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热塑性微流控装置的制造协议:用于细胞培养的纳升体积生物反应器

Fabrication Protocol for Thermoplastic Microfluidic Devices: Nanoliter Volume Bioreactors for Cell Culturing.

作者信息

Gencturk Elif, Mutlu Senol, Ulgen Kutlu O

机构信息

Biosystems Engineering Laboratory, Department of Chemical Engineering, Bogazici University, Istanbul, Turkey.

BUMEMS Laboratory, Department of Electrical and Electronics Engineering, Bogazici University, Istanbul, Turkey.

出版信息

Methods Mol Biol. 2022;2436:27-38. doi: 10.1007/7651_2021_397.

Abstract

Microfluidic devices consist of microchannels etched or embossed into substrates made of polymer, glass or silicon. Intricate connections of the microchannels to reactors with some smart mechanical structures such as traps or curvatures fulfil the desired functionalities such as mixing, separation, flow control or setting the environment for biochemical reactions. Here, we describe the fabrication methods of a thermoplastic microbioreactor step by step. First, material selection is made, then, production methods are determined with the equipment that can be easily procured in a laboratory. COP with its outstanding characteristics among many polymers was chosen. Two types of microbioreactors, with and without electrodes, are designed with AutoCAD and L-edit softwares. Photolithography and electrochemical wet etching are used for master mold preparation. Thermal evaporator is employed for pure chromium and gold deposition on COP substrate and etchants are used to form the interdigitated electrodes. Once the master mold produced, hot embossing is used to obtain the designed shape on drilled and planarized COP. Cover COP, with or without electrodes, is bonded to the hot embossed COP via thermo-compression and thermoplastic microfluidic device is realized. Tubings are connected to the device and a bridge between the macro and micro world is established. Yeast or mammalian cells labeled or tagged with GFP/RFP on specific gene products are loaded into the microfluidic device, and real time data on cell dimensions and fluorescence intensity are collected using inverted fluorescence microscope, and finally image processing is used to analyze the acquired data.

摘要

微流控设备由蚀刻或压印在聚合物、玻璃或硅制成的基板上的微通道组成。微通道与具有一些智能机械结构(如阱或曲率)的反应器的复杂连接实现了所需的功能,如混合、分离、流量控制或为生化反应设定环境。在此,我们逐步描述热塑性微生物反应器的制造方法。首先,进行材料选择,然后,用实验室中易于采购的设备确定生产方法。在众多聚合物中,具有出色特性的环烯烃共聚物(COP)被选中。使用AutoCAD和L-edit软件设计了两种类型的微生物反应器,一种有电极,一种没有电极。通过光刻和电化学湿法蚀刻制备母模。使用热蒸发器在COP基板上沉积纯铬和金,并使用蚀刻剂形成叉指电极。一旦母模制作完成,通过热压印在钻孔和平整后的COP上获得设计形状。将有或没有电极的覆盖COP通过热压与热压印的COP粘结在一起,从而实现热塑性微流控设备。将管道连接到该设备,建立起宏观世界和微观世界之间的桥梁。将在特定基因产物上用绿色荧光蛋白/红色荧光蛋白(GFP/RFP)标记或标记的酵母或哺乳动物细胞加载到微流控设备中,使用倒置荧光显微镜收集细胞尺寸和荧光强度的实时数据,最后使用图像处理来分析采集到的数据。

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