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Determination of enantiomeric composition of tryptophan by using fluorescence spectroscopy combined with backward interval partial least squares

机译:荧光光谱结合反向间隔偏最小二乘法测定色氨酸的对映体组成

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The application of backward interval partial least squares (BiPLS) method to fluorescence spectroscopy analysis was studied. A method which combines BiPLS and fluorescence spectroscopy was developed for determining the enantiomeric composition of tryptophan (Trp). Fluorescence spectroscopy was utilized to measure the interaction between Trp enantiomers and bovine serum albumin, which is the chiral selector of the two enantiomers. BiPLS was used to select spectral regions and build the calibration model. In terms of BiPLS, five spectral regions were selected and used to develop the calibration model between the spectral data and enantiomeric composition of Trp. In addition, a full-spectrum PLS model and two local-spectrum PLS models were developed in order to make a comparison to the BiPLS model. The prediction performance of the established models was assessed by external test validation and leave-one-out cross-validation. The BiPLS model shows the highest prediction accuracy among these models. For the BiPLS model, the root mean square relative error of external test validation and leave-one-out validation was 6.59% and 5.67%, respectively. It is demonstrated that fluorescence spectroscopy combined with BiPLS is a practicable method for determining the enantiomeric composition of Trp at trace levels. When there is 2.50 mmol L-1 Trp in the samples, the enantiomeric composition of Trp can be accurately determined. Furthermore, the result demonstrates that spectral region selection can significantly influence the fluorescence spectroscopy analysis and BiPLS is a practicable method for the spectral region selection in fluorescence spectroscopy analysis.
机译:研究了后向间隔偏最小二乘(BiPLS)方法在荧光光谱分析中的应用。开发了一种结合BiPLS和荧光光谱法测定色氨酸(Trp)对映体组成的方法。荧光光谱法用于测量Trp对映体和牛血清白蛋白之间的相互作用,牛血清白蛋白是两种对映体的手性选择剂。 BiPLS用于选择光谱区域并建立校准模型。就BiPLS而言,选择了五个光谱区域并用于建立光谱数据与Trp的对映体组成之间的校准模型。另外,为了与BiPLS模型进行比较,还开发了全光谱PLS模型和两个局部光谱PLS模型。通过外部测试验证和留一法交叉验证来评估已建立模型的预测性能。在这些模型中,BiPLS模型显示出最高的预测准确性。对于BiPLS模型,外部测试验证和留一法验证的均方根相对误差分别为6.59%和5.67%。结果表明,荧光光谱结合BiPLS是测定痕量Trp对映体组成的可行方法。当样品中存在2.50 mmol L-1 Trp时,可以准确确定Trp的对映体组成。此外,结果表明,光谱区域选择可以显着影响荧光光谱分析,而BiPLS是在荧光光谱分析中用于光谱区域选择的可行方法。

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