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首页> 外文期刊>Journal of Nanobiotechnology >Electron beam fabrication of a microfluidic device for studying submicron-scale bacteria
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Electron beam fabrication of a microfluidic device for studying submicron-scale bacteria

机译:用于研究亚微米级细菌的微流控装置的电子束制造

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Controlled restriction of cellular movement using microfluidics allows one to study individual cells to gain insight into aspects of their physiology and behaviour. For example, the use of micron-sized growth channels that confine individual Escherichia coli has yielded novel insights into cell growth and death. To extend this approach to other species of bacteria, many of whom have dimensions in the sub-micron range, or to a larger range of growth conditions, a readily-fabricated device containing sub-micron features is required. Here we detail the fabrication of a versatile device with growth channels whose widths range from 0.3 μ m to 0.8 μ m. The device is fabricated using electron beam lithography, which provides excellent control over the shape and size of different growth channels and facilitates the rapid-prototyping of new designs. Features are successfully transferred first into silicon, and subsequently into the polydimethylsiloxane that forms the basis of the working microfluidic device. We demonstrate that the growth of sub-micron scale bacteria such as Lactococcus lactis or Escherichia coli cultured in minimal medium can be followed in such a device over several generations. We have presented a detailed protocol based on electron beam fabrication together with specific dry etching procedures for the fabrication of a microfluidic device suited to study submicron-sized bacteria. We have demonstrated that both Gram-positive and Gram-negative bacteria can be successfully loaded and imaged over a number of generations in this device. Similar devices could potentially be used to study other submicron-sized organisms under conditions in which the height and shape of the growth channels are crucial to the experimental design.
机译:使用微流体控制细胞运动的限制使人们能够研究单个细胞,从而深入了解其生理和行为方面。例如,限制单个大肠埃希氏菌的微米级生长通道的使用产生了对细胞生长和死亡的新见解。为了将该方法扩展到细菌的其他种类,其中许多细菌的尺寸在亚微米范围内,或者扩展到更大范围的生长条件,需要一种易于制造的包含亚微米特征的装置。在这里,我们详细介绍了具有宽度在0.3μm至0.8μm范围内的生长通道的多功能器件的制造。该器件采用电子束光刻技术制造,可以很好地控制不同生长通道的形状和尺寸,并有助于快速设计新设计。首先将特征成功地转移到硅中,然后转移到构成工作的微流体设备基础的聚二甲基硅氧烷中。我们证明了在基本培养基中培养的亚微米级细菌(如乳酸乳球菌或大肠杆菌)的生长可以在这种装置中经过几代人。我们已经提出了一种基于电子束制造的详细协议,以及用于制造适合研究亚微米尺寸细菌的微流控设备的特定干法蚀刻程序。我们已经证明,革兰氏阳性细菌和革兰氏阴性细菌都可以在此设备中成功地加载并成像数代。在生长通道的高度和形状对实验设计至关重要的条件下,类似的装置可能会被用于研究其他亚微米大小的生物。

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