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Mechanisms of resistance to ceftazidime/avibactam in mutants derived in vitro from Klebsiella pneumoniae producing OXA-48-like enzymes.

OBJECTIVES: To generate in vitro ceftazidime-avibactam-resistant mutants derived from Klebsiella pneumoniae producing OXA-48 or OXA-48 derivatives OXA-131 and OXA-232 carbapenemases, to define their antimicrobial susceptibility phenotype and to analyse mutations potentially involved in resistance to ceftazidime-avibactam. METHODS: Mutants were obtained by plating overnight bacterial cultures on Mueller-Hinton agar plates containing increasing concentrations of ceftazidime-avibactam (0.5/4-32/4 mg/L). MICs were determined using Sensititre™ DKMNG panels. Whole-genome sequencing of 8 parental strains and 31 mutant derivatives was performed with Illumina. RESULTS: All parental strains were susceptible to ceftazidime-avibactam (MIC ≤ 0.5/4-2/4 mg/L) and either susceptible or resistant to meropenem (MIC 0.5 to >16 mg/L) and imipenem (MIC ≤ 0.5 to >16 mg/L). MICs of ceftazidime-avibactam for the mutants increased up to 4 to >16 mg/L, while MICs of meropenem and imipenem for most mutants either increased up to >16 mg/L or remained unchanged. Whole-genome sequencing of the mutants identified alterations in genes coding for proteins related to AcrAB-TolC (AcrB, AcrR), PBPs (PBP2, PBP3), porins (OmpK36, EnvZ) or the stress or stringent responses (RseB, CpxA, SpoT). No mutations were detected in genes coding for OXA-48-like enzymes or other β-lactamases. CONCLUSIONS: Ceftazidime-avibactam can select in vitro mutants of OXA-48-like carbapenemase-producing K. pneumoniae resistant to this combination and, in some cases, also to carbapenems. No mutations related to ceftazidime-avibactam resistance were found in genes coding OXA-48-like enzymes, but they were detected in genes related to active efflux, PBPs, permeability or proteins of the stress and stringent responses.

Ceftazidime

Wildlife as a reservoir of OXA-48-like carbapenemase-producing Enterobacterales.

Carbapenemase-producing Enterobacterales (CPEs) have globally emerged and spread beyond human compartments. However, data in wild animals, especially from low- and middle-income countries, such as Algeria, are still very scarce. Here, we investigated CPEs recovered from feces samples collected between October 2021 and June 2023 from wild terrestrial and aquatic mammals, wild migratory/nesters/sedentary birds, and zoo animals, including their environment (water, food, and fecal samples of animal care workers) distributed over six Algerian provinces. Carbapenem-resistant Enterobacterales were characterized using MALDI-TOF-MS, Carba NP, immunochromatographic assay NG-Test CARBA 5, antimicrobial susceptibility testing, and whole-genome sequencing. Thirty CPEs were identified out of the 1,899 samples collected (1.6%). The carriage rate was higher in captive animals (3.2%) than in wild animals (1.2%). Twenty-six produced OXA-48, three OXA-244, and one OXA-181, along with CTX-M-15 ESBL. Clonal expansion of Enterobacter hormaechei hoffmannii ST145 and Klebsiella pneumoniae ST13 was evidenced. Plasmid analysis confirmed that 24/30 isolates harbored a transferable 62 kb IncL pOXA-48 plasmid. Five/six E. coli isolates belonged to high-risk clones with chromosome-mediated blaOXA-244 gene in three isolates, blaOXA-48 in two isolates, and blaOXA-181 gene encoded on an IncFII-ColKP3 hybrid plasmid in one isolate. This study showed widespread dissemination of OXA-48-like producing Enterobacterales in free and captive wild animals, largely driven by epidemic plasmids and clones. It underscores the role of wild animals as a reservoir of CPEs, particularly species living close to humans, such as gulls and pigeons, and occasionally food-producing animals, increasing the risk of bidirectional dissemination between animal, environmental, and human sectors.IMPORTANCEThe global rise of carbapenemase-producing Enterobacterales (CPEs) harboring blaOXA-48-like has been increasingly documented in clinical settings. However, their emergence and transmission in wild and captive animals are less documented. This study provides a high-resolution genomic characterization of CPEs isolated from the feces of wild animals, especially migratory birds, and from captive wild animals, to evaluate the potential risk of dissemination through these animals. Whole-genome sequencing data, genetic investigations, and antimicrobial susceptibility results highlighted the spread of multidrug-resistant CPEs in both animals and humans. The widespread detection of blaOXA-48 across multiple niches suggests sustained circulation beyond hospital settings in Algeria. Human-associated lineages, such as E. coli ST131, ST38, and ST540, were identified with a clear link with humans. This study demonstrates carriage of CPEs in multiple bird species living in areas commonly inhabited by humans and provides further evidence for an effective dissemination of resistance in wildlife, facilitated by feeding habits.

Animals

Spatiotemporal genomic analysis and risk assessment of the plasmids carrying blaOXA-48-like genes based on a large-scale international dataset.

BACKGROUND: The spread of OXA-48-like carbapenemases represents a major public health challenge. Although previous studies have investigated OXA-48-like carbapenemases risk factors, nosocomial dissemination, and plasmid dynamics, an integrated plasmid-centered framework combining complete plasmid mining, transmission-unit analysis, phylogenetic reconstruction, and machine learning-based risk assessment remains limited. METHODS: We systematically collected 747 complete plasmid sequences carrying blaOXA-48-like genes from the NCBI database, establishing the largest collections of complete plasmid sequences to date. Using an integrative framework of population genomics, phylogenetic dating, and machine learning, this study aimed to characterize the dissemination patterns, plasmid replicon diversity, transmission units, mobile genetic elements, co-resistance profiles, and risk classification of these plasmid. RESULTS: Plasmids carrying blaOXA-48-like genes were detected across 50 countries on six continents, with blaOXA-48 predominating in Europe, blaOXA-181 in South Asia, and blaOXA-232 largely in Asia. IncL and ColKP3/IncX3 replicons, together with Tn1999.2 and other MGEs, were central drivers of plasmid maintenance and spread. Sixteen transmission units were defined, with AA068_Cluster3 estimated to have originated in the Netherlands around 2005 before expanding to Europe, the Middle East, Asia, and North America. Co-resistance analyses revealed frequent modules involving aminoglycoside and quinolone resistance, with qnrS1 and aph(3'')-Ib most prevalent. Notably, high-risk transposon structures were often identified in non-clinical environments, underscoring their cross-ecological transmission potential. Machine learning-based classification models showed good internal performance for predefined composite-risk categories, with plasmid mobility, clinical/non-clinical source composition, and host background contributing to the classification results. CONCLUSIONS: This study provides a large-scale plasmid-centered genomic analysis of publicly available complete plasmid sequences carrying blaOXA-48-like genes, integrating transmission-unit inference, phylogeographic reconstruction, mobile genetic element and co-resistance profiling, and composite genomic risk stratification. This gene-centered framework may support future One Health-oriented antimicrobial resistance surveillance and prioritization of plasmids with higher dissemination and resistance potential.

Plasmids

Multiplex PCR assay for the rapid detection of Klebsiella pneumoniae pathotypes.

Introduction. Klebsiella pneumoniae (Kp) is a major cause of nosocomial infections, with its evolving pathotypes including multidrug-resistant, hypervirulent (hvKp) and convergent strains posing significant diagnostic and treatment challenges due to combined antimicrobial resistance and virulence.Gap Statement. While there is a pressing requirement for thorough detection of Kp pathotypes, current assays in resource-limited environments are unable to effectively focus on essential carbapenemase and hypervirulence genes with the necessary reliability and precision.Aim. To develop and validate a multiplex PCR (m-PCR) assay capable of simultaneously detecting Kp isolates including those carrying partial or full virulence markers, alongside antimicrobial resistance.Methodology. In this study, an m-PCR assay was designed and optimized for the simultaneous detection of key biomarkers associated with hypervirulent (rmpA, rmpA2, iucA, peg344 and iroB), carbapenem-resistant (bla NDM, bla OXA-48-like and bla KPC) and convergent Kp pathotypes in clinical isolates. The assay was evaluated on clinical isolates and validated against whole-genome sequencing (WGS) data for accuracy, specificity and sensitivity.Results. The developed m-PCR assay exhibited 100% specificity when compared to WGS data, successfully detecting all target genes without cross-amplification in ATCC control strains. The assay demonstrated high sensitivity, efficiently amplifying bacterial genomes from minimal DNA input as low as 1 ng µl-1. Additionally, validation through sequencing confirmed the accuracy of detected amplicons.Conclusion. This m-PCR assay offers a rapid, sensitive and specific diagnostic tool for differentiating Kp pathotypes in clinical settings, aiding in timely intervention and improved infection control measures.

Klebsiella pneumoniae

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

Carbapenem-resistant Gram-negative pathogens: molecular epidemiology, diagnostic advances, and emerging therapeutic strategies.

Carbapenem-resistant Gram-negative pathogens (CR-GNPs) have become an important global health problem, contributing significantly to healthcare-associated infections, extended hospital stays, high mortality rates, and higher healthcare costs. The dissemination of carbapenem resistance is mainly attributed to the spread of carbapenemase-encoding genes, such as the Klebsiella pneumoniae carbapenemase (KPC), the New Delhi metallo-β-lactamase (NDM), the Verona integron-encoded metallo-β-lactamase (VIM), the imipenemase (IMP), and the oxacillinase-48 (OXA-48)-like enzymes associated with clinically important Gram-negative pathogens, including Klebsiella pneumoniae, Escherichia coli, Acinetobacter baumannii, and Pseudomonas aeruginosa. As well as carbapenemase production, resistance can also develop via alteration of porins, upregulation of efflux pumps, and the buildup of several resistance factors, generating highly adaptable and hard-to-treat microbes. Phenotypic resistance patterns may not predict the underlying mechanism and accurate laboratory detection remains challenging. The identification and monitoring of carbapenem-resistant organisms have undergone improvement in recent years thanks to molecular diagnostics, rapid phenotypic tests, whole-genome sequencing and metagenomics. At the same time, new drugs have been developed, such as ceftazidime-avibactam, meropenem-vaborbactam, imipenem-relebactam, cefiderocol and combinations of aztreonam, offering increased treatment options, but with emerging resistance an issue. This mini review covers the molecular epidemiology of CR-GNPs, the latest developments and challenges in diagnosing these infections, new therapeutic options, and future perspectives on genomic surveillance, antimicrobial stewardship, and precision medicine strategies to address the increasing threat of carbapenem resistance.

Gram-negative pathogens

Global epidemiology, genomic evolution, and clinical implications of dual- and multiple-carbapenemase-producing Klebsiella pneumoniae: A systematic qualitative review.

BACKGROUND: The global emergence of dual- and multiple-carbapenemase-producing Klebsiella pneumoniae, particularly isolates co-harbouring blaNDM and blaOXA-48/OXA-48-like determinants, represents a critical threat to global health because of limited therapeutic options and expanding genomic complexity. METHODS: This systematic qualitative review synthesized evidence from 44 English-language peer-reviewed studies published between 2017 and 2026 and indexed in Scopus, with a focus on genomic evolution and spatiotemporal distribution. RESULTS: High-risk clones ST147, ST101, and ST11 were identified as major drivers of dissemination. Genomic analysis revealed key adaptive mechanisms, including stable IncL 96-kb fusion plasmids and IS10-mediated truncation of blaNDM-1, potentially reducing fitness costs while preserving resistance. Convergence events were also documented in which dual-carbapenemase-producing isolates acquired additional colistin resistance determinants (mcr-1 or mgrB alterations) and virulence-associated markers such as iuc1. Importantly, related resistance determinants were identified beyond hospital settings, including community, environmental, and food-associated reservoirs. CONCLUSION: The shift from single to dual and multiple carbapenemase production in K. pneumoniae underscores the need for integrated genomic surveillance, improved antimicrobial stewardship, and broader reservoir monitoring to address this evolving public health threat.

Klebsiella pneumoniae