In Quest of Chemical Probes for DNA Methylation Reader Proteins: Nucleoside and Dimer Analogues of 5‐Methylcytosine Interact with MBD2

J Jean Contreras (Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France) S Sophie Vichier‐Guerre (Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France) L Laurence Dugué (Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France) F Frédéric Bonhomme C Corinne Jallet (Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France) M Minh‐Ha Nguyen (Biological NMR and HDX‐MS Technological Platform Institut Pasteur–CNRS UMR3528 Université Paris Cité 28 rue du Dr Roux Paris 75015 France) B Bruno Vitorge (Biological NMR and HDX‐MS Technological Platform Institut Pasteur–CNRS UMR3528 Université Paris Cité 28 rue du Dr Roux Paris 75015 France) A Alessandra Feoli (Department of Pharmacy Epigenetic Med Chem Lab University of Salerno via Giovanni Paolo II 132 Fisciano Salerno I‐84084 Italy) G Gianluca Sbardella J J. Iñaki Guijarro (Biological NMR and HDX‐MS Technological Platform Institut Pasteur–CNRS UMR3528 Université Paris Cité 28 rue du Dr Roux Paris 75015 France) P Paola B. Arimondo

Abstract

Abstract DNA methylation modulates gene expression without altering the DNA sequence. Aberrant DNA methylation patterns characterise a wide range of diseases, from cancer to neurological disorders, and serve as validated therapeutic targets and diagnostic tools. Among the proteins involved in DNA methylation regulation, the human reader methyl‐CpG binding domain 2 protein (MBD2) exhibits a strong preference for methylated DNA and initiates signalling cascades predominantly resulting in gene repression. The full description of this mechanism is still to be elucidated. Here, we developed original chemical compounds to interfere with MBD2 and its interaction with DNA. Through convergent chemical pathways, we modified 5‐methylcytosine at position N 4 and synthesised the corresponding deoxynucleosides and CpG dimers. We tested 70 compounds in two screening assays to assess their interaction with MBD2 and their ability to disrupt the MBD2/DNA complex. Remarkably, substituting modified nucleobases into CpG dimers significantly boosted the biological activity. Furthermore, we investigated the impact of the configuration ( d/l ) of the modified nucleosides and identified four dimers ( 5d , 7e , 15e and 16e ) able to disrupt the MBD2/DNA complex, highlighting the advantage of the l ‐configuration. Importantly, NMR experiments confirmed their interaction with amino acids of MBD2 involved in methylated DNA binding.

Article Details

Volume / Issue Vol. 64, Issue 26
Published June 24, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

J

Jean Contreras

Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France

S

Sophie Vichier‐Guerre

Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France

L

Laurence Dugué

Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France

F

Frédéric Bonhomme

C

Corinne Jallet

Epigenetic Chemical Biology EpiCBio Institut Pasteur CNRS UMR3523 Chem4Life Université de Paris Cité 28 rue du Dr Roux Paris 75015 France

M

Minh‐Ha Nguyen

Biological NMR and HDX‐MS Technological Platform Institut Pasteur–CNRS UMR3528 Université Paris Cité 28 rue du Dr Roux Paris 75015 France

B

Bruno Vitorge

Biological NMR and HDX‐MS Technological Platform Institut Pasteur–CNRS UMR3528 Université Paris Cité 28 rue du Dr Roux Paris 75015 France

A

Alessandra Feoli

Department of Pharmacy Epigenetic Med Chem Lab University of Salerno via Giovanni Paolo II 132 Fisciano Salerno I‐84084 Italy

G

Gianluca Sbardella

J

J. Iñaki Guijarro

Biological NMR and HDX‐MS Technological Platform Institut Pasteur–CNRS UMR3528 Université Paris Cité 28 rue du Dr Roux Paris 75015 France

P

Paola B. Arimondo