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Near real time, accurate, and sensitive microbiological safety monitoring using an all-fibre spectroscopic fluorescence system

机译:使用全光纤光谱荧光系统进行近实时,准确,灵敏的微生物安全监控

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Enumeration of microorganisms is an essential microbiological task for many industrial sectors and research fields. Various tests for detection and counting of microorganisms are used today. However most of the current methods to enumerate bacteria require either long incubation time for limited accuracy, or use complicated protocols along with bulky equipment. We have developed an accurate, all-fibre spectroscopic system to measure fluorescence signal in-situ. In this paper, we examine the potential of this setup for near real time bacteria enumeration in aquatic environment. The concept is based on a well-known phenomenon that the fluorescence quantum yields of some nucleic acid stains significantly increase upon binding with nucleic acids of microorganisms. In addition we have used GFP labeled organisms. The fluorescence signal increase can be correlated to the amount of nucleic acid present in the sample. In addition we have used GFP labeled organisms. Our results show that we are able to detect a wide range of bacteria concentrations without dilution or filtration (1-10~8 CFU/ml) using different optical probes we designed. This high sensitivity is due to efficient light delivery with an appropriate collection volume and in situ fluorescence detection as well as the use of a sensitive CCD spectrometer. By monitoring the laser power, we can account for laser fluctuations while measuring the fluorescence signal which improves as well the system accuracy. A synchronized laser shutter allows us to achieve a high SNR with minimal integration time, thereby reducing the photobleaching effect. In summary, we conclude that our optical setup may offer a robust method for near real time bacterial detection in aquatic environment.
机译:微生物计数是许多工业部门和研究领域必不可少的微生物任务。如今,已使用各种检测和计数微生物的测试。但是,目前大多数细菌计数方法要么需要较长的孵育时间以限制准确性,要么需要使用复杂的规程以及庞大的设备。我们已经开发出了一种精确的全光纤光谱系统,可以现场测量荧光信号。在本文中,我们研究了这种设置在水生环境中近实时细菌计数的潜力。该概念基于众所周知的现象,即某些核酸染色剂的荧光量子产率在与微生物的核酸结合后显着增加。另外,我们使用了GFP标记的生物。荧光信号的增加可以与样品中存在的核酸的量相关。另外,我们使用了GFP标记的生物。我们的结果表明,使用我们设计的不同光学探针,我们无需稀释或过滤即可检测多种细菌浓度(1-10〜8 CFU / ml)。如此高的灵敏度归因于有效的光传输以及适当的采集量和原位荧光检测,以及使用了敏感的CCD光谱仪。通过监视激光功率,我们可以在测量荧光信号时考虑到激光波动,从而改善了系统精度。同步激光快门使我们能够以最小的积分时间获得高SNR,从而降低了光漂白效果。总之,我们得出的结论是,我们的光学装置可能为水生环境中近实时细菌检测提供可靠的方法。

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