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Quantifying Microorganisms at Low Concentrations Using Digital Holographic Microscopy (DHM)

机译:使用数字全息显微镜(DHM)对低浓度的微生物进行定量

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摘要

Accurately detecting and counting sparse bacterial samples has many applications in the food, beverage, and pharmaceutical processing industries, in medical diagnostics, and for life detection by robotic missions to other planets and moons of the solar system. Currently, sparse bacterial samples are counted by culture plating or epifluorescence microscopy. Culture plates require long incubation times (days to weeks), and epifluorescence microscopy requires extensive staining and concentration of the sample. Here, we demonstrate how to use off-axis digital holographic microscopy (DHM) to enumerate bacteria in very dilute cultures (100-104 cells/mL). First, the construction of the custom DHM is discussed, along with detailed instructions on building a low-cost instrument. The principles of holography are discussed, and a statistical model is used to estimate how long videos should be to detect cells, based on the optical performance characteristics of the instrument and the concentration of the bacterial solution (>Table 2). Video detection of cells at 105, 104, 103, and 100 cells/mL is demonstrated in real time using un-reconstructed holograms. Reconstruction of amplitude and phase images is demonstrated using an open-source software package.
机译:准确地检测和计数稀疏细菌样本在食品,饮料和制药加工行业,医学诊断以及通过自动执行对太阳系其他行星和卫星的机器人任务进行的生命检测中具有许多应用。当前,稀疏细菌样品通过培养板或落射荧光显微镜计数。培养板需要较长的孵育时间(数天至数周),而落射荧光显微镜需要对样本进行大量染色和浓缩。在这里,我们演示了如何使用离轴数字全息显微镜(DHM)来计数非常稀薄的培养物中的细菌(100-10 4 个细胞/ mL)。首先,讨论了定制DHM的构造,以及有关构建低成本仪器的详细说明。讨论了全息术的原理,并使用统计模型根据仪器的光学性能特征和细菌溶液的浓度来估计应检测视频多长时间(>表2 )。使用未重建的全息图实时演示了10 5 ,10 4 ,10 3 和100细胞/ mL的细胞的视频检测。使用开源软件包演示了幅度和相位图像的重建。

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