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Pathogen identification with laser-induced breakdown spectroscopy: The effect of bacterial and biofluid specimen contamination

机译:激光诱导击穿光谱法鉴定病原体:细菌和生物流体标本污染的影响

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摘要

In this paper, the potential use of laser-induced breakdown spectroscopy (LIBS) for the rapid discrimination and identification of bacterial pathogens in realistic clinical specimens is investigated. Specifically, the common problem of sample contamination was studied by creating mixed samples to investigate the effect that the presence of a second contaminant bacterium in the specimen had on the LIBS-based identification of the primary pathogen. Two closely related bacterial specimens, Escherichia coli strain ATCC 25922 and Enterobacter cloacae strain ATCC 13047, were mixed together in mixing fractions of 10:1, 100:1, and 1000:1. LIBS spectra from the three mixtures were reliably classified as the correct E. coli strain with 98.5% accuracy when all the mixtures were withheld from the training model and classified against spectra from pure specimens. To simulate a rapid test for the presence of urinary tract infection pathogens, LIBS spectra were obtained from specimens of Staphylococcus epidermidis obtained from distilled water and sterile urine. LIBS spectra from the urine-harvested bacteria were classified as S. epidermidis with 100% accuracy when classified using a model containing only spectra from other Staphylococci species and with 88.5% accuracy when a model containing five genera of bacteria was utilized. Bacterial specimens comprising five different genera and 13 classifiable taxonomic groups of species and strains were compiled in a library that was tested using external validation techniques. The importance of utilizing external validation techniques where the library is tested with data withheld from all previous testing and training of the model was revealed by comparing the results against u22leave-one-outu22 cross-validation results. Last, the effect of using sequential models for the classification of a single unknown spectrum was investigated by comparing the misclassification of two closely related bacteria, E. coli and E. cloacae, when the classification was first performed using the five-genus bacterial library and then with a smaller model consisting only of E. coli and E. cloacae specimens. This result shows the utility of using successively more targeted analyses and models that use preliminary classifications from more general models as input.
机译:本文研究了激光诱导击穿光谱法(LIBS)在实际临床标本中快速鉴别和鉴定细菌病原体的潜在用途。具体而言,通过创建混合样本来研究样本污染的常见问题,以研究样本中第二种污染细菌的存在对基于LIBS的主要病原体鉴定的影响。将两个密切相关的细菌标本,即大肠杆菌菌株ATCC 25922和阴沟肠杆菌菌株ATCC 13047,以10:1、100:1和1000:1的混合比例混合在一起。当将所有混合物从训练模型中保留下来,并根据纯样品的光谱进行分类时,将这三种混合物的LIBS光谱可靠地分类为正确的大肠杆菌菌株,准确度为98.5%。为了模拟尿路感染病原体的快速检测,从蒸馏水和无菌尿液中获得的表皮葡萄球菌标本获得了LIBS光谱。当使用仅包含来自其他葡萄球菌物种的光谱的模型进行分类时,将来自收集了尿液的细菌的LIBS光谱以100%的准确性分类为表皮葡萄球菌,而使用包含五个细菌属的模型则将其分类为表皮葡萄球菌。其准确性为88.5%。将包含五个不同属和13个可分类分类物种和菌株的细菌标本编译到一个使用外部验证技术进行测试的库中。通过将结果与 leave-one-out u22交叉验证结果进行比较,揭示了使用外部验证技术的重要性,其中使用从以前所有测试和模型训练中获得的数据对库进行测试。最后,通过比较两种密切相关的细菌(大肠杆菌和阴沟肠杆菌)的误分类(使用五属细菌文库进行首次分类时)来研究使用顺序模型对单个未知光谱进行分类的效果。然后使用仅由大肠杆菌和阴沟肠标本组成的较小模型。此结果显示了使用连续更针对性的分析和模型的实用性,这些分析和模型使用来自更一般模型的初步分类作为输入。

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