Mechanistic Duality of Bacterial Efflux Substrates and Inhibitors: Example of Simple Substituted Cinnamoyl and Naphthyl Amides

Malloci G.;Margiotta E.;Vargiu A. V.;Ruggerone P.;
2021-01-01

Abstract

Antibiotic resistance poses an immediate and growing threat to human health. Multidrug efflux pumps are promising targets for overcoming antibiotic resistance with small-molecule therapeutics. Previously, we identified a diaminoquinoline acrylamide, NSC-33353, as a potent inhibitor of the AcrAB-TolC efflux pump in Escherichia coli. This inhibitor potentiates the antibacterial activities of novobiocin and erythromycin upon binding to the membrane fusion protein AcrA. It is also a substrate for efflux and lacks appreciable intrinsic antibacterial activity of its own in wild-type cells. Here, we have modified the substituents of the cinnamoyl group of NSC-33353, giving rise to analogs that retain the ability to inhibit efflux, lost the features of the efflux substrates, and gained antibacterial activity in wild-type cells. The replacement of the cinnamoyl group with naphthyl isosteres generated compounds that lack antibacterial activity but are both excellent efflux pump inhibitors and substrates. Surprisingly, these inhibitors potentiate the antibacterial activity of novobiocin but not erythromycin. Surface plasmon resonance experiments and molecular docking suggest that the replacement of the cinnamoyl group with naphthyl shifts the affinity of the compounds away from AcrA to the AcrB transporter, making them better efflux substrates and changing their mechanism of inhibition. These results provide new insights into the duality of efflux substrate/inhibitor features in chemical scaffolds that will facilitate the development of new efflux pump inhibitors.
2021
2021
Inglese
7
9
2650
2665
16
https://pubs.acs.org/doi/10.1021/acsinfecdis.1c00100
Esperti anonimi
internazionale
scientifica
AcrAB-TolC
antibiotic permeation
antibiotic potentiation
efflux pump inhibitors
Escherichia coli
Amides
Escherichia coli
Humans
Molecular Docking Simulation
Multidrug Resistance-Associated Proteins
Escherichia coli Proteins
D'Cunha, N.; Moniruzzaman, M.; Haynes, K.; Malloci, G.; Cooper, C. J.; Margiotta, E.; Vargiu, A. V.; Uddin, M. R.; Leus, I. V.; Cao, F.; Parks, J. M.; Rybenkov, V. V.; Ruggerone, P.; Zgurskaya, H. I.; Walker, J. K.
1.1 Articolo in rivista
info:eu-repo/semantics/article
1 Contributo su Rivista::1.1 Articolo in rivista
262
15
none
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