Structural and Biochemical Characterization of the Interaction between KPC-2 β-Lactamase and β-Lactamase Inhibitor Protein,
- 4 September 2009
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 48 (39), 9185-9193
- https://doi.org/10.1021/bi9007963
Abstract
KPC β-lactamases hydrolyze the “last resort” β-lactam antibiotics (carbapenems) used to treat multidrug resistant infections and are compromising efforts to combat life-threatening Gram-negative bacterial infections in hospitals worldwide. Consequently, the development of novel inhibitors is essential for restoring the effectiveness of existing antibiotics. The β-lactamase inhibitor protein (BLIP) is a competitive inhibitor of a number of class A β-lactamases. In this study, we characterize the previously unreported interaction between KPC-2 β-lactamase and BLIP. Biochemical results show that BLIP is an extremely potent inhibitor of KPC enzymes, binding KPC-2 and KPC-3 with subnanomolar affinity. To understand the basis of affinity and specificity in the β-lactamase−BLIP system, the crystallographic structure of the KPC-2−BLIP complex was determined to 1.9 Å resolution. Computational alanine scanning was also conducted to identify putative hot spots in the KPC-2−BLIP interface. Interestingly, the two complexes making up the KPC-2−BLIP asymmetric unit are distinct, and in one structure, the BLIP F142 loop is absent, in contrast to homologous structures in which it occupies the active site. This finding and other sources of structural plasticity appear to contribute to BLIP’s promiscuity, enabling it to respond to mutations at the β-lactamase interface. Given the continuing emergence of antibiotic resistance, the high-resolution KPC-2−BLIP structure will facilitate its use as a template for the rational design of new inhibitors of this problematic enzyme.Keywords
This publication has 44 references indexed in Scilit:
- Activation of Leukemia-associated RhoGEF by Gα13 with Significant Conformational Rearrangements in the InterfaceJournal of Biological Chemistry, 2009
- Structural Insight into the Kinetics and ΔCp of Interactions between TEM-1 β-Lactamase and β-Lactamase Inhibitory Protein (BLIP)Journal of Biological Chemistry, 2009
- Computational Redesign of the SHV-1 β-Lactamase/β-Lactamase Inhibitor Protein InterfaceJournal of Molecular Biology, 2008
- Structures of the CCR5 N Terminus and of a Tyrosine-Sulfated Antibody with HIV-1 gp120 and CD4Science, 2007
- Crystal Structure of KPC-2: Insights into Carbapenemase Activity in Class A β-Lactamases,Biochemistry, 2007
- The Paradoxical Thermodynamic Basis for the Interaction of Ethylene Glycol, Glycine, and Sarcosine Chains with Bovine Carbonic Anhydrase II: An Unexpected Manifestation of Enthalpy/Entropy CompensationJournal of the American Chemical Society, 2006
- Energy Functions for Protein Design: Adjustment with Protein–Protein Complex Affinities, Models for the Unfolded State, and Negative Design of Solubility and SpecificityJournal of Molecular Biology, 2005
- Coot: model-building tools for molecular graphicsActa Crystallographica Section D-Biological Crystallography, 2004
- [20] Processing of X-ray diffraction data collected in oscillation modeMethods in Enzymology, 1997
- Relationship between the inhibition constant (KI) and the concentration of inhibitor which causes 50 per cent inhibition (I50) of an enzymatic reactionBiochemical Pharmacology, 1973