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Voltammetric electronic tongue combined with chemometric techniques for direct identification of creatinine level in human urine

机译:伏安电子舌联合化学计量技术,直接鉴定人类尿液中的肌酐水平

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Urinary creatinine content (UCC) has been investigated as a promising approach for health states monitoring. Most of the techniques used for UCC detection are non-portable and require dilution with other reagents. This study aims to investigate the ability of a Voltammetric Electronic tongue (VE-tongue) combined with chemometrics to discriminate and identify UCC patterns of 59 volunteers without any dilution. The UCC measured by VE-tongue system were related with those found by Jaffe's reaction as a reference method. Loading analysis was carried out to examine the electrodes and features contribution. Principal Component Analysis (PCA) and Support Vector Machines (SVMs) were implemented to analyze VE-tongue data. Furthermore, Partial Least Squares-regression (PLS-regression) was trained to correlate VE-tongue data with the reference measurement in order to build and validate a prediction model for UCC determination. The obtained results demonstrate that PCA and SVMs could classified urine samples into three classes according to low, medium and high creatinine levels (CLs). Promising findings were also obtained in the identification of a new measurement set. Moreover, high correlation coefficients were obtained between the electrochemical technique and spectroscopic Jaffe's method using PLS-regression. This demonstrates a well promising tool for simple alternative process for UCC determination without dilution.
机译:已被调查为尿毒素内容(UCC)作为卫生国家监测的有希望的方法。用于UCC检测的大多数技术是不便携的并且需要用其他试剂稀释。本研究旨在探讨伏安电子舌(Ve-Tumpue)与化学计量学结合的能力,以区分和识别59志愿者的UCC模式而无需任何稀释。由Ve-Tumnue系统测量的UCC与Jaffe反应作为参考方法发现的UCC有关。进行加载分析以检查电极和特征贡献。实施主成分分析(PCA)和支持向量机(SVM)以分析VE舌数据。此外,临时最小二乘回归(PLS回归)训练以与参考测量相关联,以便构建和验证UCC确定的预测模型。所得结果表明,根据低,中和高肌酐水平(CLS),PCA和SVM可以将尿液样本分为三类。在鉴定新的测量集中也获得了有希望的发现。此外,在使用PLS回归的电化学技术和光谱族族的方法之间获得了高相关系数。这证明了一种用于UCC确定的简单替代过程的良好有希望的工具,无需稀释。

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