Information from the abstract
ABSTRACT Metallo-β-lactamases (MBLs) such as IMP-1 are zinc-dependent enzymes that degrade a wide range of β-lactam antibiotics, including carbapenems. Although many efforts have been made to develop MBL inhibitors, there are no approved inhibitors to date. Polycarboxylated amoxicillin, such as diethylenetriaminepentaacetic acid (DTPA)-conjugated amoxicillin, has been developed as a potent antipseudomonal antibiotic. Interestingly, it effectively killed Pseudomonas aeruginosa clinical isolates that expressed IMP-1. We hypothesized that DTPA-amoxicillin gained activity as an MBL inhibitor due to its metal-chelating ability. Here, we investigated the inhibitory activities of DTPA-conjugated β-lactams (DTPA-β-lactams) against MBL. We synthesized a series of DTPA-β-lactams and evaluated their inhibitory activity against IMP-1 and VIM-2. Almost all DTPA-β-lactams exhibited potent inhibitory activity against IMP-1 and VIM-2. Notably, these DTPA-β-lactams remarkably resensitized IMP-1-expressing bacteria, including Klebsiella pneumoniae , Escherichia coli , Citrobacter amalonaticus , and C. freundii , against carbapenem. In in vivo mouse models, a representative DTPA-β-lactam pretreatment drastically enhanced the therapeutic effect of meropenem against lethal infections by IMP-1-expressing bacteria. These observations warrant further investigation of chelator-conjugated β-lactam as new MBL inhibitors to treat carbapenem-resistant bacterial infections. IMPORTANCE The global rise of antibiotic-resistant bacteria has become a serious threat to public health. Among them, gram-negative bacteria harboring metallo-β-lactamase (MBL) genes, which inactivate carbapenems—the last-resort antibiotics—pose a particular challenge due to the lack of effective therapeutic options. In this study, we developed β-lactam-based compounds incorporating a metal-chelating moiety designed to inhibit MBL. These compounds demonstrated potent inhibitory activity against MBL. Moreover, when combined with carbapenems, they significantly restored antibacterial efficacy in MBL-producing strains. Despite their structural simplicity, the compounds offer substantial flexibility in chemical modification, allowing for tailored optimization against different resistant pathogens. These findings suggest that such inhibitors could serve as promising candidates for novel combination therapies targeting MBL-mediated resistance, contributing to the development of next-generation antimicrobial strategies.
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Related topics: Antibiotic Resistance in Bacteria · Antibiotics Pharmacokinetics and Efficacy · Pneumonia and Respiratory Infections
Thai researcher and institutional participation
Kanyawee Nakburee · Worasak Kaewkong · Naresuan University Hospital · Naresuan University
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