Center for Advanced Sensor Technology, University of Maryland Baltimore County, Baltimore, MD, 21250, USA.
Department of Computer Science and Electrical Engineering, University of Maryland Baltimore County, Baltimore, MD, 21250, USA.
Sci Rep. 2023 Jul 26;13(1):12084. doi: 10.1038/s41598-023-38770-x.
Rapid and accurate bioburden detection has become increasingly necessary for food, health, pharmaceutical and environmental applications. To detect bioburden accurately, and in a highly sensitive manner, we have fabricated a novel microfluidic device with an integrated filter to trap the cells. Bioburden is detected on the filter paper in situ using the redox reaction of fluorescent label resorufin and a portable multichannel fluorometer is used for fluorescence measurement. The microfluidic device was fabricated in a facile, low-cost, and rapid way with microwave-induced thermally assisted bonding. To characterize the bonding quality of the microfluidic cassettes, different tests were performed, and the filter paper material and size were optimized. Primary Bacillus subtilis culture bacterial samples were filtered through the device to validate and investigate the performance parameters. Our results show that a limit of detection (LOD) of 0.037 CFU/mL can be achieved through this microfluidic device whereas the LOD in a normal microfluidic cassette in the fluorometer and the golden standard spectrophotometer are 0.378 and 0.128 CFU/mL respectively. The results depict that three to ten times LOD improvement is possible through this microfluidic cassette and more sensitive detection is possible depending on the volume filtered within a rapid 3 min. This novel microfluidic device along with the fluorometer can be used as a rapid portable tool for highly sensitive, accurate and high-throughput bacterial detection for different applications.
快速准确地检测生物负荷对于食品、健康、制药和环境应用变得越来越重要。为了准确、灵敏地检测生物负荷,我们制造了一种带有集成过滤器的新型微流控装置来捕获细胞。生物负荷在原位使用荧光标记物 Resorufin 的氧化还原反应在滤纸上进行检测,并使用便携式多通道荧光计进行荧光测量。微流控装置采用简便、低成本、快速的微波诱导热辅助键合方法制造。为了表征微流控盒的键合质量,进行了不同的测试,并对滤纸材料和尺寸进行了优化。通过该装置过滤枯草芽孢杆菌原代培养细菌样品,以验证和研究性能参数。我们的结果表明,通过该微流控装置可以达到 0.037 CFU/mL 的检测限(LOD),而在荧光计和金标准分光光度计中的普通微流控盒的 LOD 分别为 0.378 和 0.128 CFU/mL。结果表明,通过这种微流控盒可以提高三到十倍的 LOD,并且可以根据在快速 3 分钟内过滤的体积进行更灵敏的检测。这种新型微流控装置和荧光计可以作为一种快速、便携的工具,用于不同应用的高灵敏度、准确和高通量细菌检测。