首页> 外文会议>SPIE BioPhotonics Australasia >Miniaturized video-microscopy system for near real-time water quality biomonitoring using microfluidic chip-based devices
【24h】

Miniaturized video-microscopy system for near real-time water quality biomonitoring using microfluidic chip-based devices

机译:用于使用基于微流体芯片的设备的近实时水质生物监测系统的小型化视频显微镜系统

获取原文

摘要

Biomonitoring studies apply biological responses of sensitive biomonitor organisms to rapidly detect adverse environmental changes such as presence of physic-chemical stressors and toxins. Behavioral responses such as changes in swimming patterns of small aquatic invertebrates are emerging as sensitive endpoints to monitor aquatic pollution. Although behavioral responses do not deliver information on an exact type or the intensity of toxicants present in water samples, they could provide orders of magnitude higher sensitivity than lethal endpoints such as mortality. Despite the advantages of behavioral biotests performed on sentinel organisms, their wider application in real-time and near realtime biomonitoring of water quality is limited by the lack of dedicated and automated video-microscopy systems. Current behavioral analysis systems rely mostly on static test conditions and manual procedures that are time-consuming and labor intensive. Tracking and precise quantification of locomotory activities of multiple small aquatic organisms requires high-resolution optical data recording. This is often problematic due to small size of fast moving animals and limitations of culture vessels that are not specially designed for video data recording. In this work, we capitalized on recent advances in miniaturized CMOS cameras, high resolution optics and biomicrofluidic technologies to develop near real-time water quality sensing using locomotory activities of small marine invertebrates. We present proof-of-concept integration of high-resolution time-resolved video recording system and high-throughput miniaturized perfusion biomicrofluidic platform for optical tracking of nauplii of marine crustacean Artemia franciscana. Preliminary data demonstrate that Artemia sp. exhibits rapid alterations of swimming patterns in response to toxicant exposure. The combination of video-microscopy and biomicrofluidic platform facilitated straightforward recording of fast moving objects. We envisage that prospectively such system can be scaled up to perform high-throughput water quality sensing in a robotic biomonitoring facility.
机译:生物监测研究应用敏感生物监作生物的生物反应,迅速检测不利的环境变化,例如存在物理化学压力源和毒素。小型水生无脊椎动物的游泳模式的变化等行为响应是监测水生污染的敏感终点。尽管行为应对不提供关于水样中存在的精确类型或毒物强度的信息,但它们可以提供比致命终点(如死亡率)更高的敏感性令人敏感性。尽管对哨兵生物体进行的行为生物体的优势,但它们更广泛地应用于实时和近实时的水质生物质量受到专用和自动化视频显微镜系统的限制。目前的行为分析系统主要依赖于静态测试条件和手动程序,这些方法是耗时和劳动密集型的。跟踪和精确定量多个小水生植物的机车活动需要高分辨率光学数据记录。由于小尺寸的快速移动动物和培养血管的限制,这通常是有问题的,这是没有专门为视频数据记录设计的培养血管的限制。在这项工作中,我们利用小型化CMOS相机,高分辨率光学和生物发霉病技术的最近进步,以利用小型海洋无脊椎动物的机制活动来发展近实时水质感测。我们呈现了高分辨率时间分辨视频记录系统和高通量小型化灌注生物微流体平台的概念验证集成,用于海洋甲壳动物壁龛Franciscana的Nauplii光学跟踪。初步数据表明Artemia sp。响应毒物暴露,展示游泳模式的快速改变。视频显微镜和生物翻译平台的组合便于快速移动物体的直接记录。我们设想,前瞻性地,可以扩展这些系统,以在机器人生物监测设施中进行高通量水质感测。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号