首页> 美国卫生研究院文献>Journal of Clinical Microbiology >Rapid identification of mycolic acid patterns of mycobacteria by high-performance liquid chromatography using pattern recognition software and a Mycobacterium library.
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Rapid identification of mycolic acid patterns of mycobacteria by high-performance liquid chromatography using pattern recognition software and a Mycobacterium library.

机译:使用模式识别软件和分枝杆菌文库通过高效液相色谱法快速鉴定分枝杆菌的分枝杆菌酸模式。

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摘要

Current methods for identifying mycobacteria by high-performance liquid chromatography (HPLC) require a visual assessment of the generated chromatographic data, which often involves time-consuming hand calculations and the use of flow charts. Our laboratory has developed a personal computer-based file containing patterns of mycolic acids detected in 45 species of Mycobacterium, including both slowly and rapidly growing species, as well as Tsukamurella paurometabolum and members of the genera Corynebacterium, Nocardia, Rhodococcus, and Gordona. The library was designed to be used in conjunction with a commercially available pattern recognition software package, Pirouette (Infometrix, Seattle, Wash.). Pirouette uses the K-nearest neighbor algorithm, a similarity-based classification method, to categorize unknown samples on the basis of their multivariate proximities to samples of a preassigned category. Multivariate proximity is calculated from peak height data, while peak heights are named by retention time matching. The system was tested for accuracy by using 24 species of Mycobacterium. Of the 1,333 strains evaluated, > or = 97% were correctly identified. Identification of M. tuberculosis (n = 649) was 99.85% accurate, and identification of the M. avium complex (n = 211) was > or = 98% accurate; > or = 95% of strains of both double-cluster and single-cluster M. gordonae (n = 47) were correctly identified. This system provides a rapid, highly reliable assessment of HPLC-generated chromatographic data for the identification of mycobacteria.
机译:当前通过高效液相色谱(HPLC)鉴定分枝杆菌的方法要求对生成的色谱数据进行目测评估,这通常涉及费时的人工计算和流程图的使用。我们的实验室已经开发出了基于个人计算机的文件,其中包含在45种分枝杆菌中检测到的霉菌酸模式,包括缓慢和快速生长的物种,以及冢卡氏杆菌和棒状杆菌,诺卡氏菌,红球菌和戈多纳菌属的成员。该库被设计为与可商购的模式识别软件包Pirouette(Infometrix,Seattle,Washington)结合使用。 Pirouette使用K-最近邻算法(一种基于相似度的分类方法),根据未知样本对预分配类别样本的多变量邻近度将其分类。多元接近度是根据峰高数据计算得出的,而峰高则通过保留时间匹配来命名。通过使用24种分枝杆菌对系统的准确性进行了测试。在所评估的1,333株菌株中,正确鉴定出>或= 97%。结核分枝杆菌(n = 649)的鉴定准确率为99.85%,鸟分枝杆菌复合体(n = 211)的鉴定准确度为>或= 98%; >或=正确鉴定了双簇和单簇M. gordonae(n = 47)菌株的95%。该系统可对HPLC生成的色谱数据进行快速,高度可靠的评估,以鉴定分枝杆菌。

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