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Direct classification of related species of fungal endophytes (Epichloe spp.) using visible and near-infrared spectroscopy and multivariate analysis

机译:使用可见光和近红外光谱法和多元分析法对真菌内生菌(Epichloe spp。)的相关物种进行直接分类

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摘要

The aim of this work was to investigate the potential of visible and near-infrared (Vis-NIR) reflectance spectroscopy for the classification of three morphologically similar species of fungal endophytes of grasses. Vis-NIR spectra (400-2498 nm) from 34 isolates of Epichloe sylvatica, 32 of Epichloe typhina and 38 of Epichloe festucae were recorded directly from fresh mycelium growing in potato dextrose agar plates. Multivariate procedures applied to the spectral data were discriminant modified partial least squares regression, soft independent modelling of class analogy and discriminant partial least squares regressions (PLS1, PLS2). Several types of data pretreatments were tested to develop the classification models. The best predictive models were achieved with PLS2 analysis; with this method, 90% of E. typhina and 100% of E. festucae and E. sylvatica external validation samples were successfully classified. These results show the potential of Vis-NIR spectroscopy combined with multivariate analysis as a rapid method for classifying morphologically similar species of filamentous fungi.
机译:这项工作的目的是研究可见和近红外(Vis-NIR)反射光谱法对三种形态相似的草类真菌内生菌种进行分类的潜力。直接从马铃薯右旋糖琼脂平板上生长的新鲜菌丝体中记录了来自34个西番莲分离物,32个鼠伤寒埃希氏菌和38个伊希伯奇氏菌的Vis-NIR光谱(400-2498 nm)。应用于光谱数据的多元程序为判别式修正的偏最小二乘回归,类比的软独立建模和判别式的偏最小二乘回归(PLS1,PLS2)。测试了几种类型的数据预处理以开发分类模型。通过PLS2分析可获得最佳的预测模型;用这种方法,成功地将90%的鼠伤寒沙门氏菌和100%的景天沙棘和艾尔·西尔维斯塔菌外部验证样品成功分类。这些结果表明,Vis-NIR光谱技术与多变量分析相结合可作为对形态相似的丝状真菌进行快速分类的方法。

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