Rapid detection and identification of bacterial strains by Fourier transform near-infrared spectroscopy

被引:105
作者
Rodriguez-Saona, LE
Khambaty, FM
Fry, FS
Calvey, EM
机构
[1] US FDA, Washington, DC 20204 USA
[2] Univ Maryland, Dept Biochem & Chem, Joint Inst Food Safety & Appl Nutr, Washington, DC 20204 USA
关键词
FT-NIR spectroscopy; bacterial strains; PCA and classification;
D O I
10.1021/jf000776j
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
The use of Fourier transform near-infrared (FT-NIR) spectroscopy and multivariate pattern recognition techniques for the rapid detection and identification of bacterial contamination in liquids was evaluated. The complex biochemical composition of bacteria yields FT-NIR vibrational transitions (overtone and combination bands) that can be used for classification and identification. Bacterial suspensions (Escherichia coli HB101, E. coli ATCC 43888, E. coli 1224; Bacillus amyloliquifaciens, Pseudomonas aeruginosa, Bacillus cereus, and Listeria innocua) were filtered to harvest the cells and eliminate the matrix, which has a strong NIR signal. FT-NIR measurements were done using a diffuse reflection-integrating sphere. Principal component analysis showed tight clustering of the bacterial strains at the information-rich spectral region of 6000-4000 cm(-1). The method reproducibly distinguished between different E. coli isolates and conclusively identified the relationship between a new isolate and one of the test species. This methodology may allow for the rapid assessment of potential bacterial contamination in liquids with minimal sample preparation.
引用
收藏
页码:574 / 579
页数:6
相关论文
共 28 条
[1]   Chemometric analysis of diffuse reflectance-absorbance Fourier transform infrared spectra using rule induction methods: Application to the classification of Eubacterium species [J].
Alsberg, BK ;
Wade, WG ;
Goodacre, R .
APPLIED SPECTROSCOPY, 1998, 52 (06) :823-832
[2]   Raman and NIR spectroscopic methods for determination of total dietary fiber in cereal foods: A comparative study [J].
Archibald, DD ;
Kays, SE ;
Himmelsbach, DS ;
Barton, FE .
APPLIED SPECTROSCOPY, 1998, 52 (01) :22-31
[3]  
CIURCZAK EW, 1992, HDB NEAR INFRARED AN
[4]   THE USE OF PRINCIPAL COMPONENTS IN THE ANALYSIS OF NEAR-INFRARED SPECTRA [J].
COWE, IA ;
MCNICOL, JW .
APPLIED SPECTROSCOPY, 1985, 39 (02) :257-266
[5]  
CURK MC, 1994, FEMS MICROBIOL LETT, V123, P241, DOI [10.1111/j.1574-6968.1994.tb07231.x, 10.1016/0378-1097(94)90204-6]
[6]   POTENTIAL OF FOURIER-TRANSFORM NEAR-INFRARED SPECTROSCOPY IN STUDIES OF THE DISSOCIATION OF FATTY-ACIDS IN THE LIQUID-PHASE [J].
CZARNECKI, MA ;
LIU, YL ;
OZAKI, Y ;
SUZUKI, M ;
IWAHASHI, M .
APPLIED SPECTROSCOPY, 1993, 47 (12) :2162-2168
[7]   Characterization of hazardous aqueous samples by near-IR spectroscopy [J].
Espinoza, LH ;
Lucas, D ;
Littlejohn, D .
APPLIED SPECTROSCOPY, 1999, 53 (01) :97-102
[8]   CORRECTIONS TO THE BASE-LINE DISTORTIONS IN THE OH-STRETCH REGION OF AQUEOUS-SOLUTIONS [J].
FISCHER, WB ;
EYSEL, HH ;
NIELSEN, OF ;
BERTIE, JE .
APPLIED SPECTROSCOPY, 1994, 48 (01) :107-112
[9]   Rapid identification of urinary tract infection bacteria using hyperspectral whole-organism fingerprinting and artificial neural networks [J].
Goodacre, R ;
Timmins, ÉM ;
Burton, R ;
Kaderbhai, N ;
Woodward, AM ;
Kell, DB ;
Rooney, PJ .
MICROBIOLOGY-SGM, 1998, 144 :1157-1170
[10]   Near-infrared spectroscopic determination of acetate, ammonium, biomass, and glycerol in an industrial Escherichia coli fermentation [J].
Hall, JW ;
McNeil, B ;
Rollins, MJ ;
Draper, I ;
Thompson, BG ;
Macaloney, G .
APPLIED SPECTROSCOPY, 1996, 50 (01) :102-108