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通过生物芯片上的实时环介导等温扩增技术对水中进行监测。

Monitoring in Water through Real-Time Loop-Mediated Isothermal Amplification on Biochips.

作者信息

Wang Yuxin, Chan Yun-Sheng, Lee Eugene, Shi Donglu, Lee Chen-Yi, Diao Jiajie

机构信息

Department of Cancer Biology, University of Cincinnati College of Medicine, Cincinnati, OH 45267, USA.

The Materials Science and Engineering Program, Department of Mechanical and Materials Engineering, College of Engineering and Applied Science, University of Cincinnati, Cincinnati, OH 45221, USA.

出版信息

Micromachines (Basel). 2024 Aug 31;15(9):1112. doi: 10.3390/mi15091112.

Abstract

Access to clean water is fundamental to public health and safety, serving as the cornerstone of well-being in communities. Despite the significant investments of millions of dollars in water testing and treatment processes, the United States continues to grapple with over 7 million waterborne-related cases annually. This persistent challenge underscores the pressing need for the development of a new, efficient, rapid, low-cost, and reliable method for ensuring water quality. The urgency of this endeavor cannot be overstated, as it holds the potential to safeguard countless lives and mitigate the pervasive risks associated with contaminated water sources. In this study, we introduce a biochip LAMP assay tailored for water source monitoring. Our method swiftly detects even extremely low concentrations of () in water, and 10 copies/μL of aqueous solution could yield positive results within 15 min on a PC-MEDA biochip. This innovation marks a significant departure from the current reliance on lab-dependent methods, which typically necessitate several days for bacterial culture and colony counting. Our multifunctional biochip system not only enables the real-time LAMP testing of crude samples but also holds promise for future modifications to facilitate on-site usage, thereby revolutionizing water quality assessment and ensuring rapid responses to potential contamination events.

摘要

获得清洁水对公众健康和安全至关重要,是社区福祉的基石。尽管在水质检测和处理过程中投入了数百万美元,但美国每年仍有超过700万起与水传播相关的病例。这一持续存在的挑战凸显了开发一种新的、高效、快速、低成本且可靠的水质检测方法的迫切需求。这项工作的紧迫性再怎么强调也不为过,因为它有可能保护无数生命,并降低与受污染水源相关的普遍风险。在本研究中,我们引入了一种专为水源监测量身定制的生物芯片环介导等温扩增(LAMP)检测方法。我们的方法能够快速检测出水中极低浓度的(),在PC-MEDA生物芯片上,10拷贝/μL的水溶液在15分钟内即可产生阳性结果。这一创新与目前依赖实验室的方法有很大不同,后者通常需要几天时间进行细菌培养和菌落计数。我们的多功能生物芯片系统不仅能够对粗()样本进行实时LAMP检测,还有望在未来进行改进以方便现场使用,从而彻底改变水质评估方式,并确保对潜在污染事件做出快速响应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eff5/11434098/461ef79965e1/micromachines-15-01112-g001.jpg

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