Simple and Efficient Synthesis of 3-Aryl-2-oxazolidinone Scaffolds Enabling Increased Potency toward Biofilms
Ndukwe, Audrey R.N., Hawas, Sophia, Qin, Jilong, Wiedbrauk, Sandra, Totsika, Makrina, Boase, Nathan R.B., & Fairfull-Smith, Kathryn E. (2023) Simple and Efficient Synthesis of 3-Aryl-2-oxazolidinone Scaffolds Enabling Increased Potency toward Biofilms. Molecular Pharmaceutics, 20(7), pp. 3484-3493.
Description
Infectious diseases caused by bacterial pathogens are a leading cause of mortality worldwide. In particular, recalcitrant bacterial communities known as biofilms are implicated in persistent and difficult to treat infections. With a diminishing antibiotic pipeline, new treatments are urgently required to combat biofilm infections. An emerging strategy to develop new treatments is the hybridization of antibiotics. The benefit of this approach is the extension of the useful lifetime of existing antibiotics. The oxazolidinones, which include the last resort antibiotic linezolid, are an attractive target for improving antibiofilm efficacy as they present one of the most recently discovered classes of antibiotics. A key step in the synthesis of new 3-aryl-2-oxazolidinone derivatives is the challenging formation of the oxazolidinone ring. Herein we report a direct synthetic route to the piperazinyl functionalized 3-aryl-2-oxazolidinone 17. We also demonstrate an application of these piperazine molecules by functionalizing them with a nitroxide moiety as a strategy to extend the useful lifetime of oxazolidinones and improve their potency against Methicillin-resistant Staphylococcus aureus (MRSA) biofilms. The antimicrobial susceptibility of the linezolid-nitroxide conjugate 11 and its corresponding methoxyamine derivative 12 (a control for biofilm dispersal) was assessed against planktonic cells and biofilms of MRSA. In comparison to linezolid and our lead compound 10 (a piperazinyl oxazolidinone derivative), the linezolid-nitroxide conjugate 11 displayed a minimum inhibitory concentration that was 4-16-fold higher. The opposite effect was seen in biofilms where the linezolid-nitroxide hybrid 11 was >2-fold more effective (160 μg/mL versus >320 μg/mL) in eradicating MRSA biofilms. The methoxyamine derivative 12 performed on par with linezolid. The drug-likeness of the compounds was also assessed, and all compounds were predicted to have good oral bioavailability. Our piperazinyl oxazolidinone derivative 10 was confirmed to be lead-like and would be a good lead candidate for future functionalized oxazolidinones. The modification of antibiotics with a dispersal agent appears to be a promising approach for eradicating MRSA biofilms and overcoming the antibiotic resistance associated with the biofilm mode of growth.
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| ID Code: | 243577 | ||||||||||||
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| Item Type: | Contribution to Journal (Journal Article) | ||||||||||||
| Refereed: | Yes | ||||||||||||
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| Additional Information: | Funding Information: We gratefully acknowledge financial support for this work from the Australian Research Council’s Future Fellowship (FT140100746 to K.E.F.-S.) and Discovery Project (DP210101317) schemes, the Ian Potter Foundation sponsorship of specialist equipment at QUT’s Centre for Immunology and Infection Control and the award of an Australian Government Research Training Program (RTP) Scholarship to A.R.N.N. We also acknowledge the Centre for Materials Science and facilities of QUT’s Central Analytical Research Facility (CARF) which is supported by funding from the Faculty of Science (QUT). | ||||||||||||
| Measurements or Duration: | 10 pages | ||||||||||||
| Keywords: | antimicrobial, biofilm, nitroxide, oxazolidinone, Staphylococcus aureus | ||||||||||||
| DOI: | 10.1021/acs.molpharmaceut.3c00095 | ||||||||||||
| ISSN: | 1543-8384 | ||||||||||||
| Pure ID: | 145559598 | ||||||||||||
| Divisions: | Current > Research Centres > Centre for Materials Science Current > Research Centres > Centre for Immunology and Infection Control Current > QUT Faculties and Divisions > Faculty of Science Current > Schools > School of Chemistry & Physics Current > QUT Faculties and Divisions > Faculty of Health Current > Schools > School of Biomedical Sciences |
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| Funding Information: | We gratefully acknowledge financial support for this work from the Australian Research Council’s Future Fellowship (FT140100746 to K.E.F.-S.) and Discovery Project (DP210101317) schemes, the Ian Potter Foundation sponsorship of specialist equipment at QUT’s Centre for Immunology and Infection Control and the award of an Australian Government Research Training Program (RTP) Scholarship to A.R.N.N. We also acknowledge the Centre for Materials Science and facilities of QUT’s Central Analytical Research Facility (CARF) which is supported by funding from the Faculty of Science (QUT). | ||||||||||||
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| Copyright Owner: | 2023 American Chemical Society. | ||||||||||||
| Copyright Statement: | This work is covered by copyright. Unless the document is being made available under a Creative Commons Licence, you must assume that re-use is limited to personal use and that permission from the copyright owner must be obtained for all other uses. If the document is available under a Creative Commons License (or other specified license) then refer to the Licence for details of permitted re-use. It is a condition of access that users recognise and abide by the legal requirements associated with these rights. If you believe that this work infringes copyright please provide details by email to qut.copyright@qut.edu.au | ||||||||||||
| Deposited On: | 05 Oct 2023 16:45 | ||||||||||||
| Last Modified: | 27 Aug 2026 07:38 |
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