Targeting N-Acetylglucosaminidase in Staphylococcus aureus with Iminosugar Inhibitors

Author:

Sluga Janja12,Tomašič Tihomir2ORCID,Anderluh Marko2ORCID,Rambaher Martina Hrast2,Bajc Gregor3,Sevšek Alen4,Martin Nathaniel I.45,Pieters Roland J.4ORCID,Novič Marjana1ORCID,Venko Katja1ORCID

Affiliation:

1. Laboratory for Cheminformatics, Theory Department, National Institute of Chemistry, Hajdrihova ulica 19, 1000 Ljubljana, Slovenia

2. Department of Pharmaceutical Chemistry, Faculty of Pharmacy, University of Ljubljana, Aškerčeva cesta 7, 1000 Ljubljana, Slovenia

3. Department of Biology, Biotechnical Faculty, University of Ljubljana, Jamnikarjeva 111, 1000 Ljubljana, Slovenia

4. Department of Chemical Biology & Drug Discovery, Utrecht University, Universiteitsweg 99, 3584 Utrecht, The Netherlands

5. Biological Chemistry Group, Institute of Biology, Leiden University, Sylviusweg 72, 2333 Leiden, The Netherlands

Abstract

Bacteria are capable of remarkable adaptations to their environment, including undesirable bacterial resistance to antibacterial agents. One of the most serious cases is an infection caused by multidrug-resistant Staphylococcus aureus, which has unfortunately also spread outside hospitals. Therefore, the development of new effective antibacterial agents is extremely important to solve the increasing problem of bacterial resistance. The bacteriolytic enzyme autolysin E (AtlE) is a promising new drug target as it plays a key role in the degradation of peptidoglycan in the bacterial cell wall. Consequently, disruption of function can have an immense impact on bacterial growth and survival. An in silico and in vitro evaluation of iminosugar derivatives as potent inhibitors of S. aureus (AtlE) was performed. Three promising hit compounds (1, 3 and 8) were identified as AtlE binders in the micromolar range as measured by surface plasmon resonance. The most potent compound among the SPR response curve hits was 1, with a KD of 19 μM. The KD value for compound 8 was 88 μM, while compound 3 had a KD value of 410 μM.

Funder

Slovenian Research and Inovation Agency

Publisher

MDPI AG

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