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用于体内成像的涡虫芯片固定法。

On-chip immobilization of planarians for in vivo imaging.

作者信息

Dexter Joseph P, Tamme Mary B, Lind Christine H, Collins Eva-Maria S

机构信息

1] Lewis-Sigler Institute for Integrative Genomics, Princeton University, Princeton, NJ 08544 USA [2] Department of Chemistry, Princeton University, Princeton, NJ 08544 USA.

Department of Physics, University of California, San Diego, La Jolla, CA 92093 USA.

出版信息

Sci Rep. 2014 Sep 17;4:6388. doi: 10.1038/srep06388.

Abstract

Planarians are an important model organism for regeneration and stem cell research. A complete understanding of stem cell and regeneration dynamics in these animals requires time-lapse imaging in vivo, which has been difficult to achieve due to a lack of tissue-specific markers and the strong negative phototaxis of planarians. We have developed the Planarian Immobilization Chip (PIC) for rapid, stable immobilization of planarians for in vivo imaging without injury or biochemical alteration. The chip is easy and inexpensive to fabricate, and worms can be mounted for and removed after imaging within minutes. We show that the PIC enables significantly higher-stability immobilization than can be achieved with standard techniques, allowing for imaging of planarians at sub-cellular resolution in vivo using brightfield and fluorescence microscopy. We validate the performance of the PIC by performing time-lapse imaging of planarian wound closure and sequential imaging over days of head regeneration. We further show that the device can be used to immobilize Hydra, another photophobic regenerative model organism. The simple fabrication, low cost, ease of use, and enhanced specimen stability of the PIC should enable its broad application to in vivo studies of stem cell and regeneration dynamics in planarians and Hydra.

摘要

涡虫是再生和干细胞研究的重要模式生物。要全面了解这些动物体内的干细胞和再生动态,需要进行活体延时成像,但由于缺乏组织特异性标记以及涡虫强烈的负趋光性,这一点很难实现。我们开发了涡虫固定芯片(PIC),用于快速、稳定地固定涡虫以进行活体成像,且不会造成损伤或生化改变。该芯片制作简单且成本低廉,在数分钟内即可将涡虫固定用于成像并在成像后取出。我们证明,与标准技术相比,PIC能够实现更高稳定性的固定,从而可以使用明场和荧光显微镜在活体中以亚细胞分辨率对涡虫进行成像。我们通过对涡虫伤口闭合进行延时成像以及对头再生数天进行连续成像来验证PIC的性能。我们进一步表明,该装置可用于固定另一种避光再生模式生物水螅。PIC制作简单、成本低、使用方便且能增强样本稳定性,这应能使其广泛应用于涡虫和水螅干细胞及再生动态的活体研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/18ca/4165980/aea67421e61f/srep06388-f1.jpg

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