使用微流控芯片实验室技术实现daphtoxkit-F生物测试自动化

Yushi Huang, D. Nugegoda, D. Wlodkowic
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引用次数: 5

摘要

加强水质监测不仅是一项法律要求,而且对于确保及时对化学品危害作出应急反应以及保护人类和动物健康也至关重要。生物指征是一种利用非常敏感的生物体的自然反应来检测环境变化的方法。虽然生物指标不能提供水样中有毒物质的确切类型或强度的信息,但它们确实提供了关于有害和危险参数存在的总体概况和早期预警信息。尽管对前哨生物进行生物测试具有优势,但由于不存在高通量实验室自动化系统,其更广泛的应用受到限制。因此,生态毒理学中使用的大多数生物试验需要耗时和费力的人工程序。在这项工作中,我们提出了一种小型芯片实验室(LOC)平台的开发,用于自动化和增强基于固定化淡水甲壳类动物大水蚤(Daphnia magna, Daphtoxkit-FTM)的急性生态毒性测试。水蚤对环境参数突然变化的反应具有快速、明确和易于光学记录的特点。我们还首次证明了LOC系统可以利用大水蚤的行为反应作为水污染的哨兵来研究亚致死生态毒性效应。系统工作原理结合高清晰度(HD)时间分辨视频数据分析,动态评估参比毒物对大鼠游动行为的影响。我们的系统设计结合了:(1)水蚤笼微流控装置;(ii)用于流体驱动的机电接口;(三)视频数据采集;(四)动物运动跟踪与分析算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automation of daphtoxkit-F biotest using a microfluidic lab-on-a-chip technology
An increased rigor in water quality monitoring is not only a legal requirement, but is also critical to ensure timely chemical hazard emergency responses and protection of human and animal health. Bioindication is a method that applies very sensitive living organisms to detect environmental changes using their natural responses. Although bioindicators do not deliver information on an exact type or intensity of toxicants present in water samples, they do provide an overall snapshot and early-warning information about presence of harmful and dangerous parameters. Despite the advantages of biotests performed on sentinel organisms, their wider application is limited by the nonexistence of high-throughput laboratory automation systems. As a result majority of biotests used in ecotoxicology require time-consuming and laborious manual procedures. In this work, we present development of a miniaturized Lab-on-a-Chip (LOC) platform for automation and enhancement of acute ecotoxicity test based on immobilization of a freshwater crustacean Daphnia magna (Daphtoxkit-FTM). Daphnids’ immobilization in response to sudden changes in environment parameters is fast, unambiguous, and easy to record optically. We also for the first time demonstrate that LOC system enables studies of sub-lethal ecotoxic effects using behavioral responses of Daphnia magna as sentinels of water pollution. The system working principle incorporated a high definition (HD) time-resolved video data analysis to dynamically assess impact of the reference toxicant on swimming behavior of D. magna. Our system design combined: (i) microfluidic device for caging of Daphnia sp.; (ii) mechatronic interface for fluidic actuation; (iii) video data acquisition; and (iv) algorithms for animal movement tracking and analysis.
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