Molecular responses during bacterial filamentation reveal inhibition methods of drug-resistant bacteria.

Zhang, Dongxue; Yin, Fan; Qin, Qin; Qiao, Liang · Proc Natl Acad Sci U S A · 2023

basic_science · Level V

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Abstract

Bacterial antimicrobial resistance (AMR) is among the most significant challenges to current human society. Exposing bacteria to antibiotics can activate their self-saving responses, e.g., filamentation, leading to the development of bacterial AMR. Understanding the molecular changes during the self-saving responses can reveal new inhibition methods of drug-resistant bacteria. Herein, we used an online microfluidics mass spectrometry system for real-time characterization of metabolic changes of bacteria during filamentation under the stimulus of antibiotics. Significant pathways, e.g., nucleotide metabolism and coenzyme A biosynthesis, correlated to the filamentation of extended-spectrum beta-lactamase-producing <i>Escherichia coli</i> (ESBL-<i>E. coli</i>) were identified. A cyclic dinucleotide, c-di-GMP, which is derived from nucleotide metabolism and reported closely related to bacterial resistance and tolerance, was observed significantly up-regulated during the bacterial filamentation. By using a chemical inhibitor, ebselen, to inhibit diguanylate cyclases which catalyzes the synthesis of c-di-GMP, the minimum inhibitory concentration of ceftriaxone against ESBL-<i>E. coli</i> was significantly decreased. This inhibitory effect was also verified with other ESBL-<i>E. coli</i> strains and other beta-lactam antibiotics, i.e., ampicillin. A mutant strain of ESBL-<i>E. coli</i> by knocking out the <i>dgcM</i> gene was used to demonstrate that the inhibition of the antibiotic resistance to beta-lactams by ebselen was mediated through the inhibition of the diguanylate cyclase DgcM and the modulation of c-di-GMP levels. Our study uncovers the molecular changes during bacterial filamentation and proposes a method to inhibit antibiotic-resistant bacteria by combining traditional antibiotics and chemical inhibitors against the enzymes involved in bacterial self-saving responses.

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