Introducing structure-based three-dimensional pharmacophore models for accelerating the discovery of selective BRD9 binders.


Journal

Bioorganic chemistry
ISSN: 1090-2120
Titre abrégé: Bioorg Chem
Pays: United States
ID NLM: 1303703

Informations de publication

Date de publication:
01 2022
Historique:
received: 08 08 2021
revised: 03 11 2021
accepted: 07 11 2021
pubmed: 26 11 2021
medline: 14 1 2022
entrez: 25 11 2021
Statut: ppublish

Résumé

A well-structured in silico workflow is here reported for disclosing structure-based pharmacophore models against bromodomain-containing protein 9 (BRD9), accelerating virtual screening campaigns and facilitating the identification of novel binders. Specifically, starting from 23 known ligands co-crystallized with BRD9, three-dimensional pharmacophore models, namely placed in a reference protein structure, were developed. Specifically, we here introduce a fragment-related pharmacophore model, useful for the identification of new promising small chemical probes targeting the protein region responsible of the acetyllysine recognition, and two further pharmacophore models useful for the selection of compounds featuring drug-like properties. A pharmacophore-driven virtual screening campaign was then performed to facilitate the selection of new selective BRD9 ligands, starting from a large library of commercially available molecules. The identification of a promising BRD9 binder (7) prompted us to re-iterate this computational workflow on a second focused in-house built library of synthesizable compounds and, eventually, three further novel BRD9 binders were disclosed (8-10). Moreover, all these compounds were tested among a panel comprising other nine bromodomains, showing a high selectivity for BRD9. Preclinical bioscreens for potential anticancer activity highlighted compound 7 as that showing the most promising biological effects, proving the reliability of this in silico pipeline and confirming the applicability of the here introduced structure-based three-dimensional (3D) pharmacophore models as straightforward tools for the selection of new BRD9 ligands.

Identifiants

pubmed: 34823196
pii: S0045-2068(21)00858-0
doi: 10.1016/j.bioorg.2021.105480
pii:
doi:

Substances chimiques

BRD9 protein, human 0
Quinoxalines 0
Transcription Factors 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

105480

Informations de copyright

Copyright © 2021 Elsevier Inc. All rights reserved.

Auteurs

Martina Pierri (M)

Department of Pharmacy, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy; PhD Program in Drug Discovery and Development, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy.

Erica Gazzillo (E)

Department of Pharmacy, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy; PhD Program in Drug Discovery and Development, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy.

Maria Giovanna Chini (MG)

Department of Biosciences and Territory, University of Molise, C.da Fonte Lappone, Pesche 86090, Italy.

Maria Grazia Ferraro (MG)

Department of Pharmacy, School of Medicine and Surgery, University of Naples, Via Domenico Montesano 49, Naples 80131, Italy.

Marialuisa Piccolo (M)

Department of Pharmacy, School of Medicine and Surgery, University of Naples, Via Domenico Montesano 49, Naples 80131, Italy.

Francesco Maione (F)

Department of Pharmacy, School of Medicine and Surgery, University of Naples, Via Domenico Montesano 49, Naples 80131, Italy.

Carlo Irace (C)

Department of Pharmacy, School of Medicine and Surgery, University of Naples, Via Domenico Montesano 49, Naples 80131, Italy.

Giuseppe Bifulco (G)

Department of Pharmacy, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy.

Ines Bruno (I)

Department of Pharmacy, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy.

Stefania Terracciano (S)

Department of Pharmacy, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy. Electronic address: sterracciano@unisa.it.

Gianluigi Lauro (G)

Department of Pharmacy, University of Salerno, Via Giovanni Paolo II 132, Fisciano 84084, Italy. Electronic address: glauro@unisa.it.

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Classifications MeSH