Bioconjugatable azo-based dark-quencher dyes: synthesis and application to protease-activatable far-red fluorescent probes

  • Chemistry. 2013 Jan 28;19(5):1686-99. doi: 10.1002/chem.201203427.
Arnaud Chevalier  1 Cédrik Massif Pierre-Yves Renard Anthony Romieu
Affiliations
  • 1. Université de Rouen, Laboratory COBRA UMR 6014 & FR 3038, IRCOF, rue Lucien Tesnière, 76821 Mont-Saint-Aignan, France.
Abstract

We describe the efficient synthesis and one-step derivatization of novel, nonfluorescent azo dyes based on the Black Hole Quencher-3 (BHQ-3) scaffold. These dyes were equipped with various reactive and/or bioconjugatable groups (azido, α-iodoacetyl, ketone, terminal alkyne, vicinal diol). The azido derivative was found to be highly reactive in the context of copper-catalyzed azide-alkyne cycloaddition (CuAAC) reactions and allowed easy synthetic access to the first water-soluble (sulfonated derivative) and aldehyde-modified BHQ-3 dyes, the direct preparation of which failed by means of conventional azo-coupling reactions. The aldehyde- and α-iodoacetyl-containing fluorescence quenchers were readily conjugated to aminooxy- and cysteine-containing Peptides by the formation of a stable oxime or thioether linkage, respectively. Further fluorescent labeling of the resultant Peptide Conjugates with red- or far-red-emitting rhodamine or Cyanine Dyes through sequential and/or one-pot bioconjugations, led to novel Förster resonance energy transfer (FRET) based probes suitable for the in vivo detection and imaging of urokinase plasminogen activator, a key Protease in Cancer invasion and metastasis.

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