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3D-printed pneumatic microfluidic mixer for colorimetric detection of Listeria monocytogenes

机译:3D印刷气动微流体混合器,用于测色的单核细胞增生

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3D printing can significantly improve the current fabrication techniques for microfluidic devices due to its ability to create truly 3D structures in a single step. In this study, an active pneumatic microfluidic mixer was designed and fabricated using an extrusion-based 3D printer for rapid detection of Listeria monocytogenes. The printed material of the mixer is flexible, semi-transparent and inexpensive. The fabrication time is significantly shorter than the traditional micromolding process. The printed mixer consists of two pneumatic air chambers and one mixing chamber designed for a fluidic sample size of 100 fiL. The length, width, and height of the mixer chip are 13, 12.7, and 9 mm, respectively. The performance of the mixer was tested for different actuation frequencies and pneumatic pressures. The completed 3D-printed mixer was successfully applied to the colorimetric detection of L. monocytogenes for a concentration range from 10~2 to 10~8 cfu/mL using an enzyme-linked immunosorbent assay. The experimental results showed the microfluidic mixer could enhance the mixing efficiency of the fluidic sample through pneumatically actuated diaphragms. In addition, the mixer could accelerate the color development caused by target L. monocytogenes,and the observed color changes could be discriminated within 5 minutes by naked eye. The present work will contribute to the development and optimization of a prototype for rapid detection of L. monocytogenes in food samples. It provides an effective technical approach to realize the fabrication of low-cost microfluidic chips for efficient reagent mixing in microscale biochemical detection systems.
机译:由于其在单一步骤中创建真正的3D结构,3D打印可以显着改善微流体装置的当前制造技术。在这项研究中,使用基于挤出的3D打印机设计和制造活性气动微流体混合器,用于快速检测李斯特菌单核细胞增生。混合器的印刷材料是柔性的,半透明和廉价的。制造时间明显短于传统的微旋转过程。印刷搅拌机由两个气动空气室和一个设计用于100μl的流体样品尺寸的混合室组成。混频器芯片的长度,宽度和高度分别为13,12.7和9mm。测试混合器的性能以进行不同的致动频率和气动压力。已完成的3D印刷混合器成功地应用于使用酶联免疫吸附测定的10〜2至10〜8CFU / mL的浓度的比色度检测到L.单核细胞增生。实验结果表明,微流体混合器可以通过气动驱动的膜片增强流体样品的混合效率。此外,混合器可以加速由靶L.单核细胞增生引起的显色,并且观察到的颜色变化可以通过肉眼5分钟来区分。目前的工作将有助于开发和优化原型,用于快速检测食品样品中的单核细胞元。它提供了一种有效的技术方法来实现低成本的微流体芯片的制备,以便在微观生物化学检测系统中有效的试剂混合。

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