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Combining Motion Analysis and Microfluidics – A Novel Approach for Detecting Whole-Animal Responses to Test Substances

机译:将运动分析与微流控相结合–一种检测动物对测试物质的全动物响应的新方法

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摘要

Small, early life stages, such as zebrafish embryos are increasingly used to assess the biological effects of chemical compounds in vivo. However, behavioural screens of such organisms are challenging in terms of both data collection (culture techniques, drug delivery and imaging) and data evaluation (very large data sets), restricting the use of high throughput systems compared to in vitro assays. Here, we combine the use of a microfluidic flow-through culture system, or BioWell plate, with a novel motion analysis technique, (sparse optic flow - SOF) followed by spectral analysis (discrete Fourier transformation - DFT), as a first step towards automating data extraction and analysis for such screenings. Replicate zebrafish embryos housed in a BioWell plate within a custom-built imaging system were subject to a chemical exposure (1.5% ethanol). Embryo movement was videoed before (30 min), during (60 min) and after (60 min) exposure and SOF was then used to extract data on movement (angles of rotation and angular changes to the centre of mass of embryos). DFT was subsequently used to quantify the movement patterns exhibited during these periods and Multidimensional Scaling and ANOSIM were used to test for differences. Motion analysis revealed that zebrafish had significantly altered movements during both the second half of the alcohol exposure period and also the second half of the recovery period compared to their pre-treatment movements. Manual quantification of tail flicking revealed the same differences between exposure-periods as detected using the automated approach. However, the automated approach also incorporates other movements visible in the organism such as blood flow and heart beat, and has greater power to discern environmentally-driven changes in the behaviour and physiology of organisms. We suggest that combining these technologies could provide a highly efficient, high throughput assay, for assessing whole embryo responses to various drugs and chemicals.
机译:较小的生命早期阶段(例如斑马鱼胚胎)越来越多地用于评估化合物在体内的生物学作用。但是,从数据收集(培养技术,药物传递和成像)和数据评估(非常大的数据集)的角度来看,此类生物的行为筛选都具有挑战性,与体外测定相比,限制了高通量系统的使用。在这里,我们将使用微流体流通培养系统或BioWell板与新型运动分析技术(稀疏光学流-SOF)结合光谱分析(离散傅里叶变换-DFT)相结合,作为迈向第一步的第一步自动进行此类筛选的数据提取和分析。将定制的成像系统内BioWell板中容纳的复制斑马鱼胚胎置于化学溶液中(1.5%乙醇)。在暴露之前(30分钟),过程中(60分钟)和之后(60分钟)对胚胎运动进行了录像,然后使用SOF提取运动数据(旋转角度和到胚胎质心的角度变化)。随后,使用DFT来量化在这些时间段内显示的运动模式,然后使用多维缩放和ANOSIM来测试差异。运动分析显示,与治疗前的运动相比,斑马鱼在酒精暴露期的后半段和恢复期的后半段都显着改变了运动。手动定量甩尾表明在暴露时间之间的差异与使用自动方法检测到的相同。但是,自动化方法还结合了生物体中可见的其他运动,例如血流和心跳,并且具有更大的能力来识别环境驱动的生物体行为和生理学变化。我们建议结合使用这些技术可以提供一种高效,高通量的测定方法,以评估整个胚胎对各种药物和化学药品的反应。

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