A homeostatic, chip-based platform for zebrafish larvae immobilization and long-term imaging

Timo Friedrich, F. Zhu, D. Wlodkowic, J. Kaslin
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引用次数: 3

Abstract

Zebrafish larvae are ideal for toxicology and drug screens due to their transparency, small size and similarity to humans on the genetic level. Using modern imaging techniques, cells and tissues can be dynamically visualised and followed over days in multiple zebrafish. Yet continued imaging experiments require specialized conditions such as: moisture and heat control to maintain specimen homeostasis. Chambers that control the environment are generally very expensive and are not always available for all imaging platforms. A highly customizable mounting configuration with built-in means of controlling temperature and media flow would therefore be a valuable tool for long term imaging experiments. Rapid prototyping using 3D printing is particularly suitable as a production method as it offers high flexibility in design, is widely available and allows a high degree of customizing. We study neural regeneration in zebrafish. Regeneration is limited in humans, but zebrafish recover from neural damage within days. Yet, the underlying regenerative mechanisms remain unclear. We developed an agarose based mounting system that holds the embryos in defined positions along removable strips. Homeostasis and temperature control is ensured by channels circulating buffer and heated water. This allows to image up to 120 larvae simultaneously for more than two days. Its flexibility and the low-volume, high larvae ratio will allow screening of small compound libraries. Taken together, we offer a low cost, highly adaptable solution for long term in-vivo imaging.
一种用于斑马鱼幼虫固定和长期成像的稳态芯片平台
斑马鱼幼鱼是理想的毒理学和药物筛选,因为他们的透明度,小尺寸和相似的基因水平与人类。使用现代成像技术,细胞和组织可以动态可视化,并在数天内跟踪多个斑马鱼。然而,持续的成像实验需要特殊的条件,如:湿度和热量控制,以保持标本的内稳态。控制环境的腔室通常非常昂贵,并且并不总是适用于所有成像平台。高度可定制的安装配置,内置控制温度和介质流动的手段,因此将是长期成像实验的宝贵工具。使用3D打印的快速原型设计特别适合作为一种生产方法,因为它在设计上提供了高度的灵活性,广泛可用并且允许高度定制。我们研究斑马鱼的神经再生。人类的再生能力有限,但斑马鱼在几天内就能从神经损伤中恢复过来。然而,潜在的再生机制仍不清楚。我们开发了一种琼脂糖为基础的安装系统,将胚胎沿可移动的条带固定在指定的位置。内部平衡和温度控制由通道循环缓冲和热水保证。这允许在两天多的时间内同时拍摄多达120只幼虫。它的灵活性和小体积,高幼虫比例将允许筛选小型化合物库。综上所述,我们为长期体内成像提供了低成本、高适应性的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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