Samenvatting
Continuous detection of critical markers directly at the point of interest and in undiluted biological fluids represents the next fundamental step in biosensing. The goal of realizing such a platform is utterly challenging because it requires a reversible biosensor that enables the tracking of pico- to nanomolar molecular concentrations over long time spans in a compact device. Here we describe a sensing method based on plasmon-enhanced fluorescence capable of single-molecule detection of unlabeled analyte by employing biofunctionalized gold nanoparticles. The very strong plasmon-enhanced fluorescence signals allow for single-molecule sensing in unaltered biological media, while the use of low-affinity interactions ensures the continuous tracking of increasing and decreasing analyte concentrations with picomolar sensitivity. We demonstrate the use of a sandwich assay for a DNA cancer marker with a limit of detection of picomolar and a time response of 10 min. The enhanced single-molecule signals will allow for miniaturization into a small and cheap platform with multiplexing capability for application in point-of-care diagnostics, monitoring of industrial processes, and safe keeping of the environment.
| Originele taal-2 | Engels |
|---|---|
| Pagina's (van-tot) | 5805-5813 |
| Aantal pagina's | 9 |
| Tijdschrift | ACS Nano |
| Volume | 18 |
| Nummer van het tijdschrift | 7 |
| Vroegere onlinedatum | 9 feb. 2024 |
| DOI's | |
| Status | Gepubliceerd - 20 feb. 2024 |
Bibliografische nota
Publisher Copyright:© 2024 The Authors. Published by American Chemical Society.
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