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Biosens Bioelectron ; 55: 438-45, 2014 May 15.
Article in English | MEDLINE | ID: mdl-24441024

ABSTRACT

We demonstrate a novel fluorescent sensor for real-time and continuous monitoring of the variation of bisulfide in microdialysis effluents by using a nanoparticle-glutathione-fluorescein isothiocyanate (AuNP-GSH-FITC) probe coupled with on-line droplet-based microfluidic chip. The AuNP-GSH-FITC fluorescent probe was firstly developed and used for bisulfide detection in bulk solution by quantitative real-time PCR, which achieved a linear working range from 0.1 µM to 5.0 µM and a limit of detection of ~50 nM. The response time was less than 2 min. With the aid of co-immobilized thiol-polyethylene glycol, the probe exhibited excellent stability and reproducibility in high salinity solutions, including artificial cerebrospinal fluids (aCSF). By adding 0.1% glyoxal to the probe solution, the assay allowed quantification of bisulfide in the presence of cysteine at the micro-molarity level. Using the AuNP-GSH-FITC probe, a droplet-based microfluidic fluorescent sensor was further constructed for online monitoring of bisulfide variation in the effluent of microdialysis. By using fluorescence microscope-charge-coupled device camera as the detector, the integrated microdialysis/microfluidic chip device achieved a detection limit of 2.0 µM and a linear response from 5.0 µM to 50 µM for bisulfide in the tested sample. The method was successfully applied for the on-line measurement of bisulfide variation in aCSF and serum samples. It will be a very useful tool for tracking the variation of bisulfide or hydrogen sulfide in extracellular fluids.


Subject(s)
Biosensing Techniques/instrumentation , Cerebrospinal Fluid/chemistry , Microdialysis/instrumentation , Microfluidic Analytical Techniques/instrumentation , Spectrometry, Fluorescence/instrumentation , Sulfides/blood , Sulfides/cerebrospinal fluid , Equipment Design , Equipment Failure Analysis , Monitoring, Physiologic/instrumentation , Reproducibility of Results , Sensitivity and Specificity
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