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Pyruvate cycle increases aminoglycoside efficacy and provides respiratory energy in bacteria.


ABSTRACT: The emergence and ongoing spread of multidrug-resistant bacteria puts humans and other species at risk for potentially lethal infections. Thus, novel antibiotics or alternative approaches are needed to target drug-resistant bacteria, and metabolic modulation has been documented to improve antibiotic efficacy, but the relevant metabolic mechanisms require more studies. Here, we show that glutamate potentiates aminoglycoside antibiotics, resulting in improved elimination of antibiotic-resistant pathogens. When exploring the metabolic flux of glutamate, it was found that the enzymes that link the phosphoenolpyruvate (PEP)-pyruvate-AcCoA pathway to the TCA cycle were key players in this increased efficacy. Together, the PEP-pyruvate-AcCoA pathway and TCA cycle can be considered the pyruvate cycle (P cycle). Our results show that inhibition or gene depletion of the enzymes in the P cycle shut down the TCA cycle even in the presence of excess carbon sources, and that the P cycle operates routinely as a general mechanism for energy production and regulation in Escherichia coli and Edwardsiella tarda These findings address metabolic mechanisms of metabolite-induced potentiation and fundamental questions about bacterial biochemistry and energy metabolism.

SUBMITTER: Su YB 

PROVIDER: S-EPMC5816162 | biostudies-literature | 2018 Feb

REPOSITORIES: biostudies-literature

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Pyruvate cycle increases aminoglycoside efficacy and provides respiratory energy in bacteria.

Su Yu-Bin YB   Peng Bo B   Li Hui H   Cheng Zhi-Xue ZX   Zhang Tian-Tuo TT   Zhu Jia-Xin JX   Li Dan D   Li Min-Yi MY   Ye Jin-Zhou JZ   Du Chao-Chao CC   Zhang Song S   Zhao Xian-Liang XL   Yang Man-Jun MJ   Peng Xuan-Xian XX  

Proceedings of the National Academy of Sciences of the United States of America 20180130 7


The emergence and ongoing spread of multidrug-resistant bacteria puts humans and other species at risk for potentially lethal infections. Thus, novel antibiotics or alternative approaches are needed to target drug-resistant bacteria, and metabolic modulation has been documented to improve antibiotic efficacy, but the relevant metabolic mechanisms require more studies. Here, we show that glutamate potentiates aminoglycoside antibiotics, resulting in improved elimination of antibiotic-resistant pa  ...[more]

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