Atomic resolution structures of CTX-M beta-lactamases: extended spectrum activities from increased mobility and

Yu Chen1, Julien Delmas, Jacques Sirot

  • 1Department of Pharmaceutical Chemistry, University of California, San Francisco, Genentech Hall, 600 16th Street, San Francisco, CA 94143-2240, USA.

Insights

Extended spectrum beta-lactamases (ESBLs) gain antibiotic resistance by sacrificing enzyme stability, a trade-off observed in CTX-M enzymes. Structural studies reveal point substitutions, not enlarged active sites, drive this enhanced activity against critical antibiotics.

Area of Science:

  • Biochemistry
  • Structural Biology
  • Microbiology

Background:

  • Extended spectrum beta-lactamases (ESBLs) are enzymes conferring bacterial resistance to third-generation cephalosporins, contributing to increased hospital mortality.
  • While TEM and SHV-type ESBLs have been studied, the mechanisms behind the emerging and dominant CTX-M family's activity remain less understood.
  • Understanding CTX-M evolution is crucial for combating antibiotic resistance, particularly against widely used cephalosporins like cefotaxime and ceftazidime.

Purpose of the Study:

  • To elucidate the biophysical and structural basis for the high activity of CTX-M beta-lactamases against cephalosporin antibiotics.
  • To investigate the relationship between enzyme stability and substrate activity in the CTX-M family.
  • To provide high-resolution structural data for potential inhibitor design against ESBL-producing bacteria.

Main Methods:

  • Reversible, two-state thermal denaturation was employed to assess enzyme stability.
  • X-ray crystallography was used to determine the high-resolution structures of four CTX-M enzymes (CTX-M-14, CTX-M-27, CTX-M-9, and CTX-M-16).
  • Analysis of enzyme active site structures and B-factor data to correlate structural features with activity and stability.

Main Results:

  • A stability-activity tradeoff was observed: CTX-M-16, with eightfold higher activity against ceftazidime than CTX-M-14, exhibited reduced stability.
  • High-resolution structures revealed CTX-M active sites resemble narrow-spectrum enzymes, with point substitutions, not enlarged sites, likely conferring broader activity.
  • Specific substitutions (Val231-->Ala, Asp240-->Gly) in CTX-M-16 appear to increase B3 strand mobility, correlating with stability loss and activity gain.

Conclusions:

  • The enhanced activity of CTX-M beta-lactamases against cephalosporins results from specific point mutations that decrease enzyme stability, rather than active site enlargement.
  • The observed stability-activity tradeoff is a key evolutionary mechanism in the development of antibiotic resistance.
  • The ultrahigh-resolution structures provide a valuable template for the rational design of novel inhibitors targeting CTX-M enzymes.

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