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.

Biochemistry
|July 6, 2023
PubMed

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.