Structure-Property Relationships in Cu II -Binding Tetramolecular G-Quadruplex DNA

A series of artificial metal-base tetrads composed of a Cu cation coordinating to four pyridines, covalently attached to the ends of tetramolecular G-quadruplex DNA strands [L d(G )] (L =ligand derivatives), was systematically studied. Structurally, the square-planar [Cu(pyridine) ] complex behaves...

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Veröffentlicht in:Chemistry : a European journal 2018-02, Vol.24 (9), p.2117-2125
Hauptverfasser: Engelhard, David M, Stratmann, Lukas M, Clever, Guido H
Format: Artikel
Sprache:eng
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Zusammenfassung:A series of artificial metal-base tetrads composed of a Cu cation coordinating to four pyridines, covalently attached to the ends of tetramolecular G-quadruplex DNA strands [L d(G )] (L =ligand derivatives), was systematically studied. Structurally, the square-planar [Cu(pyridine) ] complex behaves analogously to the canonical guanine quartet. Copper coordination to all studied ligand derivatives was found to increase G-quadruplex thermodynamic stability, tolerating a great variety of ligand linker lengths (1-5 atoms) and thus demonstrating the robustness of the chosen ligand design. Only at long linker lengths, the stabilizing effect of copper binding is compensated by the loss of conformational freedom. A previously reported ligand L with chiral backbone enables incorporation at any oligonucleotide position. We show that ligand chirality distinctly steers Cu -induced G-quadruplex stabilization. 5'-End formation of two metal-base tetrads by tetramolecular G-quadruplex [L d(G) ] shows that stabilization in the presence of Cu is not additive. All results are based on UV/Vis thermal denaturation, thermal difference, circular dichroism experiments and molecular dynamics simulations.
ISSN:0947-6539
1521-3765
DOI:10.1002/chem.201703409