Monolayer graphene/platinum-modified 3D origami microfluidic paper-based biosensor for smartphone-assisted biomarkers detection.

IF 4.3 Q2 CHEMISTRY, MEDICINAL
ADMET and DMPK Pub Date : 2025-07-20 eCollection Date: 2025-01-01 DOI:10.5599/admet.2833
Arda Fridua Putra, Annisa Septyana Ningrum, Suyanto, Vania Mitha Pratiwi, Muhammad Yusuf Hakim Widianto, Irkham, Wulan Tri Wahyuni, Isnaini Rahmawati, Fu-Ming Wang, Chi-Hsien Huang, Ruri Agung Wahyuono
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引用次数: 0

Abstract

Background and purpose: Imbalances in biomarkers such as dopamine and NADH are linked to neurological and metabolic disorders, including Parkinson's disease, depression, and stroke, underscoring the need for rapid and accessible diagnostics. This study presents a smartphone-assisted, 3D origami microfluidic paper-based analytical device (μPAD) modified with photochemically synthesized graphene/platinum (G/Pt) nanocatalysts for multiplex colorimetric detection of dopamine and NADH.

Experimental approach: G/Pt catalysts were prepared using 2.5 to 10 mM Pt precursors under UV irradiation. μPADs were laser-printed on commercial-grade filter paper, patterned, and folded into three layers of 3D Origami.

Key results: The optimized 10 mM G/Pt catalyst significantly improved reaction rates (18× faster), leading to a rapid detection time constant of 6.69 and 4.59 s for dopamine and NADH, respectively. Furthermore, the utilization of 10 mM G/Pt catalyst increased colour intensity (2.48×) on the μPAD platform. An application for smartphones integrated with an image processing algorithm was developed using Kotlin to enable automatic quantification of colorimetric signals from saturation and hue channels for dopamine and NADH, respectively. The detection exhibited the lowest mean absolute percentage errors of 0.52 and 0.07 % as well as a limit of detection of 0.56 and 0.99 mM for dopamine and NADH, respectively.

Conclusion: The 3D origami structure facilitates efficient fluid handling and multiplex detection, while the nanocatalyst modification improves pore infiltration and sensitivity. This work demonstrates, for the first time, a cost-effective, portable, and high-performance biosensor for dual biomarker detection, offering substantial promise for point-of-care diagnostics in neurological and metabolic health monitoring.

Abstract Image

Abstract Image

Abstract Image

用于智能手机辅助生物标志物检测的单层石墨烯/铂改性3D折纸微流控纸生物传感器。
背景和目的:多巴胺和NADH等生物标志物的失衡与神经和代谢疾病有关,包括帕金森病、抑郁症和中风,这强调了快速和可获得诊断的必要性。本研究提出了一种由光化学合成的石墨烯/铂(G/Pt)纳米催化剂修饰的智能手机辅助3D折纸微流控纸分析装置(μPAD),用于多巴胺和NADH的多重比色检测。实验方法:采用2.5 ~ 10 mM Pt前驱体,在紫外照射下制备G/Pt催化剂。μPADs被激光打印在商业级滤纸上,进行图案处理,并折叠成三层3D折纸。关键结果:优化后的10 mM G/Pt催化剂显著提高了反应速率(快18倍),多巴胺和NADH的快速检测时间常数分别为6.69 s和4.59 s。此外,使用10 mM G/Pt催化剂可提高μPAD平台上的显色强度(2.48×)。利用Kotlin开发了一款集成了图像处理算法的智能手机应用程序,可以分别对多巴胺和NADH的饱和度和色调通道的比色信号进行自动定量。多巴胺和NADH的平均绝对百分比误差最低,分别为0.52和0.07%,检测限分别为0.56和0.99 mM。结论:三维折纸结构有利于高效的流体处理和多重检测,而纳米催化剂改性提高了孔渗透和灵敏度。这项工作首次证明了一种具有成本效益、便携式和高性能的双生物标志物检测生物传感器,为神经和代谢健康监测的即时诊断提供了巨大的希望。
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来源期刊
ADMET and DMPK
ADMET and DMPK Multiple-
CiteScore
4.40
自引率
0.00%
发文量
22
审稿时长
4 weeks
期刊介绍: ADMET and DMPK is an open access journal devoted to the rapid dissemination of new and original scientific results in all areas of absorption, distribution, metabolism, excretion, toxicology and pharmacokinetics of drugs. ADMET and DMPK publishes the following types of contributions: - Original research papers - Feature articles - Review articles - Short communications and Notes - Letters to Editors - Book reviews The scope of the Journal involves, but is not limited to, the following areas: - physico-chemical properties of drugs and methods of their determination - drug permeabilities - drug absorption - drug-drug, drug-protein, drug-membrane and drug-DNA interactions - chemical stability and degradations of drugs - instrumental methods in ADMET - drug metablic processes - routes of administration and excretion of drug - pharmacokinetic/pharmacodynamic study - quantitative structure activity/property relationship - ADME/PK modelling - Toxicology screening - Transporter identification and study
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