CENIMAT|i3N, Departamento de Ciência de Materiais, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa and CEMOP/UNINOVA, Campus da Caparica, 2829-516 Caparica, Portugal.
SINTEF Materials and Chemistry, PB 124, Blindern, NO-0314 Oslo, Norway.
ACS Appl Mater Interfaces. 2021 Jan 27;13(3):3576-3590. doi: 10.1021/acsami.0c19089. Epub 2021 Jan 15.
The plasmonic properties of gold nanoparticles (AuNPs) are a promising tool to develop sensing alternatives to traditional, enzyme-catalyzed reactions. The need for sensing alternatives, especially in underdeveloped areas of the world, has given rise to the application of nonenzymatic sensing approaches paired with cellulosic substrates to biochemical analysis. Herein, we present three individual, low-step, wet-chemistry, colorimetric assays for three target biomarkers, namely, glucose, uric acid, and free cholesterol, relevant in diabetes control and their translation into paper-based assays and microfluidic platforms for multiplexed analysis. For glucose determination, an in situ AuNPs synthesis approach was applied into the developed μPAD, giving semiquantitative measures in the physiologically relevant range. For uric acid and cholesterol determination, modified AuNPs were used to functionalize paper with a gold-on-paper approach with the optical properties changing based on different aggregation degrees and hydrophobic properties of particles dependent on analyte concentration. These paper-based assays show sensitivity ranges and limits of detection compatible for target analyte level determination and detection limits comparable to those of similar enzymatic, colorimetric systems, relying only on plasmonic transduction without the need for enzymatic activity or other chromogenic substrates. The resulting paper-based assays were integrated into a single 3D, multiplex paper-based device using paper microfluidics, showing the capability for performing different colorimetric assays with distinct requirements in terms of sample flow and sample uptake in test zones using a combination of both horizontal and vertical flows inside the same device. The presented device allows for multiparametric, colorimetric measures of different metabolite levels from a single complex sample matrix drop using digital color analysis, showing the potential for development of low-cost, low-complexity tools for diagnostics toward the point-of-care.
金纳米粒子(AuNPs)的等离子体特性是开发替代传统酶促反应的传感方法的一种很有前途的工具。对替代传感方法的需求,特别是在世界上欠发达地区,催生了纤维素基底与非酶传感方法的结合,用于生化分析。在此,我们提出了三种单独的、低步骤的湿法化学比色法测定三种靶标生物标志物,即葡萄糖、尿酸和游离胆固醇,这些标志物与糖尿病控制有关,并将其转化为基于纸张的测定法和微流控平台,用于多重分析。对于葡萄糖的测定,采用原位 AuNPs 合成方法应用于开发的 μPAD,在生理相关范围内进行半定量测量。对于尿酸和胆固醇的测定,采用修饰的 AuNPs 通过金在纸上的方法对纸进行功能化,其光学性质根据粒子的不同聚集程度和疏水性而变化,取决于分析物浓度。这些基于纸张的测定法显示出与目标分析物水平测定相容的灵敏度范围和检测限,并且检测限与依赖于等离子体转导而无需酶活性或其他显色底物的类似酶比色系统相当。所得的基于纸张的测定法被整合到一个单一的 3D 、多重基于纸张的设备中,该设备使用纸张微流控技术,展示了在同一设备内使用水平和垂直流动的组合,在测试区中以不同的样品流动和样品吸收要求执行不同比色测定法的能力。该设备允许使用数字颜色分析对来自单一复杂样品基质的单个液滴进行不同代谢物水平的多参数、比色测量,显示了针对即时护理开发低成本、低复杂性诊断工具的潜力。