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Controllable alignment of elongated microorganisms in 3D microspace using electrofluidic devices manufactured by hybrid femtosecond laser microfabrication

机译:使用混合飞秒激光微细加工制造的电流体设备可控地对准3D微空间中的细长微生物

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摘要

This paper presents a simple technique to fabricate new electrofluidic devices for the three-dimensional (3D) manipulation of microorganisms by hybrid subtractive and additive femtosecond (fs) laser microfabrication (fs laser-assisted wet etching of glass followed by water-assisted fs laser modification combined with electroless metal plating). The technique enables the formation of patterned metal electrodes in arbitrary regions in closed glass microfluidic channels, which can spatially and temporally control the direction of electric fields in 3D microfluidic environments. The fabricated electrofluidic devices were applied to nanoaquariums to demonstrate the 3D electro-orientation of Euglena gracilis (an elongated unicellular microorganism) in microfluidics with high controllability and reliability. In particular, swimming Euglena cells can be oriented along the z-direction (perpendicular to the device surface) using electrodes with square outlines formed at the top and bottom of the channel, which is quite useful for observing the motions of cells parallel to their swimming directions. Specifically, z-directional electric field control ensured efficient observation of manipulated cells on the front side (45 cells were captured in a minute in an imaging area of ~160×120 μm), resulting in a reduction of the average time required to capture the images of five Euglena cells swimming continuously along the z-direction by a factor of ~43 compared with the case of no electric field. In addition, the combination of the electrofluidic devices and dynamic imaging enabled observation of the flagella of Euglena cells, revealing that the swimming direction of each Euglena cell under the electric field application was determined by the initial body angle.
机译:本文介绍了一种简单的技术,该技术可通过混合减法和累加飞秒(fs)激光微加工(fs激光辅助玻璃湿法蚀刻,然后用水辅助的fs激光修饰)来制造用于微生物的三维(3D)操纵的新型电流体装置结合化学镀)。该技术可以在封闭的玻璃微流体通道的任意区域中形成图案化的金属电极,从而可以在3D微流体环境中时空控制电场的方向。将所制造的电流体装置应用于纳米水族馆,以证明其在微流控中具有极高的可控性和可靠性,从而实现了Euglena gracilis(一种细长的单细胞微生物)的3D电定向。特别是,可以使用在通道顶部和底部形成正方形轮廓的电极沿z方向(垂直于设备表面)定向游泳Euglena细胞,这对于观察平行于其游泳的细胞的运动非常有用。指示。具体而言,z方向电场控制可确保有效观察正面的操作细胞(​​在一分钟内在约160×120μm的成像区域内捕获了45个细胞),从而减少了捕获细胞所需的平均时间。与没有电场的情况相比,五个Euglena细胞沿z方向连续游动约43倍的图像。另外,电流体装置和动态成像的组合使得能够观察到裸藻细胞的鞭毛,这揭示了在电场施加下每个裸藻细胞的游动方向由初始体角确定。

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