Target guided synthesis using DNA nano-templates for selectively assembling a G-quadruplex binding c-MYC inhibitor
The development of small molecules is essential to modulate the cellular functions of biological targets in living system. Target Guided Synthesis (TGS) approaches have been used for the identification of potent small molecules for biological targets. We herein demonstrate an innovative example of T...
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Veröffentlicht in: | Nature communications 2017-07, Vol.8 (1), p.16103-16103, Article 16103 |
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Sprache: | eng |
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Zusammenfassung: | The development of small molecules is essential to modulate the cellular functions of biological targets in living system. Target Guided Synthesis (TGS) approaches have been used for the identification of potent small molecules for biological targets. We herein demonstrate an innovative example of TGS using DNA nano-templates that promote Huisgen cycloaddition from an array of azide and alkyne fragments. A G-quadruplex and a control duplex DNA nano-template have been prepared by assembling the DNA structures on gold-coated magnetic nanoparticles. The DNA nano-templates facilitate the regioselective formation of 1,4-substituted triazole products, which are easily isolated by magnetic decantation. The G-quadruplex nano-template can be easily recovered and reused for five reaction cycles. The major triazole product, generated by the G-quadruplex inhibits
c-MYC
expression by directly targeting the
c-MYC
promoter G-quadruplex. This work highlights that the nano-TGS approach may serve as a valuable strategy to generate target-selective ligands for drug discovery.
Identification of inhibitors can be accelerated by using the target as a template for ligand formation. Here the authors show that DNA-functionalised magnetic nanoparticles guide templating of G-quadruplex binding
c-MYC
inhibitors from an array of building blocks, and can be isolated by magnetic decanting. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/ncomms16103 |