溶解
纳米光子学
光子学
实验室晶片
纳米技术
光热治疗
纳米孔
材料科学
微生物学
光电子学
微流控
生物
分子生物学
作者
Byungrae Cho,Sang Hun Lee,Jihwan Song,Saptati Bhattacharjee,Jeffrey Feng,SoonGweon Hong,Minsun Song,Won-Seok Kim,Jonghwan Lee,Doyeon Bang,Bowen Wang,Lee W. Riley,Luke P. Lee
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-11-22
卷期号:13 (12): 13866-13874
被引量:53
标识
DOI:10.1021/acsnano.9b04685
摘要
Rapid and precise detection of pathogens is a critical step in the prevention and identification of emergencies related to health and biosafety as well as the clinical management of community-acquired urinary tract infections or sexually transmitted diseases. However, a conventional culture-based pathogen diagnostic method is time-consuming, permitting physicians to use antibiotics without ample clinical data. Here, we present a nanophotonic Light-driven Integrated cell lysis and polymerase chain reaction (PCR) on a chip with Gravity-driven cell enrichment Health Technology (LIGHT) for rapid precision detection of pathogens (<20 min). We created the LIGHT, which has the three functions of (1) selective enrichment of pathogens, (2) photothermal cell lysis, and (3) photonic PCR on a chip. We designed the gravity-driven cell enrichment via a nanoporous membrane on a chip that allows an effective bacterial enrichment of 40 000-fold from a 1 mL sample in 2 min. We established a light-driven photothermal lysis of preconcentrated bacteria within 1 min by designing the network of nanoplasmonic optical antenna on a chip for ultrafast light-to-heat conversion, created the nanoplasmonic optical antenna network-based ultrafast photonic PCR on a chip, and identified Escherichia coli. Finally, we demonstrated the end-point detection of up to 103 CFU/mL of E. coli in 10 min. We believe that our nanophotonic LIGHT will provide rapid and precise identification of pathogens in both developing and developed countries.
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