Related Experiment Video
Updated: Mar 30, 2026

The Use of a β-lactamase-based Conductimetric Biosensor Assay to Detect Biomolecular Interactions
Published on: February 1, 2018
Analysis of the Structure and Function of FOX-4 Cephamycinase
S T Lefurgy1, V N Malashkevich2, J T Aguilan2
1Department of Chemistry, Hofstra University, Hempstead, New York, USA.
Abstract:
Class C β-lactamases poorly hydrolyze cephamycins (e.g., cefoxitin, cefotetan, and moxalactam). In the past 2 decades, a new family of plasmid-based AmpC β-lactamases conferring resistance to cefoxitin, the FOX family, has grown to include nine unique members descended from the Aeromonas caviae chromosomal AmpC. To understand the basis for the unique cephamycinase activity in the FOX family, we determined the first X-ray crystal structures of FOX-4, apo enzyme and the acyl-enzyme with its namesake compound, cefoxitin, using the Y150F deacylation-deficient variant. Notably, recombinant expression of N-terminally tagged FOX-4 also yielded an inactive adenylylated enzyme form not previously observed in β-lactamases. The posttranslational modification (PTM), which occurs on the active site Ser64, would not seem to provide a selective advantage, yet might present an opportunity for the design of novel antibacterial drugs. Substantial ligand-induced changes in the enzyme are seen in the acyl-enzyme complex, particularly the R2 loop and helix H10 (P289 to N297), with movement of F293 by 10.3 Å. Taken together, this study provides the first picture of this highly proficient class C cephamycinase, uncovers a novel PTM, and suggests a possible cephamycin resistance mechanism involving repositioning of the substrate due to the presence of S153P, N289P, and N346I substitutions in the ligand binding pocket.
Insights
Researchers explored the FOX-4 enzyme, a cephamycinase, revealing its unique resistance mechanisms. Structural analysis uncovered a novel posttranslational modification and substrate repositioning, offering insights for new antibacterial drug design.
Area of Science:
- Biochemistry
- Structural Biology
- Microbiology
Background:
- Class C β-lactamases exhibit limited hydrolysis of cephamycins.
- The FOX family of plasmid-based AmpC β-lactamases confers cefoxitin resistance.
- Nine FOX family members, derived from Aeromonas caviae AmpC, have emerged.
Purpose of the Study:
- To elucidate the structural basis for the FOX family's cephamycinase activity.
- To characterize the FOX-4 enzyme structure and its interaction with cefoxitin.
- To investigate a novel posttranslational modification in β-lactamases.
Main Methods:
- X-ray crystallography of FOX-4 apo enzyme and cefoxitin acyl-enzyme complex.
- Utilized a Y150F deacylation-deficient variant for structural studies.
- Analyzed recombinant expression products, including an adenylylated form.
Main Results:
- Determined the first X-ray crystal structures of FOX-4 (apo and acyl-enzyme).
- Identified a novel adenylylated inactive enzyme form (posttranslational modification on Ser64).
- Observed significant ligand-induced conformational changes, including R2 loop and H10 helix repositioning.
Conclusions:
- Provides the first structural insights into a proficient class C cephamycinase.
- Uncovers a novel posttranslational modification in β-lactamases.
- Suggests substrate repositioning due to specific amino acid substitutions as a resistance mechanism.
More Related Videos
Related Concept Videos
Inhibitors of Gram-positive Cell Wall Synthesis
Mechanism of Antibiotic Resistance in MRSA
Bacterial Cell Wall
Inducible Operons: lac Operon
Operon Model
Clinical Significance of Antibiotic Resistance

