Ultra-fast identification of lactic acid bacteria colonies based on droplet microcavity label-free SERS

被引:2
作者
Shang, Lindong [1 ,2 ,3 ,4 ]
Wang, Yu [1 ,2 ,3 ,4 ]
Chen, Fuyuan [1 ,2 ,3 ,4 ]
Peng, Hao [1 ,2 ,3 ,4 ]
Bao, Xiaodong [1 ,2 ,3 ,4 ]
Tang, Xusheng [1 ,2 ,3 ,4 ]
Liu, Kunxiang [1 ,2 ,3 ,4 ]
Xu, Lei [6 ]
Xiao, Dongyang [5 ]
Liang, Peng [1 ,2 ,3 ,4 ,5 ]
Li, Bei [1 ,2 ,3 ,4 ,5 ]
机构
[1] Changchun Inst Opt, Chinese Acad Sci, Fine Mech & Phys, Changchun 130033, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] State Key Lab Appl Opt, Changchun 130033, Peoples R China
[4] Chinese Acad Sci, Key Lab Adv Mfg Opt Syst, Changchun 130033, Peoples R China
[5] HOOKE Instruments Ltd, Changchun 130031, Peoples R China
[6] Jiangnan Univ, Natl Engn Res Ctr Cereal Fermentat & Food Biomfg, Wuxi 214122, Peoples R China
关键词
Bacterial colony; Droplet microcavity; Lactic acid bacteria; Machine learning; SERS; INFRARED RAMAN-SPECTROSCOPY; ASSAY;
D O I
10.1016/j.lwt.2024.116435
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
In this study, we addressed the challenge of excessive fluorescence background in bacterial colony Raman detection and aimed to achieve rapid identification of colonies. To overcome this issue, we employed a combination of droplet microcavity and label-free Surface Enhanced Raman Spectroscopy (SERS) technologies for spectroscopic analysis of five species of lactic acid bacteria (LAB) colonies during fermentation. This approach, coupled with Supported Vector Machine (SVM) and K-Nearest Neighbors (KNN) machine learning algorithms, facilitated the identification and analysis of spectral data. Comparing the results with conventional bacterial colony Raman spectra, the SERS spectra exhibited clear peaks, a higher and more stable signal-to-noise ratio, and noticeable spectral differences between various colonies, overcoming the limitations of insufficient fluorescence background. Moreover, the detection speed was notably enhanced, each SERS spectrum requires only 0.5 s, and the acquisition of the 100 spectral data points necessary for one bacterial colony is accomplished in less than 1 min. The SVM algorithm demonstrated a bacterial colony identification rate exceeding 95%, while the KNN algorithm achieved a rate surpassing 90%. These findings highlight the practical importance of using droplet microcavity combined with label-free SERS technology for quick and robust identification of the bacterial colonies.
引用
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页数:8
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