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Rapid Identification and Classification of Listeria spp. and Serotype Assignment of Listeria monocytogenes Using Fourier Transform-Infrared Spectroscopy and Artificial Neural Network Analysis

机译:李斯特菌的快速鉴定和分类。傅里叶变换-红外光谱和人工神经网络分析法鉴定单核细胞增生李斯特菌的血清型和血清型

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摘要

The use of Fourier Transform-Infrared Spectroscopy (FT-IR) in conjunction with Artificial Neural Network software NeuroDeveloper™ was examined for the rapid identification and classification of Listeria species and serotyping of Listeria monocytogenes. A spectral library was created for 245 strains of Listeria spp. to give a biochemical fingerprint from which identification of unknown samples were made. This technology was able to accurately distinguish the Listeria species with 99.03% accuracy. Eleven serotypes of Listeria monocytogenes including 1/2a, 1/2b, and 4b were identified with 96.58% accuracy. In addition, motile and non-motile forms of Listeria were used to create a more robust model for identification. FT-IR coupled with NeuroDeveloper™ appear to be a more accurate and economic choice for rapid identification of pathogenic Listeria spp. than current methods.
机译:检查了傅立叶变换红外光谱(FT-IR)与人工神经网络软件NeuroDeveloper™的结合使用,以用于李斯特菌种类的快速鉴定和分类以及李斯特菌的血清分型。为245个李斯特菌属的菌株创建了一个光谱库。给出生化指纹,从中鉴定未知样品。这项技术能够以99.03%的准确度准确区分李斯特菌。鉴定出11种单核细胞增多性李斯特菌血清型,包括1 / 2a,1 / 2b和4b,准确度为96.58%。此外,利斯特氏菌的能动和非能动形式被用于创建更可靠的鉴定模型。 FT-IR结合NeuroDeveloper™似乎是快速鉴定病原性李斯特菌的更准确和经济的选择。比目前的方法。

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