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An integrated microfluidic array system for evaluating toxicity and teratogenicity of drugs on embryonic zebrafish developmental dynamics

机译:集成的微流控阵列系统用于评估药物对斑马鱼胚胎发育动力学的毒性和致畸性

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摘要

Seeking potential toxic and side effects for clinically available drugs is considerably beneficial in pharmaceutical safety evaluation. In this article, the authors developed an integrated microfluidic array system for phenotype-based evaluation of toxic and teratogenic potentials of clinical drugs by using zebrafish (Danio rerio) embryos as organism models. The microfluidic chip consists of a concentration gradient generator from upstream and an array of open embryonic culture structures by offering continuous stimulation in gradients and providing guiding, cultivation and exposure to the embryos, respectively. The open culture reservoirs are amenable to long-term embryonic culturing. Gradient test substances were delivered in a continuous or a developmental stage-specific manner, to induce embryos to generate dynamic developmental toxicity and teratogenicity. Developmental toxicity of doxorubicin on zebrafish eggs were quantitatively assessed via heart rate, and teratological effects were characterized by pericardial impairment, tail fin, notochord, and SV-BA distance ∕body length. By scoring the teratogenic severity, we precisely evaluated the time- and dose-dependent damage on the chemical-exposed embryos. The simple and easily operated method presented herein demonstrates that zebrafish embryo-based pharmaceutic assessment could be performed using microfluidic systems and holds a great potential in high-throughput screening for new compounds at single animal resolution.
机译:为临床上可用的药物寻找潜在的毒性和副作用对药物安全性评估非常有利。在本文中,作者开发了一种集成的微流控阵列系统,通过使用斑马鱼(Danio rerio)胚胎作为生物模型,基于表型评估临床药物的毒性和致畸性。微流控芯片由来自上游的浓度梯度发生器和一系列开放的胚胎培养结构组成,它们分别提供梯度的连续刺激并分别提供对胚胎的引导,培养和暴露。开放式培养池适合长期胚胎培养。梯度测试物质以连续或特定于发育阶段的方式递送,以诱导胚胎产生动态发育毒性和致畸性。通过心率定量评估阿霉素对斑马鱼卵的发育毒性,并以心包损伤,尾鳍,脊索和SV-BA距离∕体长来表征其致畸作用。通过对致畸严重程度进行评分,我们精确评估了化学暴露胚胎对时间和剂量的损害。本文介绍的简单且易于操作的方法证明,可以使用微流体系统进行基于斑马鱼胚胎的药物评估,并且在高通量筛选具有单一动物分辨率的新化合物方面具有巨大潜力。

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