4qu3

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GES-2 ertapenem acyl-enzyme complexGES-2 ertapenem acyl-enzyme complex

Structural highlights

4qu3 is a 2 chain structure with sequence from "bacillus_aeruginosus"_(schroeter_1872)_trevisan_1885 "bacillus aeruginosus" (schroeter 1872) trevisan 1885. Full crystallographic information is available from OCA. For a guided tour on the structure components use FirstGlance.
Ligands:, , ,
Gene:bla GES-2 ("Bacillus aeruginosus" (Schroeter 1872) Trevisan 1885)
Resources:FirstGlance, OCA, PDBe, RCSB, PDBsum, ProSAT

Publication Abstract from PubMed

Carbapenems are the last resort antibiotics for treatment of life-threatening infections. The GES beta-lactamases are important contributors to carbapenem resistance in clinical bacterial pathogens. A single amino acid difference at position 170 of the GES-1, GES-2, and GES-5 enzymes is responsible for the expansion of their substrate profile to include carbapenem antibiotics. This highlights the increasing need to understand the mechanisms by which the GES beta-lactamases function to aid in development of novel therapeutics. We demonstrate that the catalytic efficiency of the enzymes with carbapenems meropenem, ertapenem, and doripenem progressively increases (100-fold) from GES-1 to -5, mainly due to an increase in the rate of acylation. The data reveal that while acylation is rate limiting for GES-1 and GES-2 for all three carbapenems, acylation and deacylation are indistinguishable for GES-5. The ertapenem-GES-2 crystal structure shows that only the core structure of the antibiotic interacts with the active site of the GES-2 beta-lactamase. The identical core structures of ertapenem, doripenem, and meropenem are likely responsible for the observed similarities in the kinetics with these carbapenems. The lack of a methyl group in the core structure of imipenem may provide a structural rationale for the increase in turnover of this carbapenem by the GES beta-lactamases. Our data also show that in GES-2 an extensive hydrogen-bonding network between the acyl-enzyme complex and the active site water attenuates activation of this water molecule, which results in poor deacylation by this enzyme.

Kinetic and Structural Requirements for Carbapenemase Activity in GES-Type beta-Lactamases.,Stewart NK, Smith CA, Frase H, Black DJ, Vakulenko SB Biochemistry. 2014 Dec 22. PMID:25485972[1]

From MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.

See Also

References

  1. Stewart NK, Smith CA, Frase H, Black DJ, Vakulenko SB. Kinetic and Structural Requirements for Carbapenemase Activity in GES-Type beta-Lactamases. Biochemistry. 2014 Dec 22. PMID:25485972 doi:http://dx.doi.org/10.1021/bi501052t

4qu3, resolution 1.40Å

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