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快速微流控温度控制用于高分辨率活细胞成像。

Fast microfluidic temperature control for high resolution live cell imaging.

机构信息

Institut Curie, UMR 144 CNRS, Paris, 75005, France.

出版信息

Lab Chip. 2011 Feb 7;11(3):484-9. doi: 10.1039/c0lc00222d. Epub 2010 Nov 19.

Abstract

One major advantage of using genetically tractable model organisms such as the fission yeast Schizosaccharomyces pombe is the ability to construct temperature-sensitive mutations in a gene. The resulting gene product or protein behaves as wildtype at permissive temperatures. At non-permissive or restrictive temperatures the protein becomes unstable and some or all of its functions are abrogated. The protein regains its function when returning to a permissive temperature. In principle, temperature-sensitive mutation enables precise temporal control of protein activity when coupled to a fast temperature controller. Current commercial temperature control devices do not have fast switching capability over a wide range of temperatures, making repeated temperature changes impossible or impractical at the cellular timescale of seconds or minutes. Microfabrication using soft-lithography is emerging as a powerful tool for cell biological research. We present here a simple disposable polydimethylsiloxane (PDMS) based microfluidic device capable of reversibly switching between 5 °C and 45 °C in less than 10 s. This device allows high-resolution live cell imaging with an oil immersion objective lens. We demonstrate the utility of this device for studying microtubule dynamics throughout the cell cycle.

摘要

使用遗传上可操作的模式生物(如裂殖酵母 Schizosaccharomyces pombe)的一个主要优势是能够在基因中构建温度敏感突变。由此产生的基因产物或蛋白质在允许温度下表现为野生型。在非允许或限制温度下,蛋白质变得不稳定,其部分或全部功能被废除。当返回允许温度时,蛋白质恢复其功能。原则上,当与快速温度控制器结合使用时,温度敏感突变能够实现蛋白质活性的精确时间控制。当前的商业温度控制设备在很宽的温度范围内没有快速切换能力,使得在几秒钟或几分钟的细胞时间尺度上不可能或不切实际地进行重复的温度变化。使用软光刻技术的微制造正在成为细胞生物学研究的有力工具。我们在这里展示了一种简单的一次性聚二甲基硅氧烷(PDMS)基微流控装置,能够在不到 10 秒内在 5°C 和 45°C 之间可逆切换。该装置允许使用油浸物镜进行高分辨率活细胞成像。我们证明了该装置在研究整个细胞周期中小管动力学中的实用性。

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