Target intelligence / Profile preview

Serine beta-lactamase (Ambler Class A, C, and D) (SBL)

Target
SBL
Molecular classification
Enzyme, Hydrolase
01

Overview

Serine beta-lactamases (SBLs) are bacterial enzymes classified into Ambler Classes A, C, and D that confer resistance to beta-lactam antibiotics by hydrolyzing the amide bond of the beta-lactam ring (Bush & Bradford, 2016, Cold Spring Harb Perspect Med). These enzymes utilize a catalytic serine residue to perform a nucleophilic attack on the antibiotic, leading to its inactivation (Tooke et al., 2019, J Mol Biol). SBLs are widely distributed among Gram-negative pathogens and are responsible for resistance to penicillins, cephalosporins, and carbapenems, posing a significant threat to global health (Bonomo, 2017, Cold Spring Harb Perspect Med). Class A enzymes include the widespread TEM, SHV, and KPC variants, while Class C (AmpC) and Class D (OXA) enzymes further expand the resistance profile of bacteria (Bush, 2018, Expert Opin Ther Targets). Therapeutic strategies involve the use of beta-lactamase inhibitors, such as clavulanic acid, tazobactam, or the newer diazabicyclooctane (DBO) inhibitor avibactam, which bind to the active site serine to prevent antibiotic degradation (Papp-Wallace et al., 2011, Antimicrob Agents Chemother). These inhibitors are typically administered in combination with a beta-lactam antibiotic to restore its efficacy against resistant strains (Drawz & Bonomo, 2010, Clin Microbiol Rev).

Other names
Serine-based beta-lactamasesAmbler Class A beta-lactamasesAmbler Class C beta-lactamasesAmbler Class D beta-lactamasesPenicillinasesCephalosporinasesOxacillinases
02

Mechanism of action

Beta-lactamase inhibitors bind to the active site of the serine beta-lactamase enzyme, often forming a stable covalent intermediate that prevents the enzyme from degrading beta-lactam antibiotics, thereby restoring the efficacy of the co-administered antibiotic (Drawz & Bonomo, 2010, Clin Microbiol Rev).

03

Biological functions

Bacterial defense mechanismHydrolysis of beta-lactam antibioticsAntibiotic resistance
04

Disease associations

Bacterial infectionAntimicrobial resistance
05

Safety considerations

Development of inhibitor-resistant beta-lactamase variantsInduction of AmpC expression by certain inhibitorsAllergic reactions to beta-lactam/inhibitor combinationsAlteration of gut microbiome
06

Interacting drugs

Clavulanic acid

8 more in the full profile.

07

Biomarkers

blaKPC geneblaTEM geneblaSHV geneblaCTX-M geneblaOXA geneblaAmpC geneCarbapenem-resistant Enterobacteriaceae (CRE) status

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