Unprecedented reactivity of polyamines with aldehydic DNA modifications: structural determinants of reactivity, characterization and enzymatic stability of adducts

Author:

Gusti Ngurah Putu Eka Putra12ORCID,Cattiaux Laurent12ORCID,Lavergne Thomas3ORCID,Pommier Yves4ORCID,Bombard Sophie12ORCID,Granzhan Anton12ORCID

Affiliation:

1. CMBC, CNRS UMR9187, INSERM U1196, Institut Curie, PSL Research University , 91405  Orsay,  France

2. CMBC, CNRS UMR9187, INSERM U1196, Université Paris Saclay , 91405  Orsay,  France

3. DCM, CNRS UMR5250, Université Grenoble Alpes , 38000  Grenoble,  France

4. Laboratory of Molecular Pharmacology & Developmental Therapeutics Branch, CCR-NCI, NIH , Bethesda , MD  20892 , USA

Abstract

Abstract Apurinic/apyrimidinic (AP) sites, 5-formyluracil (fU) and 5-formylcytosine (fC) are abundant DNA modifications that share aldehyde-type reactivity. Here, we demonstrate that polyamines featuring at least one secondary 1,2-diamine fragment in combination with aromatic units form covalent DNA adducts upon reaction with AP sites (with concomitant cleavage of the AP strand), fU and, to a lesser extent, fC residues. Using small-molecule mimics of AP site and fU, we show that reaction of secondary 1,2-diamines with AP sites leads to the formation of unprecedented 3′-tetrahydrofuro[2,3,4-ef]-1,4-diazepane (‘ribodiazepane’) scaffold, whereas the reaction with fU produces cationic 2,3-dihydro-1,4-diazepinium adducts via uracil ring opening. The reactivity of polyamines towards AP sites versus fU and fC can be tuned by modulating their chemical structure and pH of the reaction medium, enabling up to 20-fold chemoselectivity for AP sites with respect to fU and fC. This reaction is efficient in near-physiological conditions at low-micromolar concentration of polyamines and tolerant to the presence of a large excess of unmodified DNA. Remarkably, 3′-ribodiazepane adducts are chemically stable and resistant to the action of apurinic/apyrimidinic endonuclease 1 (APE1) and tyrosyl-DNA phosphoesterase 1 (TDP1), two DNA repair enzymes known to cleanse a variety of 3′ end-blocking DNA lesions.

Funder

European Union's Horizon 2020

Graduate School on Chemistry, Biology and Health

University Grenoble Alpes

National Cancer Institute

Publisher

Oxford University Press (OUP)

Subject

Genetics

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