Department of Mechanical Engineering , Johns Hopkins University , Baltimore , Maryland 21218 , United States.
Department of Biomedical Engineering , Johns Hopkins School of Medicine , Baltimore , Maryland 21205 , United States.
Anal Chem. 2018 Aug 7;90(15):9449-9456. doi: 10.1021/acs.analchem.8b02096. Epub 2018 Jul 17.
Simple, fast, and precise counting of viable bacteria is fundamental to a variety of microbiological applications such as food quality monitoring and clinical diagnosis. To this end, agar plating, microscopy, and emerging microfluidic devices for single bacteria detection have provided useful means for counting viable bacteria, but they also have their limitations ranging from complexity, time, and inaccuracy. We present herein our new method RAPiD (Resazurin-Amplified Picoarray Detection) for addressing this important problem. In RAPiD, we employ vacuum-assisted sample loading and oil-driven sample digitization to stochastically confine single bacteria in Picoarray, a microfluidic device with picoliter-sized isolation chambers (picochambers), in <30 s with only a few minutes of hands-on time. We add AlamarBlue, a resazurin-based fluorescent dye for bacterial growth, in our assay to accelerate the detection of "microcolonies" proliferated from single bacteria within picochambers. Detecting fluorescence in picochambers as an amplified surrogate for bacterial cells allows us to count hundreds of microcolonies with a single image taken via wide-field fluorescence microscopy. We have also expanded our method to practically test multiple titrations from a single bacterial sample in parallel. Using this expanded "multi-RAPiD" strategy, we can quantify viable cells in E. coli and S. aureus samples with precision in ∼3 h, illustrating RAPiD as a promising new method for counting viable bacteria for microbiological applications.
简单、快速且精确地计数活菌是各种微生物应用的基础,例如食品质量监测和临床诊断。为此,琼脂平板计数、显微镜检查以及用于单细胞检测的新兴微流控设备为活菌计数提供了有用的手段,但它们也存在从复杂性、时间和不准确性等方面的局限性。我们在此提出了一种新的方法 RAPiD(Resazurin 扩增皮克阵列检测)来解决这个重要问题。在 RAPiD 中,我们采用真空辅助样品加载和油驱动的样品数字化技术,在<30 秒内将单个细菌随机限制在皮克阵列(Picoarray)中,这是一种具有皮升级隔离室(皮克室)的微流控装置,整个过程仅需要几分钟的手动操作时间。我们在检测中添加了 AlamarBlue,这是一种基于 Resazurin 的荧光染料,用于细菌生长,以加速在皮克室内从单个细菌增殖的“微菌落”的检测。通过将皮克室内的荧光检测作为细菌细胞的放大替代物,我们可以使用宽场荧光显微镜拍摄的单个图像来计数数百个微菌落。我们还扩展了我们的方法,以便在单个细菌样本中并行实际测试多个滴定。使用这种扩展的“多 RAPiD”策略,我们可以在大约 3 小时内精确地定量 E. coli 和 S. aureus 样品中的活菌,这表明 RAPiD 是一种用于微生物应用的有前途的活菌计数新方法。