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.

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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