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Application of Multivariate Statistical Analysis to Simultaneous Spectrophotometric Enzymatic Determination of Glucose and Cholesterol in Serum Samples

机译:多元统计分析在同时光度法酶法测定血清样品中葡萄糖和胆固醇中的应用

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摘要

A method using UV-Vis spectroscopy and multivariate tools for simultaneous determination of glucose and cholesterol was developed in this paper. The method is based on the development of the reaction between the analytes (cholesterol and glucose) and enzymatic reagents. The spectra were analyzed by partial least squares regression and artificial neural networks. The precision estimated between nominal and calculate concentration demonstrate that artificial neural network model was adequate to quantify both analytes in serum samples, since the % relative error obtained was in the interval from 5.1 to 8.3. The proposed model was applied to analyze blood serum samples, and the results are similar compared to those obtained employing the reference method.
机译:本文开发了一种使用紫外-可见光谱和多变量工具同时测定葡萄糖和胆固醇的方法。该方法基于分析物(胆固醇和葡萄糖)与酶试剂之间反应的发展。通过偏最小二乘回归和人工神经网络分析光谱。在标称浓度和计算浓度之间估算的精度表明,人工神经网络模型足以量化血清样品中的两种分析物,因为获得的相对误差百分比在5.1到8.3之间。所提出的模型用于分析血清样品,与使用参考方法获得的结果相比,结果相似。

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