Glycopeptide antibiotic to overcome the intrinsic resistance of gram-negative bacteria

Yarlagadda, Venkateswarlu ; Manjunath, Goutham B. ; Sarkar, Paramita ; Akkapeddi, Padma ; Paramanandham, Krishnamoorthy ; Shome, Bibek R. ; Ravikumar, Raju ; Haldar, Jayanta (2015) Glycopeptide antibiotic to overcome the intrinsic resistance of gram-negative bacteria ACS Infectious Diseases, 2 (2). pp. 132-139. ISSN 2373-8227

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Official URL: https://doi.org/10.1021/acsinfecdis.5b00114

Related URL: http://dx.doi.org/10.1021/acsinfecdis.5b00114

Abstract

The emergence of drug resistance along with a declining pipeline of clinically useful antibiotics has made it vital to develop more effective antimicrobial therapeutics, particularly against difficult-to-treat Gram-negative pathogens (GNPs). Many antibacterial agents, including glycopeptide antibiotics such as vancomycin, are inherently inactive toward GNPs because of their inability to cross the outer membrane of these pathogens. Here, we demonstrate, for the first time, lipophilic cationic (permanent positive charge) vancomycin analogues were able to permeabilize the outer membrane of GNPs and overcome the inherent resistance of GNPs toward glycopeptides. Unlike vancomycin, these analogues were shown to have a high activity against a variety of multidrug-resistant clinical isolates such as Escherichia coli, Klebsiella pneumoniae, Pseudomonas aeruginosa, and Acinetobacter baumannii. In the murine model of carbapenem-resistant A. baumannii infection, the optimized compound showed potent activity with no observed toxicity. The notable activity of these compounds is attributed to the incorporation of new membrane disruption mechanisms (cytoplasmic membrane depolarization along with outer and inner (cytoplasmic) membrane permeabilization) into vancomycin. Therefore, our results indicate the potential of the present vancomycin analogues to be used against drug-resistant GNPs, thus strengthening the antibiotic arsenal for combating Gram-negative bacterial infections.

Item Type:Article
Source:Copyright of this article belongs to American Chemical Society.
Keywords:Intrinsic Antibiotic Resistance; Gram-Negative Bacteria; Glycopeptide Antibiotics; Vancomycin; Antibacterial Activity
ID Code:138775
Deposited On:05 Sep 2025 11:26
Last Modified:05 Sep 2025 11:26

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