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用于口腔液体现场检测的下一代可编程生物纳米芯片系统

Next Generation Programmable Bio-Nano-Chip System for On-Site Detection in Oral Fluids.

作者信息

Christodoulides Nicolaos, De La Garza Richard, Simmons Glennon W, McRae Michael P, Wong Jorge, Newton Thomas F, Kosten Thomas R, Haque Ahmed, McDevitt John T

机构信息

Department of Bioengineering, Rice University, Houston TX, USA; Department of Chemistry, Rice University, Houston TX, USA.

Menninger Department of Psychiatry & Behavioral Sciences, Baylor College of Medicine, Houston TX, USA; Department of Pharmacology, Baylor College of Medicine, Houston TX, USA; Department of Neuroscience, Baylor College of Medicine, Houston TX, USA; Department of Veterans Affairs Medical Center, Houston, TX, USA.

出版信息

J Drug Abuse. 2015 Nov 23;1(1):1-6.

Abstract

Current on-site drug of abuse detection methods involve invasive sampling of blood and urine specimens, or collection of oral fluid, followed by qualitative screening tests using immunochromatographic cartridges. Test confirmation and quantitative assessment of a presumptive positive are then provided by remote laboratories, an inefficient and costly process decoupled from the initial sampling. Recently, a new noninvasive oral fluid sampling approach that is integrated with the chip-based Programmable Bio-Nano-Chip (p-BNC) platform has been developed for the rapid (~ 10 minutes), sensitive detection (~ ng/ml) and quantitation of 12 drugs of abuse. Furthermore, the system can provide the time-course of select drug and metabolite profiles in oral fluids. For cocaine, we observed three slope components were correlated with cocaine-induced impairment using this chip-based p-BNC detection modality. Thus, this p-BNC has significant potential for roadside drug testing by law enforcement officers. Initial work reported on chip-based drug detection was completed using 'macro' or "chip in the lab" prototypes, that included metal encased "flow cells", external peristaltic pumps and a bench-top analyzer system instrumentation. We now describe the next generation miniaturized analyzer instrumentation along with customized disposables and sampling devices. These tools will offer real-time oral fluid drug monitoring capabilities, to be used for roadside drug testing as well as testing in clinical settings as a non-invasive, quantitative, accurate and sensitive tool to verify patient adherence to treatment.

摘要

当前现场滥用药物检测方法包括对血液和尿液样本进行侵入性采样,或采集口腔液,然后使用免疫层析试纸条进行定性筛查测试。随后由远程实验室对推定阳性结果进行测试确认和定量评估,这是一个效率低下且成本高昂的过程,与初始采样脱节。最近,一种新的非侵入性口腔液采样方法已与基于芯片的可编程生物纳米芯片(p-BNC)平台集成,用于快速(约10分钟)、灵敏(约纳克/毫升)地检测和定量12种滥用药物。此外,该系统可以提供口腔液中选定药物和代谢物谱的时间进程。对于可卡因,我们观察到使用这种基于芯片的p-BNC检测方式,三个斜率成分与可卡因引起的损伤相关。因此,这种p-BNC在执法人员进行路边药物检测方面具有巨大潜力。最初报道的基于芯片的药物检测工作是使用“宏观”或“实验室芯片”原型完成的,其中包括金属外壳的“流动池”、外部蠕动泵和台式分析仪系统仪器。我们现在描述下一代小型化分析仪仪器以及定制的一次性用品和采样装置。这些工具将提供实时口腔液药物监测能力,可用于路边药物检测以及临床环境中的检测,作为一种非侵入性、定量、准确且灵敏的工具,以验证患者对治疗的依从性。

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