Designing antibiotics with inherent resistance to efflux as a strategy to revive discovery against multidrug resistant pathogens

Article


Laws, M., Hind, C.K., Nahar, K., Clifford, M., Marsh, C., al Adhami, T., Louis, B., Xu, M., Alyemni, S.O., Haider, S., Hassan, M., Gargate, N., Wand, M.E., Sutton, J.M. and Rahman, K.M. 2026. Designing antibiotics with inherent resistance to efflux as a strategy to revive discovery against multidrug resistant pathogens. Journal of Medicinal Chemistry. 69 (11), pp. 13071-13098. https://doi.org/10.1021/acs.jmedchem.6c00060
TypeArticle
TitleDesigning antibiotics with inherent resistance to efflux as a strategy to revive discovery against multidrug resistant pathogens
AuthorsLaws, M., Hind, C.K., Nahar, K., Clifford, M., Marsh, C., al Adhami, T., Louis, B., Xu, M., Alyemni, S.O., Haider, S., Hassan, M., Gargate, N., Wand, M.E., Sutton, J.M. and Rahman, K.M.
Abstract

We report a novel Efflux Resistance Breaker (ERB) strategy for designing antibiotics intrinsically resistant to efflux, using fluoroquinolones as a model class. ERB-modified fluoroquinolones showed enhanced intracellular accumulation and markedly improved antibacterial activity, with up to 512-fold reduction in MIC (MIC₉₀ 0.03–2 μg/mL) across multidrug-resistant bacteria. Lead compounds KSN-L22 (46) and BL-7 (50) demonstrated potent activity against MRSA, Streptococcus pneumoniae (including MDR and PRSP), Enterococcus faecalis and E. faecium (VanA, VanB and VanD), as well as Acinetobacter baumannii and Escherichia coli. The compounds inhibited both wild-type and S84L-mutant DNA gyrase (IC50 ~3.8 μg/mL) and achieved a >4-log bacterial load reduction in a murine thigh infection model at oral doses of 50 mg/kg. Favorable oral and intravenous PK/PD profiles, absence of toxicity at 1200 mg/kg/day, and no, hERG, CYP450, or off-target liabilities were observed. ERB technology provides a promising strategy for designing antibiotics that are intrinsically less susceptible to efflux.

Sustainable Development Goals3 Good health and well-being
Middlesex University ThemeHealth & Wellbeing
PublisherAmerican Chemical Society
JournalJournal of Medicinal Chemistry
ISSN0022-2623
Electronic1520-4804
Publication dates
Online29 May 2026
Print11 Jun 2026
Publication process dates
Submitted07 Jan 2026
Accepted15 May 2026
Deposited18 May 2026
Output statusPublished
Publisher's version
License
File Access Level
Open
Copyright Statement

This publication is licensed under CC-BY 4.0 .

Digital Object Identifier (DOI)https://doi.org/10.1021/acs.jmedchem.6c00060
PubMed ID42210538
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https://repository.mdx.ac.uk/item/3684v2

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