A Click Chemistry‐Based Artificial Metallo‐Nuclease

Author:

Gibney Alex1,de Paiva Raphael E. F.1,Singh Vandana23,Fox Robert1,Thompson Damien4,Hennessy Joseph1,Slator Creina1,McKenzie Christine J.5,Johansson Pegah67,McKee Vickie15,Westerlund Fredrik2,Kellett Andrew1ORCID

Affiliation:

1. SSPC, the Science Foundation Ireland Research Centre for Pharmaceuticals School of Chemical Sciences Dublin City University Glasnevin Dublin 9 Dublin Ireland

2. Department of Life Sciences Chalmers University of Technology Gothenburg Sweden

3. Department of Biological Engineering Massachusetts Institute of Technology Cambridge MA USA

4. SSPC, the Science Foundation Ireland Research Centre for Pharmaceuticals Department of Physics University of Limerick Ireland

5. Department of Physics, Chemistry and Pharmacy University of Southern Denmark Campusvej 55 5230 Odense M Denmark

6. Laboratory of Clinical Chemistry Sahlgrenska University Hospital Gothenburg Sweden

7. Department of Laboratory Medicine Institute of Biomedicine Sahlgrenska Academy at University of Gothenburg Sweden

Abstract

AbstractArtificial metallo‐nucleases (AMNs) are promising DNA damaging drug candidates. Here, we demonstrate how the 1,2,3‐triazole linker produced by the Cu‐catalysed azide‐alkyne cycloaddition (CuAAC) reaction can be directed to build Cu‐binding AMN scaffolds. We selected biologically inert reaction partners tris(azidomethyl)mesitylene and ethynyl‐thiophene to develop TC‐Thio, a bioactive C3‐symmetric ligand in which three thiophene‐triazole moieties are positioned around a central mesitylene core. The ligand was characterised by X‐ray crystallography and forms multinuclear CuII and CuI complexes identified by mass spectrometry and rationalised by density functional theory (DFT). Upon Cu coordination, CuII‐TC‐Thio becomes a potent DNA binding and cleaving agent. Mechanistic studies reveal DNA recognition occurs exclusively at the minor groove with subsequent oxidative damage promoted through a superoxide‐ and peroxide‐dependent pathway. Single molecule imaging of DNA isolated from peripheral blood mononuclear cells shows that the complex has comparable activity to the clinical drug temozolomide, causing DNA damage that is recognised by a combination of base excision repair (BER) enzymes.

Funder

Science Foundation Ireland

Irish Research Council for Science, Engineering and Technology

H2020 Marie Skłodowska-Curie Actions

Barncancerfonden

Cancerfonden

Novo Nordisk Fonden

Publisher

Wiley

Subject

General Chemistry,Catalysis

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