TY - JOUR
T1 - Automated Electroosmotic Digital Optofluidics for Rapid and Label-Free Protein Detection
AU - Yang, Fan
AU - Fu, Rongxin
AU - Liu, Yitong
AU - Dong, Wenbo
AU - Liu, Xuekai
AU - Song, Yan
AU - Li, Gong
AU - Zhou, Tianqi
AU - Hu, Hanqi
AU - Li, Shanglin
AU - Jin, Xiangyu
AU - Zhang, Jiangjiang
AU - Li, Hang
AU - Lu, Yao
AU - Guan, Yanfang
AU - Xu, Tianming
AU - Ding, He
AU - Huang, Guoliang
AU - Xie, Huikai
AU - Zhang, Shuailong
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/4/2
Y1 - 2025/4/2
N2 - Rapid protein detection is crucial for medical diagnosis, clinical trials, and drug development but often faces challenges in balancing sensitivity with multiplex detection, low reagent consumption, and a short detection time. In this work, we developed an automated and sensitive electroosmotic digital optofluidics (e-DOF) platform for rapid and label-free protein biomarker quantification in microliter blood samples. The hyperspectral computation reveals nanoscale morphology changes caused by target protein capture, eliminating multifarious enzyme-linked labeling. Electroosmosis-driven molecular circulation accelerates the immuno-hybridization, enhancing sensitivity (with a detection limit of 0.21 nM) and reducing the detection time to 15 min, compared to 2-3 h for a traditional enzyme-linked immunosorbent assay. In multiplex detection of hepatitis A and E IgM in 17 clinical samples, the results were completely consistent with clinical trial outcomes. This e-DOF system presents an automated, rapid, and label-free platform for multiplex detection in microliter samples, highlighting potential applications in clinical diagnosis and immunoassay research.
AB - Rapid protein detection is crucial for medical diagnosis, clinical trials, and drug development but often faces challenges in balancing sensitivity with multiplex detection, low reagent consumption, and a short detection time. In this work, we developed an automated and sensitive electroosmotic digital optofluidics (e-DOF) platform for rapid and label-free protein biomarker quantification in microliter blood samples. The hyperspectral computation reveals nanoscale morphology changes caused by target protein capture, eliminating multifarious enzyme-linked labeling. Electroosmosis-driven molecular circulation accelerates the immuno-hybridization, enhancing sensitivity (with a detection limit of 0.21 nM) and reducing the detection time to 15 min, compared to 2-3 h for a traditional enzyme-linked immunosorbent assay. In multiplex detection of hepatitis A and E IgM in 17 clinical samples, the results were completely consistent with clinical trial outcomes. This e-DOF system presents an automated, rapid, and label-free platform for multiplex detection in microliter samples, highlighting potential applications in clinical diagnosis and immunoassay research.
KW - digital microfluidics
KW - electroosmotic molecular streaming
KW - label-free biosensor
KW - nanoscale measurement
KW - optofluidics
UR - http://www.scopus.com/pages/publications/105000069852
U2 - 10.1021/acs.nanolett.5c00270
DO - 10.1021/acs.nanolett.5c00270
M3 - Article
AN - SCOPUS:105000069852
SN - 1530-6984
VL - 25
SP - 5325
EP - 5333
JO - Nano Letters
JF - Nano Letters
IS - 13
ER -