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Synthesis of Wavelength-shifting DNA Hybridization Probes by Using Photostable Cyanine Dyes
Published on: July 6, 2016
A pyronin-based "covalent-assembly" fluorescent probe for sensitive detection of cyanide in pure aqueous media and
Vincent Gaumerd1, Yoan Capello2, Manhattan Lebrun3
1Université Bourgogne Europe, CNRS, ICMUB UMR 6302, 9, Avenue Alain Savary, 21000, Dijon, France; French Environment and Energy Management Agency, 20, Avenue Du Grésillé - BP 90406, 49004, Angers Cedex 01, France.
Abstract:
In order to achieve efficient reaction-based fluorogenic sensing of lethal cyanide ions in aqueous environmental matrices, we have rationally designed a fluorescent probe based on the "covalent-assembly" principle and an intramolecular crossed-benzoin reaction assisted by this nucleophilic analyte. An original synthetic route towards this unprecedented water-soluble fluorescent cyanide-responsive chemodosimeter was devised. The unique structural features of this "covalent-assembly" probe enable its facile conversion into a green-yellow emissive pyronin (λmax Ex/Em 535/556 nm, and ΦF = 61 % in neutral buffered aqueous solution) through a water-compatible domino reaction triggered by cyanide anion, thus producing a strong "turn-on" fluorescence response. A set of different fluorescence-based assays have highlighted sensing performances of this probe, especially its ability to detect low concentrations of cyanide ions in phosphate buffer within the range of 100-200 nmol/L, by means of a user-friendly portable fluorometer. From a practical point of view, we have shown that this sensing strategy was also effective in real water samples, thus producing a limit of detection (LOD) range of 1-2 μmol/L in line with World Health Organization recommendations. Furthermore, the capability of the present pyronin caged precursor to detect endogenous cyanide ions in a real food sample (freshly cut cassava slices) was also confirmed. This study is thus an important step towards the popularization of the concept of "covalent-assembly" probes in fluorescence-based environmental and food safety analyses, largely under-explored until now.
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