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Three Decades of β-Lactamase Inhibitors

Clinical Microbiology Reviews · 2010 · Vol. 23(1) · pp. 160–201
Sarah M. DrawzRobert A. Bonomo

Abstract

SUMMARY Since the introduction of penicillin, β-lactam antibiotics have been the antimicrobial agents of choice. Unfortunately, the efficacy of these life-saving antibiotics is significantly threatened by bacterial β-lactamases. β-Lactamases are now responsible for resistance to penicillins, extended-spectrum cephalosporins, monobactams, and carbapenems. In order to overcome β-lactamase-mediated resistance, β-lactamase inhibitors (clavulanate, sulbactam, and tazobactam) were introduced into clinical practice. These inhibitors greatly enhance the efficacy of their partner β-lactams (amoxicillin, ampicillin, piperacillin, and ticarcillin) in the treatment of serious Enterobacteriaceae and penicillin-resistant staphylococcal infections. However, selective pressure from excess antibiotic use accelerated the emergence of resistance to β-lactam-β-lactamase inhibitor combinations. Furthermore, the prevalence of clinically relevant β-lactamases from other classes that are resistant to inhibition is rapidly increasing. There is an urgent need for effective inhibitors that can restore the activity of β-lactams. Here, we review the catalytic mechanisms of each β-lactamase class. We then discuss approaches for circumventing β-lactamase-mediated resistance, including properties and characteristics of mechanism-based inactivators. We next highlight the mechanisms of action and salient clinical and microbiological features of β-lactamase inhibitors. We also emphasize their therapeutic applications. We close by focusing on novel compounds and the chemical features of these agents that may contribute to a “second generation” of inhibitors. The goal for the next 3 decades will be to design inhibitors that will be effective for more than a single class of β-lactamases.

Antibiotic Resistance in BacteriaAntibiotics Pharmacokinetics and EfficacyAntibiotic Use and ResistanceBeta-Lactamase InhibitorsTicarcillinPenicillinSulbactamAntibioticsTazobactamMicrobiologyAntibiotic resistancePiperacillinAmpicillin
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References
A standard numbering scheme for the class A <i>β</i>-lactamases
Biochemical Journal · 1991 · 1,069 citations
Carbapenemases: the Versatile β-Lactamases
Clinical Microbiology Reviews · 2007 · 2,447 citations
Ciprofloxacin
Drugs · 1988 · 746 citations
More extended-spectrum beta-lactamases
Antimicrobial Agents and Chemotherapy · 1991 · 704 citations
Resistance in Gram-Negative Bacteria: Enterobacteriaceae
The American Journal of Medicine · 2006 · 875 citations
AmpC β-Lactamases
Clinical Microbiology Reviews · 2009 · 2,108 citations
The real threat of Klebsiella pneumoniae carbapenemase-producing bacteria
The Lancet Infectious Diseases · 2009 · 1,576 citations
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