Fujisaki Shogo, Shibata Hiroyuki, Yamada Kentaro, Suzuki Koji, Citterio Daniel
Department of Applied Chemistry, Keio University, 3-14-1 Hiyoshi, Kohoku-ku, Yokohama 223-8522, Japan.
Analyst. 2019 Apr 8;144(8):2746-2754. doi: 10.1039/c8an02304b.
This work describes the development of a microfluidic analytical device prepared on a transparent OHP film substrate, named the microfluidic transparent film-based analytical device (μTFAD). Printing technologies including wax printing for microchannel patterning and inkjet printing for chemical assay component deposition have been employed for the μTFAD fabrication. The fully printed μTFAD allowed gravity-assisted pump-free transportation of the sample liquid (50 μL) and an absorbance measurement-based iron ion (Fe2+) assay using nitroso-PSAP as the colorimetric reagent within a wax-patterned microfluidic structure. By measuring absorbance values at the Fe2+-nitroso-PSAP complex-specific wavelength (756 nm), a response curve with a linear range of 0-200 μM was obtained. The limit of detection (1.18 μM) obtained with the proposed μTFADs was comparable to the results achieved with a conventional 96-well microplate assay (0.92 μM) and lower than that in the case of digital colour analysis-assisted filter paper spot tests (7.71 μM) or the absorbance analysis of refractive index-matched translucent filter paper spots (37.2 μM). In addition, highly selective Fe2+ detection has been achieved in the presence of potentially interfering metal ions (Cu2+, Co2+, Ni2+) without the use of any masking reagents, owing to the selection of the target complex-specific wavelength in the absorbance measurement on μTFADs.
这项工作描述了一种在透明OHP薄膜基板上制备的微流控分析装置的开发,该装置名为基于微流控透明薄膜的分析装置(μTFAD)。μTFAD的制造采用了包括用于微通道图案化的蜡印和用于化学分析成分沉积的喷墨打印在内的打印技术。完全打印的μTFAD允许在蜡图案化的微流控结构内通过重力辅助实现无泵的50μL样品液体传输,并使用亚硝基-PSAP作为比色试剂进行基于吸光度测量的铁离子(Fe2+)分析。通过在Fe2+-亚硝基-PSAP复合物特定波长(756nm)处测量吸光度值,获得了线性范围为0-200μM的响应曲线。所提出的μTFAD获得的检测限(1.18μM)与传统96孔微孔板分析(0.92μM)的结果相当,并且低于数字颜色分析辅助滤纸斑点试验(7.71μM)或折射率匹配的半透明滤纸斑点的吸光度分析(37.2μM)的检测限。此外,由于在μTFAD上的吸光度测量中选择了目标复合物特定波长,在存在潜在干扰金属离子(Cu2+、Co2+、Ni2+)的情况下无需使用任何掩蔽试剂即可实现对Fe2+的高选择性检测。