Monia Kabandana Giraso Keza, Jones Curtis G, Sharifi Sahra Khan, Chen Chengpeng
The Department of Chemistry and Biochemistry, University of Maryland Baltimore County, Baltimore, Maryland 21250, United States.
ACS Sens. 2020 Jul 24;5(7):2044-2051. doi: 10.1021/acssensors.0c00507. Epub 2020 May 14.
3D printing has emerged as a robust technique to fabricate reliable and reproducible microfluidic devices. However, a limitation of 3D-printed devices has been the low transparency even when printed in a "clear" material. There are currently no reports regarding direct optical measurements through a 3D-printed device. Here, we present for the first time that the printing orientation can affect the transparency of a 3D-printed object. With the optimal orientation, we printed a microfluidic detector that was sufficiently transparent (transmittance ≈ 80%) for optical quantitation. This finding is significant because it shows the feasibility to directly 3D-print optical components for analytical applications. In addition, we created a novel microfluidic dialysis device via 3D printing, which enabled higher flow rates (for sampling with high temporal resolution) and increased extraction efficiency than commercially available ones. By coupling the microfluidic detector and dialysis probe, we successfully measured the release kinetics of indole from biofilms in a continuous, automated, and near real-time fashion. Indole is an intercellular signaling molecule in biofilms, which may regulate antibiotic resistance. The release kinetics of this molecule had not been quantitated likely because of the lack of a suitable analytical tool. Our results fill this knowledge gap.
3D打印已成为一种制造可靠且可重复的微流控装置的强大技术。然而,3D打印装置的一个局限性在于,即使采用“透明”材料进行打印,其透明度依然较低。目前尚无关于通过3D打印装置进行直接光学测量的报道。在此,我们首次展示了打印方向会影响3D打印物体的透明度。通过最佳打印方向,我们打印出了一种微流控探测器,其透明度足以用于光学定量分析(透光率约为80%)。这一发现意义重大,因为它表明了直接3D打印用于分析应用的光学组件的可行性。此外,我们通过3D打印创建了一种新型微流控透析装置,与市售装置相比,该装置能够实现更高的流速(用于高时间分辨率采样)并提高提取效率。通过将微流控探测器与透析探头相结合,我们成功地以连续、自动化且近乎实时的方式测量了生物膜中吲哚的释放动力学。吲哚是生物膜中的一种细胞间信号分子,可能会调节抗生素耐药性。由于缺乏合适的分析工具,该分子的释放动力学此前尚未得到定量研究。我们的研究结果填补了这一知识空白。