Autor(en): Palei, Shubhendu
Weisner, Jörn
Vogt, Melina
Gontla, Rajesh
Buchmuller, Benjamin
Ehrt, Christiane
Grabe, Tobias
Kleinbölting, Silke
Müller, Matthias
Clever, Guido H.
Rauh, Daniel
Summerer, Daniel
Titel: A high-throughput effector screen identifies a novel small molecule scaffold for inhibition of ten-eleven translocation dioxygenase 2
Sprache (ISO): en
Zusammenfassung: Ten-eleven translocation dioxygenases (TETs) are the erasers of 5-methylcytosine (mC), the central epigenetic regulator of mammalian DNA. TETs convert mC to three oxidized derivatives with unique physicochemical properties and inherent regulatory potential, and it initializes active demethylation by the base excision repair pathway. Potent small molecule inhibitors would be useful tools to study TET functions by conditional control. To facilitate the discovery of such tools, we here report a high-throughput screening pipeline and its application to screen and validate 31.5k compounds for inhibition of TET2. Using a homogenous fluorescence assay, we discover a novel quinoline-based scaffold that we further validate with an orthogonal semi-high throughput MALDI-MS assay for direct monitoring of substrate turnover. Structure–activity relationship (SAR) studies involving >20 derivatives of this scaffold led to the identification of optimized inhibitors, and together with computational studies suggested a plausible model for its mode of action.
Schlagwörter (RSWK): Epigenetik
Genregulation
Säugetiere
DNS
Fluoreszenz-Resonanz-Energie-Transfer
Struktur-Aktivitäts-Beziehung
URI: http://hdl.handle.net/2003/41311
http://dx.doi.org/10.17877/DE290R-23154
Erscheinungsdatum: 2022-09-02
Rechte (Link): https://creativecommons.org/licenses/by/3.0/
Enthalten in den Sammlungen:Chemische Biologie

Dateien zu dieser Ressource:
Datei Beschreibung GrößeFormat 
d2md00186a.pdf2.17 MBAdobe PDFÖffnen/Anzeigen


Diese Ressource ist urheberrechtlich geschützt.



Diese Ressource wurde unter folgender Copyright-Bestimmung veröffentlicht: Lizenz von Creative Commons Creative Commons