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Optical Biosensing of Bacteria and Bacterial Communities

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Journal J Anal Test
Date 2018 Apr 6
PMID 29619271
Citations 8
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Abstract

Bacterial sensing is important for understanding the numerous roles bacteria play in nature and in technology, understanding and managing bacterial populations, detecting pathogenic bacterial infections, and preventing the outbreak of illness. Current analytical challenges in bacterial sensing center on the dilemma of rapidly acquiring quantitative information about bacteria with high detection efficiency, sensitivity, and specificity, while operating within a reasonable budget and optimizing the use of ancillary tools, such as multivariate statistics. This review starts from a general description of bacterial sensing methods and challenges, and then focuses on bacterial characterization using optical methods including Raman spectroscopy and imaging, infrared spectroscopy, fluorescence spectroscopy and imaging, and plasmonics, including both extended and localized surface plasmon resonance spectroscopy. The advantages and drawbacks of each method in relation to the others are discussed, as are their applications. A particularly promising direction in bacterial sensing lies in combining multiple approaches to achieve multiplex analysis, and examples where this has been achieved are highlighted.

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References
1.
Pahlow S, Meisel S, Cialla-May D, Weber K, Rosch P, Popp J . Isolation and identification of bacteria by means of Raman spectroscopy. Adv Drug Deliv Rev. 2015; 89:105-20. DOI: 10.1016/j.addr.2015.04.006. View

2.
Wang K, Zeng Y, Yang X, Li W, Lan X . Utility of aptamer-fluorescence in situ hybridization for rapid detection of Pseudomonas aeruginosa. Eur J Clin Microbiol Infect Dis. 2010; 30(2):273-8. DOI: 10.1007/s10096-010-1074-0. View

3.
Cheng I, Chang H, Chen T, Hu C, Yang F . Rapid (<5 min) identification of pathogen in human blood by electrokinetic concentration and surface-enhanced Raman spectroscopy. Sci Rep. 2013; 3:2365. PMC: 3734443. DOI: 10.1038/srep02365. View

4.
Polisetti S, Bible A, Morrell-Falvey J, Bohn P . Raman chemical imaging of the rhizosphere bacterium Pantoea sp. YR343 and its co-culture with Arabidopsis thaliana. Analyst. 2016; 141(7):2175-82. DOI: 10.1039/c6an00080k. View

5.
Bloos F, Reinhart K . Rapid diagnosis of sepsis. Virulence. 2013; 5(1):154-60. PMC: 3916369. DOI: 10.4161/viru.27393. View