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A Desmethylphosphinothricin Dipeptide Derivative Effectively Inhibits Escherichia coli and Bacillus subtilis Growth.

Authors :
Khomutov MA
Giovannercole F
Onillon L
Demiankova MV
Vasilieva BF
Salikhov AI
Kochetkov SN
Efremenkova OV
Khomutov AR
De Biase D
Source :
Biomolecules [Biomolecules] 2023 Sep 26; Vol. 13 (10). Date of Electronic Publication: 2023 Sep 26.
Publication Year :
2023

Abstract

New antibiotics are unquestionably needed to fight the emergence and spread of multidrug-resistant bacteria. To date, antibiotics targeting bacterial central metabolism have been poorly investigated. By determining the minimal inhibitory concentration (MIC) of desmethylphosphinothricin (Glu-γ-P <subscript>H</subscript> ), an analogue of glutamate with a phosphinic moiety replacing the γ-carboxyl group, we previously showed its promising antibacterial activity on Escherichia coli . Herein, we synthetized and determined the growth inhibition exerted on E. coli by an L -Leu dipeptide derivative of Glu-γ-P <subscript>H</subscript> ( L -Leu- D , L -Glu-γ-P <subscript>H</subscript> ). Furthermore, we compared the growth inhibition obtained with this dipeptide with that exerted by the free amino acid, i.e., Glu-γ-P <subscript>H</subscript> , and by their phosphonic and non-desmethylated analogues. All the tested compounds were more effective when assayed in a chemically-defined minimal medium. The dipeptide L -Leu- D , L -Glu-γ-P <subscript>H</subscript> had a significantly improved antibacterial activity (2 μg/mL), at a concentration between the non-desmethytaled (0.1 μg/mL) and the phosphonic (80 μg/mL) analogues. Also, in Bacillus subtilis , the dipeptide L -Leu- D , L -Glu-γ-P <subscript>H</subscript> displayed an activity comparable to that of the antibiotic amoxicillin. This work highlights the antibacterial relevance of the phosphinic pharmacophore and proposes new avenues for the development of novel antimicrobial drugs containing the phosphinic moiety.

Details

Language :
English
ISSN :
2218-273X
Volume :
13
Issue :
10
Database :
MEDLINE
Journal :
Biomolecules
Publication Type :
Academic Journal
Accession number :
37892133
Full Text :
https://doi.org/10.3390/biom13101451