Literature DB >> 20681566

Azide-alkyne "click" conjugation of 8-aza-7-deazaadenine-DNA: synthesis, duplex stability, and fluorogenic dye labeling.

Frank Seela1, Suresh S Pujari.   

Abstract

The internal dye labeling of DNA by the Huisgen-Meldal-Sharpless "click" reaction is described. Fluorogenic 9-azidomethyl anthracene 2 and 3-azido-7-hydroxycoumarin 3 were employed in the postsynthetic functionalization of oligonucleotides incorporating octa-(1,7)-diynyl-8-aza-7-deaza-2'-deoxyadenosine 1. Nucleoside 1 was prepared by Sonogashira cross coupling from the corresponding 7-iodo compound, converted into the corresponding phosphoramidite, and oligonucleotides were synthesized. To evaluate the influence of ligands on the oligonucleotide duplex stability, benzyl azide 4 (nonpolar), and 2',3'-dideoxy azidothymidine 5 (AZT) (polar) were introduced along with the fluorogenic dyes 2 and 3. DNA duplexes with octa-1,7-diynyl side chains (i.e., containing 1) are more stable than oligonucleotides containing 8-aza-7-deaza-2'-deoxyadenosine, unveiling that this side chain has steric freedom. A single conjugation by an anthracene residue led to a 9 °C T(m) increase of duplex melting. Contrary to 7-deazaadenine dye conjugates, the 8-aza-7-deazaadenine conjugates show virtually no fluorescence quenching, thereby developing almost as strong fluorescence as side chain click derivatives (32 and 33) in the absence of 8-aza-7-deazaadenine moiety. Duplexes containing the 8-aza-7-deazaadenine dye conjugate show increased fluorescence over single-stranded DNA. Mismatches with dA, dG, and dC develop reduced fluorescence compared to the fully matched base pair. Molecular dynamics simulations revealed that the bulky dye molecules are accommodated well in duplex DNA.

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Year:  2010        PMID: 20681566     DOI: 10.1021/bc100090y

Source DB:  PubMed          Journal:  Bioconjug Chem        ISSN: 1043-1802            Impact factor:   4.774


  6 in total

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Authors:  Andrea L Stadler; Junriz O Delos Santos; Elizabeth S Stensrud; Anna Dembska; Gloria L Silva; Shengpeng Liu; Nathaniel I Shank; Ezgi Kunttas-Tatli; Courtney J Sobers; Philipp M E Gramlich; Thomas Carell; Linda A Peteanu; Brooke M McCartney; Bruce A Armitage
Journal:  Bioconjug Chem       Date:  2011-07-22       Impact factor: 4.774

2.  Tracking glycosylation in live cells using FTIR spectroscopy.

Authors:  Joshua Phelan; Ali Altharawi; K L Andrew Chan
Journal:  Talanta       Date:  2020-01-13       Impact factor: 6.057

3.  Correlating molecular character of NIR imaging agents with tissue-specific uptake.

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4.  Synthesis of 8-(1,2,3-triazol-1-yl)-7-deazapurine nucleosides by azide-alkyne click reactions and direct C-H bond functionalization.

Authors:  Sam Kavoosi; Ramanjaneyulu Rayala; Brenna Walsh; Maria Barrios; Walter G Gonzalez; Jaroslava Miksovska; Logesh Mathivathanan; Raphael G Raptis; Stanislaw F Wnuk
Journal:  Tetrahedron Lett       Date:  2016-08-19       Impact factor: 2.415

5.  Investigation of 8-Aza-7-Deaza Purine Nucleoside Derivatives.

Authors:  Hang Ren; Haoyun An; Jingchao Tao
Journal:  Molecules       Date:  2019-03-11       Impact factor: 4.411

6.  Detecting individual extracellular vesicles using a multicolor in situ proximity ligation assay with flow cytometric readout.

Authors:  Liza Löf; Tonge Ebai; Louise Dubois; Lotta Wik; K Göran Ronquist; Olivia Nolander; Emma Lundin; Ola Söderberg; Ulf Landegren; Masood Kamali-Moghaddam
Journal:  Sci Rep       Date:  2016-09-29       Impact factor: 4.379

  6 in total

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