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微流控通流系统中的斑马鱼胚胎发育。

Zebrafish embryo development in a microfluidic flow-through system.

机构信息

Institute of Biology, Leiden University, Sylvius Laboratory, Sylviusweg 72, 2333, BE, Leiden, The Netherlands.

出版信息

Lab Chip. 2011 May 21;11(10):1815-24. doi: 10.1039/c0lc00443j. Epub 2011 Apr 14.

DOI:10.1039/c0lc00443j
PMID:21491052
Abstract

The zebrafish embryo is a small, cheap, whole-animal model which may replace rodents in some areas of research. Unfortunately, zebrafish embryos are commonly cultured in microtitre plates using cell-culture protocols with static buffer replacement. Such protocols are highly invasive, consume large quantities of reagents and do not readily permit high-quality imaging. Zebrafish and rodent embryos have previously been cultured in static microfluidic drops, and zebrafish embryos have also been raised in a prototype polydimethylsiloxane setup in a Petri dish. Other than this, no animal embryo has ever been shown to undergo embryonic development in a microfluidic flow-through system. We have developed and prototyped a specialized lab-on-a-chip made from bonded layers of borosilicate glass. We find that zebrafish embryos can develop in the chip for 5 days, with continuous buffer flow at pressures of 0.005-0.04 MPa. Phenotypic effects were seen, but these were scored subjectively as 'minor'. Survival rates of 100% could be reached with buffer flows of 2 µL per well per min. High-quality imaging was possible. An acute ethanol exposure test in the chip replicated the same assay performed in microtitre plates. More than 100 embryos could be cultured in an area, excluding infrastructure, smaller than a credit card. We discuss how biochip technology, coupled with zebrafish larvae, could allow biological research to be conducted in massive, parallel experiments, at high speed and low cost.

摘要

斑马鱼胚胎是一种小型、廉价的整体动物模型,在某些研究领域可能会取代啮齿动物。不幸的是,斑马鱼胚胎通常在微滴定板中使用具有静态缓冲液替换的细胞培养方案进行培养。这种方案具有高度侵入性,消耗大量试剂,并且不容易进行高质量的成像。以前已经在静态微流控液滴中培养过斑马鱼和啮齿动物胚胎,并且也在 Petri 盘中使用聚二甲基硅氧烷原型设备中饲养过斑马鱼胚胎。除此之外,没有任何动物胚胎在微流控通流系统中进行过胚胎发育。我们已经开发并制作了一个由硼硅酸盐玻璃粘合层制成的专用片上实验室。我们发现,斑马鱼胚胎可以在芯片中发育 5 天,在 0.005-0.04 MPa 的压力下连续缓冲液流动。尽管观察到了表型效应,但这些都是主观地评为“轻微”的。以 2 µL/孔/分钟的缓冲液流量,可以达到 100%的存活率。可以进行高质量的成像。在芯片中的急性乙醇暴露测试复制了在微滴定板中进行的相同测定。在不包括基础设施的情况下,可在小于信用卡的区域中培养 100 多个胚胎。我们讨论了如何将生物芯片技术与斑马鱼幼虫结合使用,可以在高速,低成本的情况下,以大规模,并行的方式进行生物研究。

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