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IOX1 activity as sepsis therapy and an antibiotic against multidrug-resistant bacteria.


ABSTRACT: Sepsis is caused by organ dysfunction initiated by an unrestrained host immune response to infection. The emergence of antibiotic-resistant bacteria has rapidly increased in the last decades and has stimulated a firm research platform to combat infections caused by antibiotic-resistant bacteria that cannot be eradicated with conventional antibiotics. Strategies like epigenetic regulators such as lysine demethylase (Kdm) has received attention as a new target. Thus, we sought to investigate the epigenetic mechanisms in sepsis pathophysiology with the aim of discovering new concepts for treatment. A transcriptome analysis of dendritic cells during their inflammatory state identified Kdm as a critical molecule in sepsis regulation. Next, 8-hydroxyquinoline-5-carboxylic acid (IOX1) ability to control endotoxemia induced by Lipopolysaccharide and bacterial sepsis was demonstrated. IOX1 has been shown to regulate endotoxemia and sepsis caused by Escherichia coli and carbapenem-resistant Acinetobacter baumannii and has also contributed to the suppression of multidrug-resistant bacterial growth through the inhibition of DNA Gyrase. These findings show that IOX1 could be a component agent against bacterial sepsis by functioning as a broad-spectrum antibiotic with dual effects.

SUBMITTER: Lee SJ 

PROVIDER: S-EPMC7858575 | biostudies-literature | 2021 Feb

REPOSITORIES: biostudies-literature

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IOX1 activity as sepsis therapy and an antibiotic against multidrug-resistant bacteria.

Lee Su Jin SJ   You Jueng Soo JS   Gharbi Amal A   Kim Yong Joo YJ   Lee Mi Suk MS   Kim Dong Hwan DH   Lee Keun Woo KW   Jung In Duk ID   Park Yeong Min YM  

Scientific reports 20210203 1


Sepsis is caused by organ dysfunction initiated by an unrestrained host immune response to infection. The emergence of antibiotic-resistant bacteria has rapidly increased in the last decades and has stimulated a firm research platform to combat infections caused by antibiotic-resistant bacteria that cannot be eradicated with conventional antibiotics. Strategies like epigenetic regulators such as lysine demethylase (Kdm) has received attention as a new target. Thus, we sought to investigate the e  ...[more]

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