4.7 Article

An Analysis of the Novel Fluorocycline TP-6076 Bound to Both the Ribosome and Multidrug Efflux Pump AdeJ from Acinetobacter baumannii

期刊

MBIO
卷 13, 期 1, 页码 -

出版社

AMER SOC MICROBIOLOGY

关键词

Acinetobacter baumannii; AdeJ; TP-6076; multidrug efflux pump; multidrug resistance; ribosomes

资金

  1. NIH [U24GM129547, R01AI145069, R01AI154860, R01AI157208, R01AI100560, R01AI063517, R01AI072219]
  2. Cleveland Department of Veterans Affairs [1I01BX001974]
  3. Geriatric Research Education and Clinical Center VISN [10]
  4. Office of Biological and Environmental Research

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This study demonstrates how the multidrug efflux pump AdeJ recognizes the experimental tetracycline antibiotic TP-6076 and inhibits its interaction with the A. baumannii ribosome using cryo-EM. Exploiting the differences in binding modes between AdeJ and the ribosome with TP-6076 may guide future drug development for combating antibiotic-resistant A. baumannii and other multidrug-resistant bacteria.
Antibiotic resistance among bacterial pathogens continues to pose a serious global health threat. Multidrug-resistant (MDR) strains of the Gram-negative organism Acinetobacter baumannii utilize a number of resistance determinants to evade current antibiotics. One of the major resistance mechanisms employed by these pathogens is the use of multidrug efflux pumps. These pumps extrude xenobiotics directly out of bacterial cells, resulting in treatment failures when common antibiotics are administered. Here, the structure of the novel tetracycline antibiotic TP6076, bound to both the Acinetobacter drug efflux pump AdeJ and the ribosome from Acinetobacter baumannii, using single-particle cryo-electron microscopy (cryoEM), is elucidated. In this work, the structure of the AdeJ-TP-6076 complex is solved, and we show that AdeJ utilizes a network of hydrophobic interactions to recognize this fluorocycline. Concomitant with this, we elucidate three structures of TP-6076 bound to the A. baumannii ribosome and determine that its binding is stabilized largely by electrostatic interactions. We then compare the differences in binding modes between TP-6076 and the related tetracycline antibiotic eravacycline in both targets. These differences suggest that modifications to the tetracycline core may be able to alter AdeJ binding while maintaining interactions with the ribosome. Together, this work highlights how different mechanisms are used to stabilize the binding of tetracycline-based compounds to unique bacterial targets and provides guidance for the future clinical development of tetracycline antibiotics. IMPORTANCE Treatment of antibiotic-resistant organisms such as A. baumannii represents an ongoing issue for modern medicine. The multidrug efflux pump AdeJ serves as a major resistance determinant in A. baumannii through its action of extruding antibiotics from the cell. In this work, we use cryo-EM to show how AdeJ recognizes the experimental tetracycline antibiotic TP-6076 and prevents this drug from interacting with the A. baumannii ribosome. Since AdeJ and the ribosome use different binding modes to stabilize interactions with TP-6076, exploiting these differences may guide future drug development for combating antibiotic-resistant A. baumannii and potentially other strains of MDR bacteria.

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