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PubMed · 2374290

Aztreonam.

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1990. Aztreonam.. https://pubmed.ncbi.nlm.nih.gov/2374290/

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In vitro susceptibility testing of aztreonam-avibactam against predominantly NDM-producing Enterobacterales in Peru.

Metallo-β-lactamase-producing Enterobacterales are distributed worldwide, but some Latin American countries show a higher prevalence. Aztreonam-avibactam (ATM-AVI) may be an option for treating these infections. To evaluate in vitro susceptibility to aztreonam (ATM) alone and ATM-AVI in carbapenem-non-susceptible Enterobacterales isolates, based on the type of carbapenemase production, we prospectively collected carbapenem-non-susceptible Enterobacterales isolates from Peruvian hospitals during 2023-2024. Identification and susceptibility testing were performed by commercial panels and disk diffusion. Carbapenemases were detected by immunochromatography. ATM and ATM-AVI MICs were determined using broth microdilution panels with avibactam fixed at 4 µg/mL. The non-susceptible isolates to ATM-AVI and those with double production of carbapenemases underwent whole-genome sequencing. A total of 438 Enterobacterales isolates were analyzed; carbapenemase production was detected in 422 (96.3%) and NDM was the most frequent (61.9%). Coproduction of NDM + KPC in K. pneumoniae and NDM + OXA-48-like in Escherichia coli was observed. Overall, 99.3% were susceptible to ATM-AVI; MIC50 and MIC90 were 0.12 and 2 µg/mL, respectively. Overall, K. pneumoniae isolates had lower MIC50 and MIC90 values to ATM-AVI (0.12 and 0.5 µg/mL) compared to E. coli (0.5 and 4 µg/mL). Three E. coli isolates were resistant to ATM-AVI (MIC ≥ 8 µg/mL), they belonged to ST410, ST167, and ST10 and harbored a YRIN insertion in PBP3 along with CYM-type, PER-type, and CTX-M-type beta-lactamase genes. ATM-AVI demonstrated potent activity against carbapenem-non-susceptible Enterobacterales, including those producing NDM, which is the carbapenemase most frequently detected in Peruvian hospitals.IMPORTANCEEnterobacterales isolates cause common illnesses in humans. Carbapenems are the antibiotics used to treat several of these infections, and increasingly, isolates resistant to these antibiotics are found. The most important mechanism of resistance to carbapenem among Enterobacterales is the production of enzymes called carbapenemases. Our results allowed us to recognize that NDM is the most frequent type of carbapenemase detected. Most of the antimicrobials available do not cover the Enterobacterales carrying NDM carbapenemase. In this scenario, we found that the new combination of drugs, aztreonam-avibactam, has high in vitro efficacy against most of the carbapenem-resistant isolates and against those isolates carrying NDM carbapenemase.

Aztreonam↗

Using nanoparticle optics assay for direct observation of the function of antimicrobial agents in single live bacterial cells.

Multidrug resistance (MDR) has been reported in both prokaryotes and eukaryotes, underscoring the challenge of design and screening of more efficacious new drugs. For instance, the efflux pump of Pseudomonas aeruginosa (gram-negative bacteria) can extrude a variety of structurally and functionally diverse substrates, which leads to MDR. In this study, we present a new platform that studies modes of action of antibiotics in living bacterial cells (P. aeruginosa), in real-time, at nanometer scale and single-cell resolution using nanoparticle optics and single living cell imaging. The color index of silver (Ag) nanoparticles (violet, blue, green, and red) is used as the sized index (30 +/- 10, 50 +/- 10, 70 +/- 10, and 90 +/- 10 nm) for real-time measurement of sized transformation of the cell wall and membrane permeability at the nanometer scale. We have demonstrated that the number of Ag nanoparticles accumulated in cells increases as the aztreonam (AZT) concentration increases and as incubation time increases, showing that AZT induces the sized transformation of membrane permeability and the disruption of the cell wall. The results demonstrate that nanoparticle optics assay can be used as a new powerful tool for real-time characterization of modes of action of antimicrobial agents in living cells at the nanometer scale. Furthermore, studies of mutants of WT bacteria (nalB-1 and DeltaABM), suggest that an efflux pump (MexA-MexB-OprM) effectively extrudes substrates (nanoparticles) out of the cells, indicating that the MDR mechanism involves the induction of changes in membrane permeability and the intrinsic pump machinery.

Aztreonam↗

Role of a mutation at position 167 of CTX-M-19 in ceftazidime hydrolysis.

CTX-M-19 is a recently identified ceftazidime-hydrolyzing extended-spectrum beta-lactamase, which differs from the majority of CTX-M-type beta-lactamases that preferentially hydrolyze cefotaxime but not ceftazidime. To elucidate the mechanism of ceftazidime hydrolysis by CTX-M-19, the beta-lactam MICs of a CTX-M-19 producer, and the kinetic parameters of the enzyme were confirmed. We reconfirmed here that CTX-M-19 is also stable at a high enzyme concentration in the presence of bovine serum albumin (20 micro g/ml). Under this condition, we obtained more accurate kinetic parameters and determined that cefotaxime (k(cat)/K(m), 1.47 x 10(6) s(-1) M(-1)), cefoxitin (k(cat)/K(m), 62.2 s(-1) M(-1)), and aztreonam (k(cat)/K(m), 1.34 x 10(3) s(-1) M(-1)) are good substrates and that imipenem (k(+2)/K, 1.20 x 10(2) s(-1) M(-1)) is a poor substrate. However, CTX-M-18 and CTX-M-19 exhibited too high a K(m) value (2.7 to 5.6 mM) against ceftazidime to obtain their catalytic activity (k(cat)). Comparison of the MICs with the catalytic efficiency (k(cat)/K(m)) of these enzymes showed that some beta-lactams, including cefotaxime, ceftazidime, and aztreonam showed a similar correlation. Using the previously reported crystal structure of the Toho-1 beta-lactamase, which belongs to the CTX-M-type beta-lactamase group, we have suggested characteristic interactions between the enzymes and the beta-lactams ceftazidime, cefotaxime, and aztreonam by molecular modeling. Aminothiazole-bearing beta-lactams require a displacement of the aminothiazole moiety due to a severe steric interaction with the hydroxyl group of Ser167 in CTX-M-19, and the displacement affects the interaction between Ser130 and the acidic group such as carboxylate and sulfonate of beta-lactams.

Aztreonam↗