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The Use of a β-lactamase-based Conductimetric Biosensor Assay to Detect Biomolecular Interactions
Published on: February 1, 2018
Structural origins of oxacillinase specificity in class D β-lactamases
Cynthia M June1, Beth C Vallier, Robert A Bonomo
1Department of Chemistry, Grand Valley State University, Allendale, Michigan, USA.
Abstract:
Since the discovery and use of penicillin, the increase of antibiotic resistance among bacterial pathogens has become a major health concern. The most prevalent resistance mechanism in Gram-negative bacteria is due to β-lactamase expression. Class D β-lactamases are of particular importance due to their presence in multidrug-resistant Acinetobacter baumannii and Pseudomonas aeruginosa. The class D enzymes were initially characterized by their ability to efficiently hydrolyze isoxazolyl-type β-lactams like oxacillin. Due to this substrate preference, these enzymes are traditionally referred to as oxacillinases or OXAs. However, this class is comprised of subfamilies characterized by diverse activities that include oxacillinase, carbapenemase, or cephalosporinase substrate specificity. OXA-1 represents one subtype of class D enzyme that efficiently hydrolyzes oxacillin, and OXA-24/40 represents another with weak oxacillinase, but increased carbapenemase, activity. To examine the structural basis for the substrate selectivity differences between OXA-1 and OXA-24/40, the X-ray crystal structures of deacylation-deficient mutants of these enzymes (Lys70Asp for OXA-1; Lys84Asp for OXA-24) in complexes with oxacillin were determined to 1.4 Å and 2.4 Å, respectively. In the OXA-24/40/oxacillin structure, the hydrophobic R1 side chain of oxacillin disrupts the bridge between Tyr112 and Met223 present in the apo OXA-24/40 structure, causing the main chain of the Met223-containing loop to adopt a completely different conformation. In contrast, in the OXA-1/oxacillin structure, a hydrophobic pocket consisting of Trp102, Met99, Phe217, Leu161, and Leu255 nicely complements oxacillin's nonpolar R1 side chain. Comparison of the OXA-1/oxacillin and OXA-24/40/oxacillin complexes provides novel insight on how substrate selectivity is achieved among subtypes of class D β-lactamases. By elucidating important active site interactions, these findings can also inform the design of novel antibiotics and inhibitors.
Insights
Structural differences in class D beta-lactamases like OXA-1 and OXA-24/40 explain their varied substrate specificities, particularly against oxacillin. These insights aid in designing new antibiotics to combat bacterial resistance.
Area of Science:
- Biochemistry
- Structural Biology
- Microbiology
Background:
- Antibiotic resistance is a major global health concern, driven by enzymes like beta-lactamases.
- Class D beta-lactamases, particularly OXA enzymes, are crucial in multidrug-resistant bacteria such as Acinetobacter baumannii and Pseudomonas aeruginosa.
- These enzymes exhibit diverse substrate specificities, including oxacillinase and carbapenemase activities.
Purpose of the Study:
- To elucidate the structural basis for substrate selectivity differences between OXA-1 and OXA-24/40 beta-lactamases.
- To understand how active site interactions dictate the hydrolysis of specific antibiotic substrates.
Main Methods:
- X-ray crystallography was used to determine the structures of deacylation-deficient mutants of OXA-1 and OXA-24/40.
- Enzyme-inhibitor complexes with oxacillin were analyzed at high resolution (1.4 Å and 2.4 Å).
Main Results:
- The OXA-24/40 structure revealed that oxacillin's R1 side chain disrupts a key structural bridge, altering loop conformation.
- In contrast, OXA-1 possesses a complementary hydrophobic pocket that accommodates oxacillin's R1 side chain.
- These distinct active site interactions explain the differing substrate selectivities of OXA-1 and OXA-24/40.
Conclusions:
- Substrate selectivity among class D beta-lactamases is determined by specific active site interactions.
- Understanding these interactions provides a foundation for designing novel antibiotics and inhibitors to overcome bacterial resistance mechanisms.
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