Related Experiment Video
Updated: Nov 18, 2025

Preparation and In Vivo Use of an Activity-based Probe for N-acylethanolamine Acid Amidase
Published on: November 23, 2016
ApmA Is a Unique Aminoglycoside Antibiotic Acetyltransferase That Inactivates Apramycin
Emily Bordeleau1, Peter J Stogios2,3, Elena Evdokimova2,3
1David Braley Centre for Antibiotics Discovery, M.G. DeGroote Institute for Infectious Disease Research, Department of Biochemistry and Biomedical Sciences, McMaster University, Hamilton, Ontario, Canada.
Abstract:
Apramycin is an aminoglycoside antibiotic with the potential to be developed to combat multidrug-resistant pathogens. Its unique structure evades the clinically widespread mechanisms of aminoglycoside resistance that currently compromise the efficacy of other members in this drug class. Of the aminoglycoside-modifying enzymes that chemically alter these antibiotics, only AAC(3)-IVa has been demonstrated to confer resistance to apramycin through N-acetylation. Knowledge of other modification mechanisms is important to successfully develop apramycin for clinical use. Here, we show that ApmA is structurally unique among the previously described aminoglycoside-modifying enzymes and capable of conferring a high level of resistance to apramycin. In vitro experiments indicated ApmA to be an N-acetyltransferase, but in contrast to AAC(3)-IVa, ApmA has a unique regiospecificity of the acetyl transfer to the N2' position of apramycin. Crystallographic analysis of ApmA conclusively showed that this enzyme is an acetyltransferase from the left-handed β-helix protein superfamily (LβH) with a conserved active site architecture. The success of apramycin will be dependent on consideration of the impact of this potential form of clinical resistance.IMPORTANCE Apramycin is an aminoglycoside antibiotic that has been traditionally used in veterinary medicine. Recently, it has become an attractive candidate to repurpose in the fight against multidrug-resistant pathogens prioritized by the World Health Organization. Its atypical structure circumvents most of the clinically relevant mechanisms of resistance that impact this class of antibiotics. Prior to repurposing apramycin, it is important to understand the resistance mechanisms that could be a liability. Our study characterizes the most recently identified apramycin resistance element, apmA We show ApmA does not belong to the protein families typically associated with aminoglycoside resistance and is responsible for modifying a different site on the molecule. The data presented will be critical in the development of apramycin derivatives that will evade apmA in the event it becomes prevalent in the clinic.
Insights
A novel apramycin resistance enzyme, ApmA, has been identified. This enzyme, structurally unique and acting on a different site than previously known resistance mechanisms, could impact the clinical development of apramycin against multidrug-resistant pathogens.
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Apramycin, an aminoglycoside antibiotic, shows promise for combating multidrug-resistant pathogens due to its unique structure.
- Existing resistance mechanisms often inactivate aminoglycosides, limiting their clinical utility.
- Understanding novel resistance mechanisms is crucial for the successful repurposing of apramycin.
Purpose of the Study:
- To characterize the newly identified apramycin resistance enzyme, ApmA.
- To elucidate the structural and functional properties of ApmA.
- To assess the potential clinical implications of ApmA-mediated resistance.
Main Methods:
- Biochemical assays to determine enzyme activity and specificity.
- In vitro resistance studies.
- X-ray crystallography to determine the three-dimensional structure of ApmA.
Main Results:
- ApmA confers a high level of resistance to apramycin.
- ApmA is an N-acetyltransferase with unique regiospecificity, targeting the N2' position of apramycin.
- Crystallographic analysis revealed ApmA belongs to the left-handed β-helix (LβH) protein superfamily, distinct from typical aminoglycoside-modifying enzymes.
Conclusions:
- ApmA represents a novel mechanism of apramycin resistance, differing structurally and functionally from known enzymes.
- The unique characteristics of ApmA necessitate its consideration in the development of apramycin derivatives to overcome potential clinical resistance.
- This research is critical for guiding the future clinical application of apramycin against resistant bacterial infections.
More Related Videos
14:49A Quantitative Dot Blot Assay for AAV Titration and Its Use for Functional Assessment of the Adeno-associated Virus Assembly-activating Proteins
Published on: June 12, 2018
11:56Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Related Concept Videos
Antimicrobial Proteins
Interferons
Interferons (IFNs) are proteins produced by lymphocytes, macrophages, and fibroblasts infected with viruses. While IFNs cannot prevent viruses from entering and...
Allosteric Proteins-ATCase
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis...
Indirect-Acting Cholinergic Agonists: Mechanism of Action
Reversible inhibitors like edrophonium bind to a specific part of the enzyme called the anionic catalytic site. They form noncovalent bonds, which means they are not strongly attached to the enzyme. This creates a temporary and less stable enzyme–inhibitor complex,...
Amines to Amides: Acylation of Amines
Next, the second equivalent of amine serves as a Brønsted base and deprotonates the quaternary...
Phase II Reactions: Acetylation Reactions
The substrates for acetylation are typically drugs or their metabolites with an amino, sulfonamide, or hydrazine functional group. Acetylation can occur at several points in the drug molecule, including primary, secondary, and...
Anticholinesterase Agents: Poisoning and Treatment
Irreversible agents form a strong bond with the cholinesterase enzyme, making it inactive. The breakdown of the phosphorylated enzyme is...