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DNA mimic foldamers affect chromatin composition and disturb cell cycle progression

Titelangaben

Kleene, Vera ; Corvaglia, Valentina ; Chacin, Erika ; Forne, Ignasi ; Konrad, David B. ; Khosravani, Pardis ; Douat, Céline ; Kurat, Christoph F. ; Huc, Ivan ; Imhof, Axel:
DNA mimic foldamers affect chromatin composition and disturb cell cycle progression.
In: Nucleic Acids Research. Bd. 51 (2023) Heft 18 . - S. 9629-9642.
ISSN 1362-4962
DOI: https://doi.org/10.1093/nar/gkad681

Angaben zu Projekten

Projekttitel:
Offizieller Projekttitel
Projekt-ID
GSC 1006 Graduiertenschule für Quantitative Biowissenschaften München (QBM)
194407719
SFB 1064 Chromatindynamik
213249687
SFB 1309 Chemische Biologie epigenetischer Modifikationen
325871075

Projektfinanzierung: Deutsche Forschungsgemeinschaft

Abstract

The use of synthetic chemicals to selectively interfere with chromatin and the chromatin-bound proteome represents a great opportunity for pharmacological intervention. Recently, synthetic foldamers that mimic the charge surface of double-stranded DNA have been shown to interfere with selected protein-DNA interactions. However, to better understand their pharmacological potential and to improve their specificity and selectivity, the effect of these molecules on complex chromatin needs to be investigated. We therefore systematically studied the influence of the DNA mimic foldamers on the chromatin-bound proteome using an in vitro chromatin assembly extract. Our studies show that the foldamer efficiently interferes with the chromatin-association of the origin recognition complex in vitro and in vivo, which leads to a disturbance of cell cycle in cells treated with foldamers. This effect is mediated by a strong direct interaction between the foldamers and the origin recognition complex and results in a failure of the complex to organise chromatin around replication origins. Foldamers that mimic double-stranded nucleic acids thus emerge as a powerful tool with designable features to alter chromatin assembly and selectively interfere with biological mechanisms.

Weitere Angaben

Publikationsform: Artikel in einer Zeitschrift
Begutachteter Beitrag: Ja
Institutionen der Universität: Fakultäten > Fakultät für Biologie, Chemie und Geowissenschaften > Fachgruppe Biologie
Titel an der UBT entstanden: Nein
Themengebiete aus DDC: 500 Naturwissenschaften und Mathematik
500 Naturwissenschaften und Mathematik > 500 Naturwissenschaften
Eingestellt am: 06 Aug 2026 08:06
Letzte Änderung: 06 Aug 2026 08:06
URI: https://eref.uni-bayreuth.de/id/eprint/99199