Related Experiment Video
Updated: Dec 10, 2025

Isolation and Identification of Waterborne Antibiotic-Resistant Bacteria and Molecular Characterization of their Antibiotic Resistance Genes
Published on: March 3, 2023
Epidemiologic, Phenotypic, and Structural Characterization of Aminoglycoside-Resistance Gene aac(3)-IV
Michel Plattner1, Marina Gysin1, Klara Haldimann1
1Institute of Medical Microbiology, University of Zurich, 8006 Zurich, Switzerland.
Abstract:
Aminoglycoside antibiotics are powerful bactericidal therapeutics that are often used in the treatment of critical Gram-negative systemic infections. The emergence and global spread of antibiotic resistance, however, has compromised the clinical utility of aminoglycosides to an extent similar to that found for all other antibiotic-drug classes. Apramycin, a drug candidate currently in clinical development, was suggested as a next-generation aminoglycoside antibiotic with minimal cross-resistance to all other standard-of-care aminoglycosides. Here, we analyzed 591,140 pathogen genomes deposited in the NCBI National Database of Antibiotic Resistant Organisms (NDARO) for annotations of apramycin-resistance genes, and compared them to the genotypic prevalence of carbapenem resistance and 16S-rRNA methyltransferase (RMTase) genes. The 3-N-acetyltransferase gene aac(3)-IV was found to be the only apramycin-resistance gene of clinical relevance, at an average prevalence of 0.7%, which was four-fold lower than that of RMTase genes. In the important subpopulation of carbapenemase-positive isolates, aac(3)-IV was nine-fold less prevalent than RMTase genes. The phenotypic profiling of selected clinical isolates and recombinant strains expressing the aac(3)-IV gene confirmed resistance to not only apramycin, but also gentamicin, tobramycin, and paromomycin. Probing the structure-activity relationship of such substrate promiscuity by site-directed mutagenesis of the aminoglycoside-binding pocket in the acetyltransferase AAC(3)-IV revealed the molecular contacts to His124, Glu185, and Asp187 to be equally critical in binding to apramycin and gentamicin, whereas Asp67 was found to be a discriminating contact. Our findings suggest that aminoglycoside cross-resistance to apramycin in clinical isolates is limited to the substrate promiscuity of a single gene, rendering apramycin best-in-class for the coverage of carbapenem- and aminoglycoside-resistant bacterial infections.
Insights
Apramycin shows limited cross-resistance in bacterial infections, with the apramycin-resistance gene aac(3)-IV being rare. This makes apramycin a promising option for treating resistant Gram-negative infections.
Area of Science:
- Microbiology
- Genetics
- Pharmacology
Background:
- Aminoglycoside antibiotics are vital for treating Gram-negative infections.
- Antibiotic resistance is diminishing the effectiveness of current aminoglycosides.
- Apramycin is a novel aminoglycoside candidate with potential for reduced cross-resistance.
Purpose of the Study:
- To investigate the prevalence of apramycin-resistance genes in bacterial pathogens.
- To compare apramycin resistance with carbapenem resistance and 16S-rRNA methyltransferase (RMTase) gene prevalence.
- To understand the structural basis of apramycin resistance.
Main Methods:
- Analysis of 591,140 pathogen genomes from the NCBI National Database of Antibiotic Resistant Organisms (NDARO).
- Genomic annotation for apramycin-resistance genes, carbapenem resistance, and RMTase genes.
- Phenotypic profiling of clinical isolates and recombinant strains; site-directed mutagenesis of the AAC(3)-IV acetyltransferase.
Main Results:
- The 3-N-acetyltransferase gene aac(3)-IV was the sole clinically relevant apramycin-resistance gene, found in 0.7% of isolates.
- aac(3)-IV prevalence was four-fold lower than RMTase genes and nine-fold lower in carbapenemase-positive isolates.
- Phenotypic analysis confirmed resistance to apramycin, gentamicin, tobramycin, and paromomycin; structural analysis identified key binding contacts.
Conclusions:
- Apramycin resistance in clinical isolates is primarily mediated by the promiscuous aac(3)-IV gene.
- Apramycin exhibits limited cross-resistance, making it a valuable therapeutic option.
- Apramycin is a promising candidate for treating infections with carbapenem and aminoglycoside resistance.
More Related Videos
05:06Author Spotlight: Advancing Antibiotic Resistance Research Using an Efflux-Deficient Bacterial Strain and a Single-Copy Gene Expression System
Published on: January 5, 2024
09:44Characterization of a Pathogenic Escherichia coli Strain Derived from Oreochromis spp. Farms Using Whole-Genome Sequencing
Published on: December 23, 2022
Related Concept Videos
Estimation of k and VD of Aminoglycosides
Development of Antibiotic Resistance
Antibiotic Selection
Gene Regulation in Microbial Communities: Quorum Sensing