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Multiplexed Isothermal Amplification Based Diagnostic Platform to Detect Zika, Chikungunya, and Dengue 1
Published on: March 13, 2018
A bifunctional ZIF-8 nanoprobe with spatially decoupled ratiometric channels for hydrogel-based portable detection of
Juan Liang1, Yingjie Huang2, Wenyue Chen2
1Key Laboratory of Research and Utilization of Ethnomedicinal Plant Resources of Hunan Province, College of Biological and Food Engineering, Huaihua University, Huaihua 418008, PR China.
Abstract:
Staphylococcus aureus (S. aureus) is a major foodborne pathogen in the dairy industry that produces heat-stable enterotoxins capable of surviving pasteurization. However, rapid, pathogen-specific, and instrument-free field detection remains a significant challenge. Here, we report a bifunctional zeolitic imidazolate framework-8 (ZIF-8) nanoprobe (RZF) for portable ratiometric detection of S. aureus. The probe exploits the spatially distinct interior and exterior of a single ZIF-8 nanoparticle: Ru(bpy)32+ is encapsulated within the pore interior as a photostable reference fluorophore, while 6-carboxyfluorescein (FAM)-labeled single-stranded DNA (ssDNA-FAM) is adsorbed onto the positively charged outer surface, where its fluorescence is quenched via Förster resonance energy transfer (FRET). This spatially decoupled architecture overcomes the ratio-control limitation of conventional co-encapsulation strategies, enabling independent optimization of the reference and responsive channels within a single nanoparticle. Upon bacterial lysis, released adenosine triphosphate (ATP) serves both as a biochemical indicator of viable bacteria and as a competitive Zn2+ ligand, triggering ZIF-8 disintegration and selectively restoring FAM fluorescence at 514 nm while leaving the Ru(bpy)32+ emission at 594 nm unchanged, thereby generating a self-calibrating ratiometric signal. The nanoprobe is immobilized within an agarose hydrogel kit, enabling smartphone-based RGB readout without cold-chain storage. Upstream immunomagnetic separation using Fe3O4-pIgG probes confers pathogen specificity through protein A recognition. The integrated platform achieves a limit of detection of 6 CFU/mL, with recoveries of 99.72-100.63% in spiked milk. This spatially decoupled single-particle probe strategy establishes a generalizable and reproducible design principle for ratiometric sensing in resource-limited food safety monitoring.
