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Tokajian, S.

Publications and source records attributed to Tokajian, S..

5 recordsLinked to original sources

Within-host succession from an OXA-48-like to an NDM-type carbapenemase in clonal ST361 Escherichia coli recovered from sequential urinary and bloodstream infection

Carbapenem-resistant Escherichia coli (CREc) recovered sequentially from one patient typically retain the same carbapenemase, with escalating resistance usually attributed to porin loss combined with pre-existing {beta}-lactamase expression. We used whole-genome sequencing to characterize a clonal pair of CREc isolates, CAEC145 and CAEC155, recovered 25 days apart from a hospitalized patient with sequential urinary and bloodstream infection. Both belonged to sequence type 361 (ST361), phylogroup A, serotype O-nontypeable:H30, and were separated by only 28 core-genome SNPs, confirming clonal relatedness. Despite this, the isolates differed sharply in carbapenemase content. CAEC145 carried blaOXA-1207, a recently described OXA-48-family variant, on a conjugative IncFII(pCoo)/ColKP3 plasmid, whereas CAEC155 lacked this determinant and instead harbored blaNDM-4 on a conserved IncX3 plasmid nearly identical to pJEG027, a member of a globally disseminated IncX3 lineage. This genotypic shift tracked a clear phenotypic transition. CAEC145 remained susceptible to imipenem and meropenem while resistant to ertapenem, whereas CAEC155 showed uniform high-level resistance to all three carbapenems and to ceftazidime-avibactam. Both isolates, however, remained susceptible to imipenem-relebactam, meropenem-vaborbactam, and cefiderocol. Comparative genomics linked the blaOXA-1207 element to a {Delta}Tn6361 transposon structure also found in the original German isolates where blaOXA-1207 was first described, and a 137-genome core-genome phylogeny placed both isolates within a globally disseminated ST361 lineage carrying multiple carbapenemase classes. These findings document, to our knowledge, the first within-host succession from an OXA-48-like to an NDM-type carbapenemase during a single sequential E. coli infection, driven by plasmid-level displacement rather than in-place gene evolution, with implications for genomic surveillance and antibiotic selection.

genomics↗

Emergence of a novel hypervirulent extensively drug-resistant ST383 Klebsiella pneumoniae lineage carrying ICEKp5 in Lebanon

Klebsiella pneumoniae ST383 has emerged as a high-risk clone, characterized by carbapenem resistance and increasing detection of hypervirulence determinants. We describe a novel ST383 lineage in Lebanon, defined by the acquisition of ICEKp5, which carries the yersiniabactin locus. Three ST383 K. pneumoniae clinical isolates (LBN_CAKp91, LBN_CTKp3, LBN_CTKp11) recovered from a Lebanese medical center were subjected to whole-genome sequencing. Comparative genomic analysis included regional ST383 strains and previously characterized Lebanese isolates. The study isolates formed a tight, monophyletic cluster (3-9 SNPs) that is phylogenetically distinct from the previously reported Lebanese ST383 clone (>164 SNPs) and grouped most closely to an Egyptian ST383 strain (59-65 SNPs). All three isolates carried ICEKp5 with yersiniabactin lineage ybt14, a feature absent in the earlier Lebanese ST383 clone. The isolates were the only ST383 strains to harbor the full spectrum of hypervirulence determinants to date, including capsule regulators (rmpA, rmpA2), aerobactin (iucABCD, iutA), yersiniabactin, and the hypervirulence biomarker peg-344. All isolates carried dual carbapenemases (blaOXA-48 and blaNDM-5) in addition to blaCTX-M-15 and blaCTX-M-14b. The genetic environments of blaOXA-48 and blaNDM-5 were highly conserved across geographically diverse ST383 isolates, indicating common plasmid origins. This study documents the emergence of a novel hypervirulent extensively drug-resistant (XDR) ST383 K. pneumoniae lineage in Lebanon. The acquisition of ICEKp5, combined with plasmid-borne hypervirulence and resistance determinants, reveals the concerning convergence of hypervirulence and XDR. Enhanced surveillance and infection control measures are urgently needed to monitor this emerging high-risk clone.

genomics↗

Emerging Mycobacterium bovis in Lebanon: a snapshot based on whole-genome sequencing.

BackgroundTuberculosis is a pressing public health issue in Lebanon, a country of approximately five million people, including around 1.5 million refugees from Palestine and Syria. Prior research has revealed uncontrolled animal sources of Mycobacterium bovis, emphasizing the necessity for a comprehensive approach to combat tuberculosis in the region. Methods48 clinical Mycobacterium tuberculosis complex isolates were identified through whole genome sequence. Also, 43 animal fecal samples were collected from various farms across Lebanon to investigate the presence of the M. tuberculosis complex using CRISPR-csm4 PCR. ResultsGenomic analysis revealed that 39/48 (81.25%) of isolates were M. tuberculosis and 9/48 (18.75%) were M. bovis. M. tuberculosis was distributed over four lineages, Indo-Oceanic L1 (n = 3/39)(7.6%), East-Asian L2 (n = 1/39)(2.5%), East-African Indian L3 (n = 5/39)(12.8%) and Euro-American L4 (n = 30/39)(76.9%). Sub-lineage L4.8 (Euro-American (mainly T), comprising 8/39 of the isolates (20.5%) was predominant, followed by sub-lineages L3 (East-African Indian, n = 5/39 isolates)(12.8%), L4.2.2.2 (Euro-American (Ural), n= 4/39 isolates)(10.2%) and L4.6.5 (Euro American, n=4/39 isolates)(10.2%). Nine M. bovis were classified into two clades, designated as unknown2 (n=2/9; 22.2%) and unknown3 (n=7/9; 77.8%). Interestingly, none of the clades or others were detected in the 48 faecal samples using CRISPR standard PCR and qPCR. ConclusionsThis study offers insights into human and bovine tuberculosis in Lebanon, emphasizing M. tuberculosis lineages prevalence and M. bovis distribution into two clades, aiding the fight against tuberculosis, especially bovine tuberculosis, and renewing our understanding of tuberculosis dynamics in Lebanon.

microbiology↗

Genetic and Structural Basis of Colistin Resistance in Klebsiella pneumoniae: Unraveling the Molecular Mechanisms

Antimicrobial Antimicrobial resistance (AMR), together with extensively drug resistant (XDR), mainly among Gram-negative bacteria, has been on the rise. Colistin (polymyxin E) remains one of the primary available last resorts to treat infections by XDR bacteria with the rapid emergence of global resistance. Since the exact mechanism of bacterial resistance to colistin remains unfolded, this study warranted elucidating the underlying mechanism of colistin resistance and heteroresistance among carbapenem-resistant (CR) Klebsiella pneumoniae isolates. Molecular analysis was carried out on the resistant isolates using a genome-wide characterization approach, and MALDI-TOF MS for lipid A. Among the 32 CR K. pneumoniae isolates, three and seven isolates showed resistance and intermediate resistance, respectively, to colistin. The seven isolates with intermediate resistance exhibited the "skip-well" phenomenon, attributed to the presence of resistant subpopulations. The three isolates with full resistance to colistin showed ions using MALDI-TOF MS at m/z 1840 and 1824 representing bisphosphorylated and hexaacylated lipid A with or without hydroxylation, at position C-2 of the fatty acyl chain, respectively. Studying the genetic environment of mgrB locus revealed the presence of insertion sequences that disrupted the mgrB locus in the three colistin resistant isolates: IS1R and IS903B. Our findings showed that colistin resistance/heteroresistance was inducible with mutations in chromosomal regulatory networks controlling lipid A moiety and IS sequences disrupting the mgrB gene leading to elevated MIC values and treatment failure. IS monitoring in K. pneumoniae could help prevent the spread of colistin resistance and decrease colistin treatment failure.

genomics↗

Whole genome-based characterization of multi-drug resistant Enterobacter and Klebsiella aerogenes isolates from Lebanon

BackgroundEnterobacter spp. are rod-shaped Gram-negative opportunistic pathogens belonging to Enterobacterales. This study aimed at the molecular and genomic characterization of multi-drug resistant Enterobacter spp. isolates recovered from hospitalized patients in a tertiary care hospital in Lebanon. MaterialsA total of 59 Enterobacter spp. clinical isolates consisting of 41 carbapenem-resistant and 18 susceptible by E-test were included in this study. Genotypic identification through whole-genome sequencing was performed and confirmed in silico. Resistance and plasmid profiles were studied using ResFinder4.0 and Plasmid-Finder2.1. Multi-locus sequence typing (MLST) was used to determine the isolates clonality. ResultsANI identified and confirmed that 47 (80%) isolates were E. hormaechei, 11 (18%) were Klebsiella aerogenes and 1 (2%) was an E. cloacae. Carbapenem-resistance was detected among 41 isolates all showing an MIC90 of [≥] 32 {micro}g/ml for ertapenem, imipenem, and meropenem. blaNDM-1 (58.5%), blaACT-16 (54%), and blaOXA-1 (54%) were the most common detected {beta}-lactamases, while blaCTX-M-15 gene (68%) was the main detected extended-spectrum {beta}-lactamase (ESBL) encoding gene. Chromosomal ampC gene, carbapenemase encoding genes, and porin modifications were among the detected carbapenem resistance determinants. The carbapenemase encoding genes were linked to three well-defined plasmid Inc groups, IncFII/IncFIB, IncX3, and IncL. MLST typing revealed the diversity within the studied isolates, with ST114 being the most common amongst the studied E. hormaechei. ConclusionThe spread of carbapenem-resistant isolates in clinical settings in Lebanon is a serious challenge. Screening and continuous monitoring through WGS analysis could effectively limit the dissemination of drug-resistant isolates in hospitalized patients. ImportanceDrug resistance is an increasing global public health threat that involves most disease-causing organisms and antimicrobial drugs. Drug-resistant organisms spread in healthcare settings, and resistance to multiple drugs is common. Our study demonstrated the mechanisms leading to resistance against the last resort antimicrobial agents among members of the Enterobacteriaceae family. The spread of carbapenem-resistant bacteria in clinical settings is a serious challenge. Screening and continuous monitoring could effectively limit the dissemination of drug-resistant isolates in hospitalized patients.

genomics↗