Virtual fragment screening for DNA repair inhibitors in vast chemical space

A Andreas Luttens D Duc Duy Vo (Department of Chemistry-Biomedical Centre (BMC), Uppsala University) E Emma R. Scaletti E Elisee Wiita I Ingrid Almlöf O Olov Wallner J Jonathan Davies S Sara Košenina L Liuzhen Meng M Maeve Long O Oliver Mortusewicz G Geoffrey Masuyer F Flavio Ballante M Maurice Michel E Evert Homan M Martin Scobie C Christina Kalderén U Ulrika Warpman Berglund A Andrii V. Tarnovskiy D Dmytro S. Radchenko Y Yurii S. Moroz J Jan Kihlberg (Department of Chemistry-Biomedical Centre (BMC), Uppsala University) P Pål Stenmark T Thomas Helleday J Jens Carlsson (Science for Life Laboratory, Department of Cell and Molecular Biology, Uppsala University)

Abstract

Abstract Fragment-based screening can catalyze drug discovery by identifying novel scaffolds, but this approach is limited by the small chemical libraries studied by biophysical experiments and the challenging optimization process. To expand the explored chemical space, we employ structure-based docking to evaluate orders-of-magnitude larger libraries than those used in traditional fragment screening. We computationally dock a set of 14 million fragments to 8-oxoguanine DNA glycosylase (OGG1), a difficult drug target involved in cancer and inflammation, and evaluate 29 highly ranked compounds experimentally. Four of these bind to OGG1 and X-ray crystallography confirms the binding modes predicted by docking. Furthermore, we show how fragment elaboration using searches among billions of readily synthesizable compounds identifies submicromolar inhibitors with anti-inflammatory and anti-cancer effects in cells. Comparisons of virtual screening strategies to explore a chemical space of 1022 compounds illustrate that fragment-based design enables enumeration of all molecules relevant for inhibitor discovery. Virtual fragment screening is hence a highly efficient strategy for navigating the rapidly growing combinatorial libraries and can serve as a powerful tool to accelerate drug discovery efforts for challenging therapeutic targets.

Article Details

Volume / Issue Vol. 16, Issue 1
Published February 18, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (25)

A

Andreas Luttens

D

Duc Duy Vo

Department of Chemistry-Biomedical Centre (BMC), Uppsala University

E

Emma R. Scaletti

E

Elisee Wiita

I

Ingrid Almlöf

O

Olov Wallner

J

Jonathan Davies

S

Sara Košenina

L

Liuzhen Meng

M

Maeve Long

O

Oliver Mortusewicz

G

Geoffrey Masuyer

F

Flavio Ballante

M

Maurice Michel

E

Evert Homan

M

Martin Scobie

C

Christina Kalderén

U

Ulrika Warpman Berglund

A

Andrii V. Tarnovskiy

D

Dmytro S. Radchenko

Y

Yurii S. Moroz

J

Jan Kihlberg

Department of Chemistry-Biomedical Centre (BMC), Uppsala University

P

Pål Stenmark

T

Thomas Helleday

J

Jens Carlsson

Science for Life Laboratory, Department of Cell and Molecular Biology, Uppsala University