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Yeast viability and concentration analysis using lens-free computational microscopy and machine learning

机译:使用无透镜计算显微镜和机器学习的酵母活力和浓度分析

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Research laboratories and the industry rely on yeast viability and concentration measurements to adjust fermentation parameters such as pH, temperature, and pressure. Beer-brewing processes as well as biofuel production can especially utilize a cost-effective and portable way of obtaining data on cell viability and concentration. However, current methods of analysis are relatively costly and tedious. Here, we demonstrate a rapid, portable, and cost-effective platform for imaging and measuring viability and concentration of yeast cells. Our platform features a lens-free microscope that weighs 70 g and has dimensions of 12 × 4 × 4 cm. A partially-coherent illumination source (a light-emitting-diode), a band-pass optical filter, and a multimode optical fiber are used to illuminate the sample. The yeast sample is directly placed on a complementary metal-oxide semiconductor (CMOS) image sensor chip, which captures an in-line hologram of the sample over a large field-of-view of >20 mm~2. The hologram is transferred to a touch-screen interface, where a trained Support Vector Machine model classifies yeast cells stained with methylene blue as live or dead and measures cell viability as well as concentration. We tested the accuracy of our platform against manual counting of live and dead cells using fluorescent exclusion staining and a bench-top fluorescence microscope. Our regression analysis showed no significant difference between the two methods within a concentration range of 1.4 × 10~5 to 1.4 × 10~6 cells/mL. This compact and cost-effective yeast analysis platform will enable automatic quantification of yeast viability and concentration in field settings and resource-limited environments.
机译:研究实验室和行业依赖于酵母活力和浓度测量来调整发酵参数,如pH,温度和压力。啤酒酿造工艺以及生物燃料生产可以特别利用成本效益和便携式的获得细胞活力和浓度数据的方式。然而,目前的分析方法相对昂贵和乏味。在这里,我们展示了用于成像和测量活力和酵母细胞浓度的快速,便携式和经济高效的平台。我们的平台具有无镜头的显微镜,重70克,尺寸为12×4×4厘米。部分相干的照明源(发光二极管),带通滤波器和多模光纤光纤用于照亮样品。将酵母样品直接放置在互补金属氧化物半导体(CMOS)图像传感器芯片上,其在大视野> 20mm〜2的大视野上捕获样品的在线全息图。全息图转移到触摸屏界面,其中培训的支持向量机模型将用亚甲基蓝染色的酵母细胞分类为活或死亡,并测量细胞活力以及浓度。我们使用荧光排阻染色和台式荧光显微镜测试了我们平台的准确性。我们的回归分析显示在1.4×10〜5至1.4×10〜6个细胞/ ml的浓度范围内的两种方法之间没有显着差异。这种紧凑且经济高效的酵母分析平台将在现场设置和资源限制环境中自动定量酵母活力和浓度。

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