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The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress

Impaired lipopolysaccharide biosynthesis in Gram-negative bacteria results in the “deep rough” phenotype, which is characterized by increased sensitivity of cells to various hydrophobic compounds, including antibiotics novobiocin, actinomycin D, erythromycin, etc. The present study showed that E. co...

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Autores principales: Seregina, Tatiana A., Petrushanko, Irina Yu., Shakulov, Rustem S., Zaripov, Pavel I., Makarov, Alexander A., Mitkevich, Vladimir A., Mironov, Alexander S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9454879/
https://www.ncbi.nlm.nih.gov/pubmed/36078074
http://dx.doi.org/10.3390/cells11172667
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author Seregina, Tatiana A.
Petrushanko, Irina Yu.
Shakulov, Rustem S.
Zaripov, Pavel I.
Makarov, Alexander A.
Mitkevich, Vladimir A.
Mironov, Alexander S.
author_facet Seregina, Tatiana A.
Petrushanko, Irina Yu.
Shakulov, Rustem S.
Zaripov, Pavel I.
Makarov, Alexander A.
Mitkevich, Vladimir A.
Mironov, Alexander S.
author_sort Seregina, Tatiana A.
collection PubMed
description Impaired lipopolysaccharide biosynthesis in Gram-negative bacteria results in the “deep rough” phenotype, which is characterized by increased sensitivity of cells to various hydrophobic compounds, including antibiotics novobiocin, actinomycin D, erythromycin, etc. The present study showed that E. coli mutants carrying deletions of the ADP-heptose biosynthesis genes became hypersensitive to a wide range of antibacterial drugs: DNA gyrase inhibitors, protein biosynthesis inhibitors (aminoglycosides, tetracycline), RNA polymerase inhibitors (rifampicin), and β-lactams (carbenicillin). In addition, it was found that inactivation of the gmhA, hldE, rfaD, and waaC genes led to dramatic changes in the redox status of cells: a decrease in the pool of reducing NADPH and ATP equivalents, the concentration of intracellular cysteine, a change in thiol homeostasis, and a deficiency in the formation of hydrogen sulfide. In “deep rough” mutants, intensive formation of reactive oxygen species was observed, which, along with a lack of reducing agents, such as reactive sulfur species or NADPH, leads to oxidative stress and an increase in the number of dead cells in the population. Within the framework of modern ideas about the role of oxidative stress as a universal mechanism of the bactericidal action of antibiotics, inhibition of the enzymes of ADP-heptose biosynthesis is a promising direction for increasing the effectiveness of existing antibiotics and solving the problem of multidrug resistance.
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spelling pubmed-94548792022-09-09 The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress Seregina, Tatiana A. Petrushanko, Irina Yu. Shakulov, Rustem S. Zaripov, Pavel I. Makarov, Alexander A. Mitkevich, Vladimir A. Mironov, Alexander S. Cells Article Impaired lipopolysaccharide biosynthesis in Gram-negative bacteria results in the “deep rough” phenotype, which is characterized by increased sensitivity of cells to various hydrophobic compounds, including antibiotics novobiocin, actinomycin D, erythromycin, etc. The present study showed that E. coli mutants carrying deletions of the ADP-heptose biosynthesis genes became hypersensitive to a wide range of antibacterial drugs: DNA gyrase inhibitors, protein biosynthesis inhibitors (aminoglycosides, tetracycline), RNA polymerase inhibitors (rifampicin), and β-lactams (carbenicillin). In addition, it was found that inactivation of the gmhA, hldE, rfaD, and waaC genes led to dramatic changes in the redox status of cells: a decrease in the pool of reducing NADPH and ATP equivalents, the concentration of intracellular cysteine, a change in thiol homeostasis, and a deficiency in the formation of hydrogen sulfide. In “deep rough” mutants, intensive formation of reactive oxygen species was observed, which, along with a lack of reducing agents, such as reactive sulfur species or NADPH, leads to oxidative stress and an increase in the number of dead cells in the population. Within the framework of modern ideas about the role of oxidative stress as a universal mechanism of the bactericidal action of antibiotics, inhibition of the enzymes of ADP-heptose biosynthesis is a promising direction for increasing the effectiveness of existing antibiotics and solving the problem of multidrug resistance. MDPI 2022-08-27 /pmc/articles/PMC9454879/ /pubmed/36078074 http://dx.doi.org/10.3390/cells11172667 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Seregina, Tatiana A.
Petrushanko, Irina Yu.
Shakulov, Rustem S.
Zaripov, Pavel I.
Makarov, Alexander A.
Mitkevich, Vladimir A.
Mironov, Alexander S.
The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress
title The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress
title_full The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress
title_fullStr The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress
title_full_unstemmed The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress
title_short The Inactivation of LPS Biosynthesis Genes in E. coli Cells Leads to Oxidative Stress
title_sort inactivation of lps biosynthesis genes in e. coli cells leads to oxidative stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9454879/
https://www.ncbi.nlm.nih.gov/pubmed/36078074
http://dx.doi.org/10.3390/cells11172667
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