首页> 外文会议>Conference on commercial and biomedical applications of ultrafast lasers IX; 20090125-28; San Jose, CA(US) >High-throughput on-chip in vivo neural regeneration studies using femtosecond laser nano-surgery and microfluidics
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High-throughput on-chip in vivo neural regeneration studies using femtosecond laser nano-surgery and microfluidics

机译:使用飞秒激光纳米手术和微流控技术进行高通量体内神经再生研究

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In recent years, the advantages of using small invertebrate animals as model systems for human disease have become increasingly apparent and have resulted in three Nobel Prizes in medicine or chemistry during the last six years for studies conducted on the nematode Caenorhabditis elegans (C. elegans). The availability of a wide array of species-specific genetic techniques, along with the transparency of the worm and its ability to grow in minute volumes make C. elegans an extremely powerful model organism. We present a suite of technologies for complex high-throughput whole-animal genetic and drug screens. We demonstrate a high-speed microfluidic sorter that can isolate and immobilize C. elegans in a well-defined geometry, an integrated chip containing individually addressable screening chambers for incubation and exposure of individual animals to biochemical compounds, and a device for delivery of compound libraries in standard multiwell plates to microfluidic devices. The immobilization stability obtained by these devices is comparable to that of chemical anesthesia and the immobilization process does not affect lifespan, progeny production, or other aspects of animal health. The high-stability enables the use of a variety of key optical techniques. We use this to demonstrate femtosecond-laser nanosurgery and three-dimensional multiphoton microscopy. Used alone or in various combinations these devices facilitate a variety of high-throughput assays using whole animals, including mutagenesis and RNAi and drug screens at subcellular resolution, as well as high-throughput high-precision manipulations such as femtosecond-laser nanosurgery for large-scale in vivo neural degeneration and regeneration studies.
机译:近年来,使用小型无脊椎动物作为人类疾病模型系统的优势变得越来越明显,并且在过去六年中,针对线虫秀丽隐杆线虫(C. elegans)进行的研究获得了三项诺贝尔医学或化学奖。 。种类繁多的特定基因技术的可用性,以及蠕虫的透明性及其在微小体积中的生长能力,使秀丽隐杆线虫成为一种极其强大的模型生物。我们提出了一套用于复杂的高通量全动物遗传和药物筛选的技术。我们展示了一种高速微流体分选仪,该分选仪可以以明确的几何形状分离和固定秀丽隐杆线虫,集成的芯片包含可单独寻址的筛选室,用于将单个动物孵育和暴露于生化化合物,以及提供化合物库的装置在标准多孔板上连接微流控设备。这些设备获得的固定稳定性与化学麻醉的稳定性相当,并且固定过程不会影响寿命,子代生产或动物健康的其他方面。高稳定性使得可以使用各种关键的光学技术。我们用它来证明飞秒激光纳米手术和三维多光子显微镜。这些设备可单独使用或组合使用,可促进使用整个动物进行的各种高通量测定,包括诱变和RNAi以及亚细胞分辨率的药物筛选,以及高通量高精度操作,例如飞秒激光纳米手术,可用于进行体内神经变性和再生研究。

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