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Copper (II)-catalyzed polydopamine mediated photothermal sensors for visual quantitative point-of-care testing.

Authors :
Zhang, Jingman
Luo, Yiying
Chen, Yiyu
Lian, Huiting
Liu, Bin
Chen, Chunnuan
Wei, Xiaofeng
Source :
Analytica Chimica Acta. Oct2024, Vol. 1325, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Temperature sensing is commonly used in point-of-care (POC) detection technologies, yet the portability and convenience of use are frequently compromised by the complexity of thermosensitive processes and signal transduction. Especially, multi-step target recognition reactions and temperature measurement in the reaction vessel present challenges in terms of stability and integration of detection devices. To further combine photothermal reaction and signal readout in one assay, these two processes enable to be integrated into miniaturized microfluidic chips, thereby facilitating photothermal sensing and achieving a simple visual temperature sensing as POC detection. A copper ion (Cu2+)-catalyzed photothermal sensing system integrated onto a microfluidic distance-based analytical device (μDAD), enabling the visual, portable, and sensitive quantitative detection of multiple targets, including ascorbic acid, glutathione, and alkaline phosphatase (ALP). The polydopamine nanoparticles (PDA NPs) were synthesized by the regulation of free Cu2+ through redox or coordination reactions, facilitating the transduction of distinct photothermal response signals and providing the versatile Cu2+-responsive sensing systems. Promoted by integration with a photothermal μDAD, the system combines PDA's photothermal responsiveness and thermosensitive gas production of ammonium bicarbonate for improved sensitivity of ALP detection, reaching the detection limit of 9.1 mU/L. The system has successfully achieved on-chip detection of ALP with superior anti-interference capability and recoveries ranging from 96.8 % to 104.7 %, alongside relative standard deviations below 8.0 %. The μDAD design accommodated both the photothermal reaction of PDA NPs and thermosensitive gas production reaction, achieving the rapid sensing of visual distance signals. The μDAD-based Cu2+-catalyzed photothermal sensing system holds substantial potential for applications in biochemical analysis and clinical diagnostics, underscored by the versatile Cu2+ regulation mechanism for a broad spectrum of biomarkers. [Display omitted] • Versatile Approach: Cu2+-catalyzed photothermal sensing system for quantitative detection of multiple targets. • Microfluidic Integration: functionalized design merges photothermal reaction and gas generation in a microfluidic format. • Direct Visual Detection: Simplifies temperature sensing with a visual distance readout, eliminating complex instrumentation. • Portable POC Diagnostics: Offers portable on-chip monitoring, enhancing accessibility for diagnostics. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00032670
Volume :
1325
Database :
Academic Search Index
Journal :
Analytica Chimica Acta
Publication Type :
Academic Journal
Accession number :
179463085
Full Text :
https://doi.org/10.1016/j.aca.2024.343114