制。这种技术需要将化学传感单元与胰岛素输注装置相结合,胰岛素输注装置由能够自主操作的算法控制。通过展示从单一近红外光谱定量多种代谢生物标记物的能力,探索了近红外光谱传感作为化学传感单元的潜力。基于对一组50种三元水标准溶液在5000-4000 cm~(-1)组合光谱范围内收集的近红外光谱的分析,提出了β-羟基丁酸酯、葡萄糖和尿素的独立测量。光谱以100%谱线的1μAU均方根(RMS)噪声为特征,分辨率为4cm~(-1),光程长度为1mm。由净分析物信号(NAS)和偏最小二乘(PLS)方法创建的校准模型为每个分析物提供选择性测量,并在较高微摩尔浓度范围内具有标准预测误差。NAS方法用于确定每种分析物的选择性和灵敏度,其值与这些标准预测误差一致。NAS方法还用于描述与仪器和环境变化相关的背景光谱方差,这些背景光谱方差与多日期间收集的缓冲光谱相关。

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