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A micro-Raman and chemometric study of urinary tract infection-causing bacterial pathogens in mixed cultures

机译:微拉曼和化学计量研究尿路感染导致混合培养中的细菌病原体

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Detection of urinary tract infection (UTI)-causing bacteria uses conventional time-consuming microbiological techniques. The current need is to use a fast and reliable method of bacterial identification. In order to unambiguously distinguish the UTI-causing five bacterial species used in the current study, micro-Raman spectra were obtained from a home-assembled micro-Raman system and analyzed by multivariate statistical techniques such as principal component analysis (PCA), partial least square-discriminate analysis (PLS-DA), and support vector machine (SVM). Also, the micro-Raman spectra recorded from samples containing two and three bacterial species were tested and validated against the aforementioned calibration models using PLS-DA and SVM. The prediction accuracies of up to 73 and 89% were achieved with PLS-DA and SVM, respectively. Taken together, the present study depicts the capturing of unique micro-Raman spectral features manifesting from the biochemical content of each bacterium. Also, micro-Raman spectroscopy combined with multivariate data analysis can therefore be a reliable and faster technique for the diagnosis of UTI-causing bacteria.
机译:检测尿路感染(UTI) - 用于细菌使用常规耗时的微生物技术。目前的需要是使用快速可靠的细菌鉴定方法。为了明确地区分uti导致的五种在当前研究中使用的细菌种类,从家用的微拉曼系统获得微拉曼光谱,并通过多变量统计技术(如主成分分析(PCA),部分最少分析方辨别分析(PLS-DA)和支持向量机(SVM)。此外,从包含两和三种细菌种类的样品中记录的微拉曼光谱通过PLS-DA和SVM测试并验证上述校准模型。通过PLS-DA和SVM实现高达73和89%的预测精度。在一起,本研究描绘了捕获从每种细菌的生化含量表现出的独特微拉曼光谱特征。此外,微拉曼光谱与多变量数据分析相结合,因此可以是诊断UTI导致细菌的可靠和更快的技术。

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