Department of Chemical Engineering, Texas Tech University, Lubbock, TX, USA.
Department of Mechanical Engineering, Texas Tech University, Lubbock, TX, USA.
Sci Rep. 2017 Apr 26;7(1):1188. doi: 10.1038/s41598-017-01343-w.
A chemically patterned microfluidic paper-based analytical device (C-µPAD) is developed to create fluidic networks by forming hydrophobic barriers using chemical vapor deposition (CVD) of trichlorosilane (TCS) on a chromatography paper. By controlling temperature, pattern size, and CVD duration, optimal conditions were determined by characterizing hydrophobicity, spreading patterns, and flow behavior on various sized fluidic patterns. With these optimal conditions, we demonstrated glucose assay, immunoassay, and heavy metal detection on well-spot C-µPAD and lateral flow C-µPAD. For these assays, standard curves showing correlation between target concentration and gray intensity were obtained to determine a limit of detection (LOD) of each assay. For the glucose assays on both well-spot C-µPAD and lateral flow C-µPAD, we achieved LOD of 13 mg/dL, which is equivalent to that of a commercial glucose sensor. Similar results were obtained from tumor necrosis factor alpha (TNFα) detection with 3 ng/mL of LOD. For Ni detection, a colorimetric agent was immobilized to obtain a stationary and uniform reaction by using thermal condensation coupling method. During the immobilization, we successfully functionalized amine for coupling the colorimetric agent on the C-µPAD and detected as low as 150 μg/L of Ni. These C-µPADs enable simple, rapid, and cost-effective bioassays and environmental monitoring, which provide practically relevant LODs with high expandability and adaptability.
一种化学图案微流控纸基分析器件(C-µPAD)被开发出来,通过在色谱纸上用三氯硅烷(TCS)的化学气相沉积(CVD)形成疏水屏障来创建流体网络。通过控制温度、图案尺寸和 CVD 持续时间,通过对各种尺寸的流体图案进行疏水性、展开模式和流动行为的特征化,确定了最佳条件。在这些最佳条件下,我们在点样 C-µPAD 和侧流 C-µPAD 上演示了葡萄糖检测、免疫测定和重金属检测。对于这些测定,获得了目标浓度与灰度强度之间相关性的标准曲线,以确定每种测定的检测限(LOD)。对于点样 C-µPAD 和侧流 C-µPAD 上的葡萄糖测定,我们实现了 13mg/dL 的 LOD,与商业葡萄糖传感器相当。对于肿瘤坏死因子α(TNFα)检测,也得到了 3ng/mL 的 LOD。对于 Ni 检测,通过使用热缩合偶联法将显色剂固定化,以获得稳定且均匀的反应。在固定化过程中,我们成功地对胺进行了功能化,以便将显色剂偶联到 C-µPAD 上,并检测到低至 150μg/L 的 Ni。这些 C-µPAD 可实现简单、快速和具有成本效益的生物测定和环境监测,具有较高的可扩展性和适应性,提供实际相关的 LOD。