The type of DNA damage response after decitabine treatment depends on the level of DNMT activity

Author:

Aumer Tina12,Däther Maike12ORCID,Bergmayr Linda2ORCID,Kartika Stephanie3ORCID,Zeng Theodor2ORCID,Ge Qingyi2ORCID,Giorgio Grazia4,Hess Alexander J2ORCID,Michalakis Stylianos4ORCID,Traube Franziska R125ORCID

Affiliation:

1. Institute of Chemical Epigenetics Munich, Department of Chemistry, University of Munich (LMU), München, Germany

2. TUM School of Natural Sciences, Technical University of Munich

3. Department of Biochemistry, University of Munich (LMU), München, Germany

4. Department of Ophthalmology, University Hospital LMU Munich, München, Germany

5. Institute of Biochemistry and Technical Biochemistry, University of Stuttgart, Stuttgart, Germany

Abstract

Decitabine and azacytidine are considered as epigenetic drugs that induce DNA methyltransferase (DNMT)-DNA crosslinks, resulting in DNA hypomethylation and damage. Although they are already applied against myeloid cancers, important aspects of their mode of action remain unknown, highly limiting their clinical potential. Using a combinatorial approach, we reveal that the efficacy profile of both compounds primarily depends on the level of induced DNA damage. Under low DNMT activity, only decitabine has a substantial impact. Conversely, when DNMT activity is high, toxicity and cellular response to both compounds are dramatically increased, but do not primarily depend on DNA hypomethylation or RNA-associated processes. By investigating proteome dynamics on chromatin, we show that decitabine induces a strictly DNMT-dependent multifaceted DNA damage response based on chromatin recruitment, but not expression-level changes of repair-associated proteins. The choice of DNA repair pathway hereby depends on the severity of decitabine-induced DNA lesions. Although under moderate DNMT activity, mismatch (MMR), base excision (BER), and Fanconi anaemia–dependent DNA repair combined with homologous recombination are activated in response to decitabine, high DNMT activity and therefore immense replication stress induce activation of MMR and BER followed by non-homologous end joining.

Funder

Deutsche Forschungsgemeinschaft

Daimler und Benz Stiftung

Fonds der Chemischen Industrie

TUM Junior Fellows Fond

Publisher

Life Science Alliance, LLC

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