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The Use of a β-lactamase-based Conductimetric Biosensor Assay to Detect Biomolecular Interactions
Published on: February 1, 2018
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.
Abstract:
Extended spectrum beta-lactamases (ESBLs) confer bacterial resistance to third-generation cephalosporins, such as cefotaxime and ceftazidime, increasing hospital mortality rates. Whereas these antibiotics are almost impervious to classic beta-lactamases, such as TEM-1, ESBLs have one to four orders greater activity against them. The origins of this activity have been widely studied for the TEM and SHV-type ESBLs, but have received less attention for the CTX-M beta-lactamases, an emerging family that is now the dominant ESBL in several regions. To understand how CTX-M beta-lactamases achieve their remarkable activity, biophysical and structural studies were undertaken. Using reversible, two-state thermal denaturation, it was found that as these enzymes evolve a broader substrate range, they sacrifice stability. Thus, the mutant enzyme CTX-M-16 is eightfold more active against ceftazidime than the pseudo-wild-type CTX-M-14 but is 1.9 kcal/mol less stable. This is consistent with a "stability-activity tradeoff," similar to that observed in the evolution of other resistance enzymes. To investigate the structural basis of enzyme activity and stability, the structures of four CTX-M enzymes were determined by X-ray crystallography. The structures of CTX-M-14, CTX-M-27, CTX-M-9 and CTX-M-16 were determined to 1.10 Angstroms, 1.20 Angstroms, 0.98 Angstroms and 1.74 Angstroms resolution, respectively. The enzyme active sites resemble those of the narrow-spectrum TEM-1 and SHV-1, and not the enlarged sites typical of ESBL mutants such as TEM-52 and TEM-64. Instead, point substitutions leading to specific interactions may be responsible for the improved activity against ceftazidime and cefotaxime, consistent with observations first made for the related Toho-1 enzyme. The broadened substrate range of CTX-M-16 may result from coupled defects in the enzyme's B3 strand, which lines the active site. Substitutions Val231-->Ala and Asp240-->Gly, which convert CTX-M-14 into CTX-M-16, occur at either end of this strand. These defects appear to increase the mobility of B3 based on anisotropic B-factor analyses at ultrahigh resolution, consistent with stability loss and activity gain. The unusually high resolution of these structures that makes such analyses possible also makes them good templates for inhibitor discovery.
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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