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Updated: Jul 24, 2025

Antibiotic Dereplication Using the Antibiotic Resistance Platform
Published on: October 17, 2019
Targeting the Conformational Change in ArnA Dehydrogenase for Selective Inhibition of Polymyxin Resistance
Megan E Mitchell1, Petia Z Gatzeva-Topalova1, Austin D Bargmann2
1Department of Biochemistry, University of Colorado Boulder, Boulder, Colorado 80309, United States.
Abstract:
Polymyxins are important last resort antibiotics for the treatment of infections caused by multidrug-resistant Gram-negative pathogens. However, pathogens have acquired resistance to polymyxins through a pathway that modifies lipid A with 4-amino-4-deoxy-l-arabinose (Ara4N). Inhibition of this pathway is, therefore, a desirable strategy to combat polymyxin resistance. The first pathway-specific reaction is an NAD+-dependent oxidative decarboxylation of UDP-glucuronic acid (UDP-GlcA) catalyzed by the dehydrogenase domain of ArnA (ArnA_DH). We present the crystal structure of Salmonella enterica serovar typhimurium ArnA in complex with UDP-GlcA showing that binding of the sugar nucleotide is sufficient to trigger a conformational change conserved in bacterial ArnA_DHs but absent in its human homologs, as confirmed by structure and sequence analysis. Ligand binding assays show that the conformational change is essential for NAD+ binding and catalysis. Enzyme activity and binding assays show that (i) UDP-GlcA analogs lacking the 6' carboxylic acid bind the enzyme but fail to trigger the conformational change, resulting in poor inhibition, and (ii) the uridine monophosphate moiety of the substrate provides most of the ligand binding energy. Mutation of asparagine 492 to alanine (N492A) disrupts the ability of ArnA_DH to undergo the conformational change while retaining substrate binding, suggesting that N492 is involved in sensing the 6' carboxylate in the substrate. These results identify the UDP-GlcA-induced conformational change in ArnA_DH as an essential mechanistic step in bacterial enzymes, providing a platform for selective inhibition.
Insights
Polymyxin resistance in bacteria can be overcome by inhibiting the ArnA enzyme. A key conformational change in ArnA upon binding UDP-glucuronic acid is crucial for its activity, offering a target for new antibiotic development.
Area of Science:
- Structural Biology
- Microbiology
- Drug Discovery
Background:
- Polymyxins are critical last-resort antibiotics against multidrug-resistant Gram-negative bacteria.
- Bacterial resistance to polymyxins arises from modification of lipid A by 4-amino-4-deoxy-l-arabinose (Ara4N).
- Inhibiting the Ara4N modification pathway is a promising strategy to restore polymyxin efficacy.
Purpose of the Study:
- To elucidate the structural and mechanistic basis of UDP-glucuronic acid (UDP-GlcA) binding by the ArnA dehydrogenase domain (ArnA_DH).
- To identify potential targets for selective inhibition of the bacterial resistance pathway.
Main Methods:
- X-ray crystallography of Salmonella enterica serovar typhimurium ArnA complexed with UDP-GlcA.
- Structure and sequence analysis to compare bacterial and human ArnA_DH homologs.
- Ligand binding assays, enzyme activity assays, and site-directed mutagenesis (N492A).
Main Results:
- UDP-GlcA binding induces a conserved conformational change in bacterial ArnA_DH, absent in human homologs.
- This conformational change is essential for NAD+ binding and subsequent catalysis.
- The 6' carboxylate of UDP-GlcA is critical for inducing the conformational change, and the uridine monophosphate moiety contributes significantly to binding energy.
Conclusions:
- The UDP-GlcA-induced conformational change in ArnA_DH is a key mechanistic step in bacterial polymyxin resistance.
- ArnA_DH represents a potential selective target for developing novel inhibitors to combat antibiotic resistance.
- Understanding the substrate binding interactions provides a foundation for rational drug design.
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