一个易于构建和可重复使用的微流体系统,用于活细胞成像。

Q1 Biochemistry, Genetics and Molecular Biology BMC Cell Biology Pub Date : 2018-06-20 DOI:10.1186/s12860-018-0158-z
Julien Babic, Laurent Griscom, Jeremy Cramer, Damien Coudreuse
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引用次数: 10

摘要

背景:实时监测细胞对环境动态变化或特定治疗的反应已成为细胞生物学的核心。然而,当与活细胞成像相结合时,这种策略难以实现精度和高时间分辨率,并且同时改变多个参数是一个主要挑战。最近,微流体技术为这类分析提供了强有力的解决方案,对显微镜下细胞生长的条件和培养基的控制达到了前所未有的水平。然而,这些技术仍然没有得到充分利用,主要是由于与微加工程序相关的复杂性。结果:在这项研究中,我们开发了简单但功能强大的微流体装置,专门用于活细胞成像。这些微系统利用了一种坚固的弹性体,这种弹性体对研究人员来说很容易获得,并且具有出色的粘合性能,特别是在显微镜级玻璃盖上。重要的是,这些芯片无需复杂的设备即可轻松构建,并且它们与复杂的定制流体网络集成以及在单个设备上进行独立分析的多路复用兼容。我们发现这些芯片是可重复使用的,这对微流体在细胞生物学中的普及具有重要的优势。此外,我们证明了它们允许对细胞环境的多个参数进行动态,精确和同时控制。结论:虽然它们不具备使用复杂和昂贵的程序构建的微设备的所有功能,但我们开发的芯片的简单性和多功能性使它们成为一系列应用的有吸引力的替代品。这种可以在任何实验室制造和使用的装置的出现,将为更多的研究团队提供充分利用这些新方法来研究细胞生物学的可能性。
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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An easy-to-build and re-usable microfluidic system for live-cell imaging.

Background: Real-time monitoring of cellular responses to dynamic changes in their environment or to specific treatments has become central to cell biology. However, when coupled to live-cell imaging, such strategies are difficult to implement with precision and high time resolution, and the simultaneous alteration of multiple parameters is a major challenge. Recently, microfluidics has provided powerful solutions for such analyses, bringing an unprecedented level of control over the conditions and the medium in which cells under microscopic observation are grown. However, such technologies have remained under-exploited, largely as a result of the complexity associated with microfabrication procedures.

Results: In this study, we have developed simple but powerful microfluidic devices dedicated to live-cell imaging. These microsystems take advantage of a robust elastomer that is readily available to researchers and that presents excellent bonding properties, in particular to microscopy-grade glass coverslips. Importantly, the chips are easy-to-build without sophisticated equipment, and they are compatible with the integration of complex, customized fluidic networks as well as with the multiplexing of independent assays on a single device. We show that the chips are re-usable, a significant advantage for the popularization of microfluidics in cell biology. Moreover, we demonstrate that they allow for the dynamic, accurate and simultaneous control of multiple parameters of the cellular environment.

Conclusions: While they do not possess all the features of the microdevices that are built using complex and costly procedures, the simplicity and versatility of the chips that we have developed make them an attractive alternative for a range of applications. The emergence of such devices, which can be fabricated and used by any laboratory, will provide the possibility for a larger number of research teams to take full advantage of these new methods for investigating cell biology.

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来源期刊
BMC Cell Biology
BMC Cell Biology 生物-细胞生物学
CiteScore
7.30
自引率
0.00%
发文量
0
审稿时长
12 months
期刊介绍: BMC Molecular and Cell Biology, formerly known as BMC Cell Biology, is an open access journal that considers articles on all aspects of both eukaryotic and prokaryotic cell and molecular biology, including structural and functional cell biology, DNA and RNA in a cellular context and biochemistry, as well as research using both the experimental and theoretical aspects of physics to study biological processes and investigations into the structure of biological macromolecules.
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