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Hypervirulence-associated pseudo-compound transposons as fundamental mobile units driving cross-species virulence dissemination in Enterobacteriaceae.

BACKGROUND: The rapid global spread of hypervirulence in Enterobacteriaceae, particularly in carbapenem-resistant Klebsiella pneumoniae, poses a significant public health threat. However, the key genetic vehicles and mechanisms driving horizontal transfer of hypervirulence-associated genes (iucA, iroB, rmpA, rmpA2, and peg-344) remain poorly defined, limiting effective surveillance. METHODS: We performed a large-scale genomic survey of 2,869 virulence-associated plasmid sequences and 2,337 complete Enterobacteriaceae chromosomes. Using comparative genomics and evolutionary analyses, we systematically identified and characterized Hypervirulence-associated Pseudo-Compound Transposons (Hva-PCTs), defined as structured mobile elements in which hypervirulence-associated genes are flanked by insertion sequences. RESULTS: Our results demonstrate that hypervirulence-associated genes are transmitted primarily as discrete IS-bounded units, which we term Hva-PCTs. We identified 29 distinct plasmid-borne Hva-PCTs (pHva-PCTs) and 30 chromosomal Hva-PCTs (cHva-PCTs). These modules show clear species-specific patterns: iucA/iroB-associated Hva-PCTs mainly originate in Escherichia coli and spread through IncFIB-containing multi-replicon plasmids (commonly combined with IncFIC(FII) and/or IncFII, while rmpA/rmpA2/peg-344-containing modules originate in K. pneumoniae and are disseminated via IncHI1B/repB plasmids. Three Hva-PCTs were detected on both plasmids and chromosomes (xHva-PCTs). In one clinical K. pneumoniae isolate (LS356), the identical composite module was present on both replicons. Simpler sub-modules, such as ISKqu3-rmpA2-iucA_1-IS102 and IS102-rmpA-peg-344-iroB_1-IS1A, frequently co-occur on the same plasmid; when positioned in tandem, they reconstitute the full composite structure. This assembly pattern is further supported by a partial duplication event in plasmid pP901. CD-HIT clustering (80% nucleotide identity and 90% coverage) showed that 13 of 22 major clusters contained both plasmid and chromosomal copies, with intra-cluster identities >80% across multiple sequence types and host species. CONCLUSION: Hypervirulence-associated genes in Enterobacteriaceae are disseminated mainly as IS-flanked Hva-PCTs rather than solely through intact virulence plasmids. These modules exhibit strong but not absolute host specificity. The presence of identical Hva-PCTs on plasmids and chromosomes suggests inter-replicon mobility, while their stepwise assembly from simpler sub-modules highlights modular accretion as a key evolutionary process. Tracking Hva-PCTs as distinct mobile units may complement existing plasmid- and gene-centric surveillance approaches for hypervirulent and convergent strains. Experimental validation of their transposition activity and phenotypic effects is still required.

Virulence

A rapid molecular assay for the detection of hypervirulent Klebsiella pneumoniae in the context of antimicrobial resistance surveillance.

Hypervirulent Klebsiella pneumoniae (hvKP) represents an emerging clinical and public-health concern, particularly as hypervirulence increasingly converges with multidrug resistance. Current diagnostic approaches rely on phenotypic assays, such as the string test, or on whole-genome sequencing (WGS), both of which have limitations in specificity, turnaround time, standardization, and feasibility for routine surveillance. To address this gap, we developed a multiplex real-time PCR assay targeting key hvKP-associated virulence loci, including siderophore systems, hypermucoviscosity regulators, and additional markers linked to invasive potential. The assay was evaluated on 110 K. pneumoniae clinical isolates and 9 positive blood cultures, using WGS and the string test as comparators. The molecular panel demonstrated high concordance with WGS for principal virulence determinants, correctly identifying all high-virulence (score 4) profiles, and most intermediate profiles. Against WGS, the assay yielded a sensitivity of 82% and a specificity of 73%; performance against the string test was 96% and 87%, respectively. Direct testing from blood culture pellets yielded results consistent with both WGS and DNA-based PCR for the limited number of targets detected, supporting the technical feasibility of this approach. However, broader validation is needed to confirm performance in this specimen type. Overall, this multiplex PCR assay provides a targeted molecular screening approach for the rapid identification of hvKP-associated virulence profiles. Its agreement with genomic data supports its potential utility as an accessible complement to WGS for hvKP surveillance, although further workflow optimization will be required before broader routine implementation.IMPORTANCEThe global emergence of hypervirulent and multidrug-resistant K. pneumoniae represents a major public-health threat, as the convergence of virulence and antimicrobial resistance dramatically limits therapeutic options and increases the likelihood of severe, invasive, and potentially untreatable infections. Rapid identification of essential virulence determinants is therefore critical for timely clinical management and for preventing onward transmission. However, current diagnostic approaches are either insufficiently sensitive or require substantial resources, limiting their routine use. By providing a rapid and targeted molecular assay capable of detecting the principal loci associated with hypervirulent K. pneumoniae and by demonstrating the preliminary feasibility of its use directly on blood culture pellets previously identified as Klebsiella spp. by MALDI-TOF MS, this work provides a pragmatic approach for early virulence profiling. Implementation of such assays can significantly enhance epidemiological surveillance, support tailored patient management, and reduce the spread of high-risk K. pneumoniae lineages in both community and healthcare environments.

Klebsiella pneumoniae

Coexistence of carbapenemase and hypervirulence-associated genes among Klebsiella pneumoniae high-risk clones in Hungary.

INTRODUCTION: Strains of Klebsiella pneumoniae carrying hypervirulence and carbapenemase genes represent a rapidly emerging global public health threat. Our study aimed to comprehensively characterise the genomics of hypervirulence-associated and carbapenemase genes carrying K. pneumoniae (hv(a)CpKp) isolates in Hungary. MATERIALS AND METHODS: Between January 2022 and April 2024, 89 aerobactin (iucA-D/iutA)-positive non-duplicate carbapenemase-producing K. pneumoniae isolates from 15 Hungarian healthcare institutes underwent short-read (Illumina, MiSeq, NextSeq) whole-genome sequencing, followed by detailed plasmid analysis using long-read sequencing (Nanopore, MinION) in a representative subset of 32 strains. RESULTS: Most isolates (79/89) belonged to the high-risk clone ST147. Hypervirulence-associated (hva) genes-including rmpA/rmpA2, peg344, shiF, iucA-D, and iutA-were universally present, and 59 isolates possessed chromosomally integrated yersiniabactin loci. Most isolates (87/89) carried the bla NDM-1 carbapenemase gene. Hypervirulence-associated genes were most frequently (29/32) associated with IncHI1B/IncFIB(Mar) plasmids. Notably, we identified plasmids carrying both hva and carbapenemase genes-designated as hybrid plasmids-in 13 of 32 strains. The bla NDM-1 was linked to the IS26 transposase and was present in conserved, identical cassettes on all bla NDM-1-carrying plasmids. DISCUSSION/CONCLUSION: Our study identified hv(a)CpKp strains, particularly the ST147 clone, circulating in Hungary. Our findings highlight the need for routine virulence gene monitoring and continuous genomic and plasmid-based surveillance to mitigate the clinical and epidemiological impact of emerging hv(a)CpKp lineages.

Klebsiella pneumoniae

Hypervirulent Klebsiella pneumoniae ST23 causing pyogenic liver abscess and metastatic endogenous endophthalmitis in Europe: a case report.

INTRODUCTION AND IMPORTANCE: Pyogenic liver abscess (PLA) has traditionally been considered prevalent in Asia. However, its incidence is increasing in Europe. Klebsiella pneumoniae (Kp) has emerged as the leading causative pathogen, and hypervirulent strains pose a higher risk of invasive disease and metastatic complications, such as endogenous endophthalmitis (EE). CASE PRESENTATION: The case describes a 77-year-old woman who presented with fever and right upper quadrant abdominal pain. She was diagnosed with a second episode of PLA within 3 months, caused by Kp. Despite prompt antimicrobial therapy and percutaneous transhepatic drainage, the patient developed acute vision loss in the left eye during hospitalization. Ophthalmologic assessment confirmed EE secondary to bacteremia. Whole-genome sequencing identified the isolate as hypervirulent Kp (hvKp) sequence type 23 (ST23). While the liver abscess resolved following treatment, the patient sustained permanent loss of vision in the affected eye despite aggressive medical and surgical management. CLINICAL DISCUSSION: This case illustrates the invasive nature of hvKp and its potential for recurrence and metastatic complications. Improved recognition through targeted virulence testing is essential to avoid underdiagnosis. CONCLUSION: This case highlights the aggressive nature of hvKp. Early recognition of systemic and ocular symptoms, prompt ophthalmologic evaluation, and timely source control are essential. Optimal management requires multidisciplinary collaboration and the use of molecular diagnostics, including whole-genome sequencing, to identify hypervirulent lineages and support surveillance.

Klebsiella pneumoniae

RND-mediated efflux couples antimicrobial resistance and hypervirulence in contemporary Vibrio cholerae.

The prevailing view in bacterial pathogenesis is that antimicrobial resistance and virulence are constrained by evolutionary trade-offs, with resistance mechanisms imposing fitness costs that attenuate pathogenic potential. Herein we document that contemporary Vibrio cholerae clinical isolates from the ongoing seventh pandemic have circumvented this paradigm by coupling multidrug resistance with hypervirulence. We examined five geographically diverse Wave 3 isolates collected between 2017 and 2019 and compared them to early pandemic strains. These contemporary isolates exhibited both broad-spectrum antimicrobial resistance and markedly enhanced colonization capacity in the infant mouse model. Phylogenetic analysis of 67 O1 El Tor genomes spanning 1960-2019 confirmed that the isolates cluster within a representative Wave 3 sublineage. We identified the VexB RND efflux pump as a mediator of this coupled phenotype. Elevated vexB expression in the contemporary isolates conferred resistance to multiple antibiotic classes, while vexB inactivation simultaneously impaired resistance and colonization. This dual function was not observed in early pandemic strains, consistent with a recent evolutionary adaptation. VexB-mediated hypervirulence occurred through multiple pathways independent of cholera toxin and toxin-coregulated pilus production levels. VexB deletion impaired bacterial adherence to intestinal epithelial cells, impaired motility, and increased susceptibility to membrane-active antimicrobials. In contrast, laboratory evolution under antibiotic pressure alone generated resistant but avirulent strains, demonstrating that complex selective forces in nature enabled the co-optimization of resistance and virulence. These findings establish VexB as a molecular link between antimicrobial resistance and hypervirulence in pandemic V. cholerae, highlighting efflux pumps as dual-function therapeutic targets whose inhibition could both restore antibiotic activity and attenuate disease.

Animals

Genomic, virulent and phenotypic characterization of a cerebrospinal fluid-derived ST86-KL2 hypervirulent Klebsiella pneumoniae isolate from a patient with meningitis and diabetes mellitus.

BACKGROUND: Hypervirulent Klebsiella pneumoniae (hvKP) is an important cause of invasive community-acquired infection, particularly in individuals with diabetes mellitus. However, cerebrospinal fluid (CSF)-derived hvKP isolates, especially those belonging to the ST86-KL2 lineage, remain poorly characterized at the integrated clinical, genomic, and phenotypic levels. METHODS: A K. pneumoniae isolate, designated BP9811, was recovered from the CSF of a patient with meningitis and diabetes mellitus and identified by matrix-assisted laser desorption/ionization time-of-flight mass spectrometry and 16 S rRNA sequencing. Antimicrobial susceptibility testing and whole-genome sequencing were performed to define its resistance, virulence, sequence type (ST), capsular type, and plasmid content. Virulence was evaluated using the Galleria mellonella infection model. In addition, interaction with human cerebral microvascular endothelial cells was preliminarily assessed using adhesion, gentamicin protection, and transmission electron microscopy assays, together with measurement of relative ompA transcription by reverse transcription-quantitative polymerase chain reaction. Comparative phylogenetic analyses were performed using publicly available CSF-derived and KL2 K. pneumoniae genomes. RESULTS: BP9811 was identified as a hypermucoviscous ST86-KL2 hvKP isolate that remained susceptible to all tested antimicrobial agents. Whole-genome sequencing revealed an IncHI1B virulence plasmid carrying canonical hvKP-associated determinants, including rmpA/rmpA2, peg-344, iucABCD, and iroBCD. In the Galleria mellonella model, BP9811 showed high virulence comparable to that of the hypervirulent reference strain NTUH-2044. In HCMEC/D3 cells, BP9811 exhibited increased adhesion and intracellular recovery under the tested conditions, and transmission electron microscopy confirmed bacterial internalization. BP9811 also showed higher ompA transcript levels than the control strain. Phylogenetic analysis indicated that BP9811 was genetically distinct from currently available CSF-derived isolates and occupied a related branch within the KL2 population. CONCLUSIONS: This study provides an integrated clinical, genomic, and phenotypic characterization of BP9811, a CSF-derived ST86-KL2 hvKP isolate recovered from a patient with meningitis and diabetes mellitus. BP9811 carried a canonical hvKP virulence plasmid, displayed marked virulence-associated phenotypes, and showed enhanced interaction with human cerebral microvascular endothelial cells in vitro under the tested conditions. These findings expand the limited isolate-level evidence on central nervous system-associated hvKP and provide a basis for future comparative and mechanistic studies.

Humans

Genomic and functional characterization of ST11-KL64 hypervirulence-associated carbapenem-resistant Klebsiella pneumoniae co-harboring bla KPC-2 and bla NDM-13.

BACKGROUND: Hypervirulence-associated carbapenem-resistant Klebsiella pneumoniae (hv-CRKP) is a major clinical and public health threat. However, ST11-KL64 hv-CRKP co-harboring bla KPC-2 and bla NDM-13 remains poorly characterized, particularly regarding genomic relatedness, plasmid dynamics, and attenuated virulence-associated phenotypes. METHODS: We retrospectively investigated clinical K. pneumoniae isolates collected at a tertiary hospital in Chengdu, China, between January and December 2024. Hypervirulence-associated markers were screened by PCR, followed by antimicrobial susceptibility testing and carbapenemase inhibitor enhancement assay to identify genotype-defined hv-CRKP. All isolates were subjected to molecular typing. ST11-KL64 isolates co-harboring bla KPC-2 and bla NDM-13 were subjected to Illumina sequencing, with the representative isolate K3 undergoing hybrid whole-genome sequencing and functional characterization. RESULTS: Among the 46 hvKP isolates recovered from 43 patients, 35 were identified as hv-CRKP, predominantly ST11-KL64. Three ST11-KL64 hv-CRKP isolates co-harbored bla KPC-2/bla NDM-13, and Illumina sequencing coupled with core-genome SNP (cgSNP) typing revealed minimal genetic variation. The expanded cgSNP analysis supported close relatedness between K3 and Beijing isolate K56649. K3 carried a pLVPK-like virulence plasmid, a bla KPC-2-bearing IncFII/IncR plasmid, and a bla NDM-13-bearing IncI1 plasmid. Relative to pK2044, K3 exhibited an rmpA-proximal ISKpn26-associated insertion and a complex alteration of the 5'-terminal coding region of rmpA. The bla NDM-13 plasmid was conjugatively transferred to Escherichia coli C600 with a mean conjugation frequency of 5.213 × 10-3 transconjugants per recipient cell and bla NDM-13 maintained high stability following approximately 100 generations of antibiotic-free passage, whereas bla KPC-2 was not detected under the tested conditions. Phenotypically, K3 showed a negative string test, low mucoviscosity, and attenuated virulence-associated phenotypes. CONCLUSION: Our results reveal that the three isolates formed a closely related local genomic cluster, among which K3 was closely related to the K56649 clone. In addition, K3 exhibited conjugative transfer capacity of the bla NDM-13-bearing IncI1 plasmid, and alterations at the rmpA locus accompanied by reduced rmpA transcript abundance were associated with low mucoviscosity.

IncI1 plasmid

A fitness advantage from the pLVPK plasmid fuels the global spread of a carbapenem-resistant hypervirulent Klebsiella pneumoniae high-risk clone: ST11-KL64.

BACKGROUND: The global emergence of carbapenem-resistant hypervirulent Klebsiella pneumoniae (CR-hvKP), particularly the ST11-KL64 subclone acquiring pLVPK-like virulence plasmids, represents a critical public health threat. This study investigates the epidemiological dominance and molecular mechanisms underlying ST11-KL64's fitness advantage over KL47 variants. METHODS: We performed comparative genomic analysis on 43,722 K. pneumoniae genomes (2011-2022) from 112 countries, focusing on ST11-CRKP strains. Capsular typing (KL64 vs. KL47), virulence gene profiling (aerobactin, RmpADC), and plasmid stability analysis were conducted using Kleborate, RAST, and PlasmidFinder. Plasmid-chromosome interactions were characterized through hybrid assembly approaches. RESULTS: ST11-KL64 demonstrated rapid expansion post-2016, surpassing KL47 as China's dominant CRKP subtype (40.5% vs. 28.9%), with regional predominance in Zhejiang (62.3%) and Sichuan (58.7%) provinces. Notably, 94.8% of KL64 strains maintained intact pLVPK plasmids with high aerobactin carriage (60.5%), while KL47 exhibited frequent plasmid fusion (58.8% with IncFIB[pNDM-Mar]) or chromosomal integration (41.4%), resulting in lower virulence potential (27.3% aerobactin+). Genomic analysis revealed KL64's superior plasmid stability (71.2% gene retention vs. KL47's 43.6%) and clinical correlation with severe outcomes (OR = 2.34, 95%CI 1.67-3.28). CONCLUSION: The ST11-KL64 subclone's epidemiological success stems from stable pLVPK plasmid maintenance, enabling simultaneous carbapenem resistance and hypervirulence. These findings highlight the urgent need for genomic surveillance targeting plasmid-mediated virulence in CRKP outbreaks, particularly in critical care settings where horizontal gene transfer may accelerate strain evolution.

Klebsiella pneumonia

Evaluation of sequential phage-antibiotic therapy reveals enhanced biofilm control with meropenem and colistin in clinical MDR hypervirulent Klebsiella pneumoniae strain.

AIMS: The convergence of multidrug resistance and hypervirulence in Klebsiella pneumoniae (MDR-HvKp) has narrowed treatment options. Despite growing interest in phage-antibiotic synergy, this study evaluates the underexplored combinatorial effects of phage and antibiotics, including drug-specific interactions and sequence dependency, against the biofilm-forming MDR-HvKp clinical strain. METHODS AND RESULTS: A T5-like Klebsiella bacteriophage, Round, within the genus Webervirus, was therapeutically and genomically characterized. A biofilm-forming clinical strain, Kleb_134, was used to evaluate in vitro phage-antibiotic interactions with meropenem, colistin, and tigecycline in planktonic and biofilm models.In planktonic assays, phage combinations with meropenem and colistin resulted in a multi-log CFU reduction compared to monotherapies, whereas reduced efficacy was observed with tigecycline. In biofilm assays, pre-phage treatment followed by antibiotic exposure demonstrated the strongest biofilm reduction. Drug-specific and sequence-dependent effects were evident. Meropenem-phage combinations reduced biofilm biomass by 2.85-fold (high phage titre) and 3.8-fold (low phage titre), while colistin-phage combinations achieved reductions of 8.4-fold (high phage titre) and 2.8-fold (low phage titre). CONCLUSIONS: Sequential phage-antibiotic treatment was effective against MDR-HvKp biofilms, with pre-phage exposure enhancing antibiotic access through biofilm disruption. The bacteriostatic nature of tigecycline reduced efficacy by affecting phage replication. These findings highlight the importance of treatment sequence and antibiotic selection, and extend existing knowledge in optimizing therapeutic outcomes in MDR-HvKp infections.

Biofilms

Rapid replacement of blaKPC variant in ST11 carbapenem-resistant and hypervirulent Klebsiella pneumoniae contributed to ceftazidime/avibactam resistance during severe in vivo infection.

OBJECTIVES: Hypervirulent ceftazidime/avibactam (CAZ/AVI)-resistant Klebsiella pneumoniae (Kp) has emerged; however, its dynamic within-host evolution and competitive features are uncharacterized. This study aimed to clarify the systematic microevolution characteristics of the rapid transformation of blaKPC variants during long-term infection. METHODS: Thirty-nine Kp strains were isolated from a single patient with severe recurrent osteomyelitis during a 2-year period. Whole-genome sequencing and in vitro evolution assay was performed. Microbiological characteristics were examined through antimicrobial susceptibility testing, plasmid stability, growth curve, in vitro competition and Galleria mellonella larvae lethality assays. RESULTS: Among all the clinical Kp isolates, 37 were carbapenem-resistant Kp (CRKP), including 25 CAZ-/AVI-resistant Kp. All isolates belonged to the ST11-K47. During in vivo evolution, the blaKPC variant and its amplification emerged. Twenty-four isolates (24/39, 61.5%) harboured a novel blaKPC variant, blaKPC-144. All five Kp isolates carried blaKPC-2 in 2021. Surprisingly, 24 blaKPC-144-harbouring isolates (70.6%, 24/34) and 10 blaKPC-2-harboring isolates were identified in 2023, indicating rapid changing of blaKPC. Kp4 carried two copies of blaKPC-2, and Kp10-1 exhibited a 1.94-fold increase in the blaKPC-144 copy number. Similarly, in vitro, the blaKPC copy number increased upon exposure to low CAZ/AVI concentrations. However, at higher concentrations (4/1 mg/L), the blaKPC copy number increased significantly, and blaKPC mutations emerged simultaneously. The competition assay indicated that the blaKPC-144-harboring isolates exhibited a superior competitive capacity. CONCLUSIONS: The blaKPC amplification and mutation emerged simultaneously or sequentially during in vivo and in vitro evolution. Kp isolates harbouring blaKPC-144, conferring resistance to CAZ/AVI, exhibited a competitive advantage, promoting the rapid replacement of blaKPC-2.

Klebsiella pneumoniae

Genomic characterization of a hypervirulent Aeromonas veronii NN0115 from Nile tilapia and head kidney transcriptome of infected fish reveals B-cell-dominated immune response with specific immunoglobulin downregulation.

Aeromonas veronii is a pathogen of multiple fish species, yet systematic understanding of its infection in Nile tilapia (Oreochromis niloticus) remains limited. A dominant strain, NN0115, was isolated from a natural outbreak and identified as A. veronii by 16S rRNA and whole-genome average nucleotide identity (ANI, 96.33%). Experimental infection revealed high virulence (LD50 = 3.41 × 106 CFU/mL, equivalent to 8.53 × 104 CFU/fish). The genome is 4.58 Mb (58.57% GC) and encodes 4216 proteins. Virulence factor analysis identified 1253 genes, dominated by motility-related (264) and immune modulation (208) factors. Genomic island GI2 harbors 7 virulence genes and two dual-function resistance-virulence genes. The strain is resistant to 9 of 25 agents tested but carries three RND efflux pump genes whose predicted resistance was not phenotypically observed. The head kidney transcriptome of tilapia at 24 h post-bacterial infection identified 773 differentially expressed genes; among them, 57 were immunoglobulin (Ig) genes, and 56 were down-regulated. Integration of published single-cell transcriptomic data showed that non-Ig B-cell marker genes were down-regulated by 32%, whereas Ig genes were reduced by 63%, indicating selective transcriptional suppression of Ig genes rather than a general decrease in B-cell transcriptional activity. Together, this study provides a comprehensive characterization of a highly virulent A. veronii from Nile tilapia and reveals that selective downregulation of B-cell Ig genes is the dominant transcriptional feature of the host head kidney response.

Animals

New vectors and optimal conditions for allelic exchange in hypervirulent Klebsiella pneumoniae.

The emergence of antibiotic-resistant Klebsiella pneumoniae is a significant global health threat that has led to increased morbidity and mortality. This resistance also hinders basic research, as many strains are no longer susceptible to antibiotics commonly used in microbial genetics. Addressing this requires the development of new genetic tools with alternative selective markers. In this report, we introduce new allelic exchange vectors for use in drug-resistant strains. These vectors feature a conditional R6K origin of replication, an origin of transfer, SacB counter-selection, and alternative selectable markers. We validated the vectors by generating unmarked deletions in the K. pneumoniae KPPR1S bla (β-lactamase) and lacZ (β-galactosidase) genes. During this process, we defined optimized conditions for SacB-mediated allelic exchange in KPPR1S, significantly enhancing the efficiency of mutant generation. Furthermore, we demonstrated that lacZ is dispensable for virulence and that the lacZ mutant can serve as a surrogate for wild-type strains in competition assays using the Galleria mellonella infection model. Our findings provide new tools for the efficient genetic manipulation of K. pneumoniae and other drug-resistant bacteria.

Klebsiella pneumoniae

Temporal shifts in K-locus composition and expansion of dual-carbapenemase-producing ST11-KL62 Klebsiella pneumoniae: a retrospective genomic surveillance study.

OBJECTIVES: To characterize longitudinal changes in carbapenem-resistant Klebsiella pneumoniae (CRKP) and investigate the recent increase in dual-carbapenemase-producing ST11-KL62 isolates. METHODS: We retrospectively analysed 1,239 non-duplicate CRKP isolates recovered at a tertiary hospital in China during 2018-2025. Antimicrobial susceptibility testing, whole-genome sequencing, K-locus and resistance/virulence gene profiling, core-genome single-nucleotide polymorphism analysis, reference-guided plasmid comparison, conjugation and stability assays, and a murine lethality model were used. RESULTS: ST11 accounted for 936/1,239 isolates (75.5%). KL47 declined from 39/151 (25.8%) in 2018-2019 to 45/755 (6.0%) in 2024-2025, whereas KL62 increased from 3/151 (2.0%) to 147/755 (19.5%). Among 148 ST11-KL62 isolates, 13/148 (8.8%) co-harboured blaKPC-2 and blaNDM-1, of which 12/13 (92.3%) met the study's molecular definition of hypervirulent CRKP. Pairwise single-nucleotide polymorphism distances among local ST11-KL62 isolates ranged from 0 to 43 (median, 14), suggesting that clonal expansion may have contributed to their increase. Complete genome analysis of ZD872 located blaKPC-2, blaNDM-1, and major virulence-associated genes on distinct plasmids; related plasmid backbones were predicted in other isolates using short-read comparisons. ZD872 exhibited a hypervirulent phenotype in the murine model. CONCLUSIONS: The ST11 CRKP population underwent temporal shifts in K-locus composition, including expansion of a closely related ST11-KL62 subset carrying dual carbapenemases and hypervirulence-associated markers. These findings support integrating longitudinal genomic surveillance with local transmission analysis.

Carbapenem-resistant Klebsiella pneumoniae

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

Enhanced invasiveness promotes the dominance of a widely-distributed carbapenem-resistant virulence-plasmid-carrying Klebsiella pneumoniae sublineage.

Carbapenem-resistant Klebsiella pneumoniae (CRKP), a WHO's critical priority pathogen, continuously evolves to generate health-threatening high-risk (sub)lineages. Here, we conducted a 10-year surveillance of nosocomial CRKP infections, collecting and whole-genome sequencing 1513 clinical isolates, accompanied by clinical data. We applied fine-scale genome analysis for 60,724 non-local public-available K. pneumoniae genomes. We identified a predominant ST11-KL64 sublineage widely-disseminated across China and internationally-distributed. Isolates of this sublineage were more frequently recovered during seasonal influenza peaks and harbored plasmids encoding 'hypervirulence' factors but caused no increase in patient mortality. Instead, they exhibited enhanced invasiveness and translocation capacity. Mechanistically, this suggested highly invasive CRKP (hiCRKP) sublineage showed elevated resistance to macrophage-mediated phagocytosis, partly due to the virulence-encoding plasmid and the loss of two chromosomal fimD gene copies. Additionally, hiCRKP isolates carried more antimicrobial resistance genes, resulting in enhanced resistance to clinically important quinolones and tetracyclines. To address the hiCRKP-imposed challenge, we constituted a phage cocktail, which significantly improved survival in a murine infection model. Our findings unveil a clinically-relevant high-risk sublineage resulted from the ongoing evolutionary diversification of CRKP. Importantly, the 'hypervirulent' CRKP is more potent to cause diseases rather than the thought-to-be more deaths, explaining its rapid emergence in healthcare settings.

Klebsiella pneumoniae

Distinct STRIPAK subunits drive conserved and subunit-specific signaling programs in Cryptococcus neoformans.

The striatin-interacting phosphatase and kinase (STRIPAK) complex is a conserved protein phosphatase 2A (PP2A)-associated signaling hub that integrates kinase-phosphatase networks, yet its roles in human fungal pathogens remain poorly defined. Here, we dissected STRIPAK functions in the opportunistic pathogen Cryptococcus neoformans by combining genetic, genomic, virulence, and phosphoproteomic analyses across mutants lacking individual STRIPAK subunits. Loss of the core STRIPAK components via PPH22, FAR8, FAR9, or FAR11 mutations caused severe defects in growth, stress adaptation, cell cycle progression, and morphogenesis, accompanied by widespread aneuploidy and genome instability. In murine infection models, far11Δ strains were avirulent, whereas far9Δ mutants caused delayed but ultimately fatal disease and underwent host-associated genome remodeling, with recovered isolates exhibiting chromosome 11 amplification despite no consistent in vitro fitness advantage. In contrast, deletion of MOB3 produced a hypervirulent phenotype. mob3Δ cells exhibited enhanced transmigration across an in vitro blood-brain barrier model, increased survival in macrophages, and generated small-cell morphotypes, features associated with increased dissemination. Phosphoproteomic profiling revealed extensive and overlapping phosphorylation changes among core STRIPAK mutants, affecting pathways involved in signaling, cytoskeletal, cell cycle control, chromatin regulation, RNA metabolism, and stress responses. Conversely, mob3Δ mutants displayed a smaller, largely distinct phosphoproteomic signature. Network and functional enrichment analyses highlighted STRIPAK-dependent regulation of TORC2-associated signaling, MAPK/GTPase signaling, autophagy, nuclear transport, RNA processing, DNA replication, and ribosome biogenesis. Together, these findings establish STRIPAK as a coordinator of genome stability, morphological plasticity, stress adaptation, and virulence in C. neoformans, and demonstrate that individual STRIPAK subunits drive shared yet divergent signaling outputs that shape host-pathogen interactions.IMPORTANCEFungal pathogens must rapidly adapt their growth, morphology, and stress responses to survive within the host, requiring precise coordination of cellular signaling pathways. The conserved striatin-interacting phosphatase and kinase (STRIPAK) complex controls key developmental programs in eukaryotes, but its roles in fungal pathogenesis are not fully defined. We previously showed that STRIPAK is important for genome stability, development, and virulence in the opportunistic human fungal pathogen Cryptococcus neoformans. Here, we define how individual STRIPAK subunits differentially regulate fungal morphogenesis, genome plasticity, host adaptation, and virulence, revealing both shared and subunit-specific functions within this conserved signaling complex. Core STRIPAK mutants exhibit severe growth and stress-response defects and attenuation of virulence, whereas loss of the Mob3 subunit promotes hypervirulence by enhancing dissemination and persistence within the host. Phosphoproteomic profiling reveals that individual STRIPAK components exert shared yet distinct control over phosphorylation networks that shape host-pathogen interactions, establishing STRIPAK as a central signaling hub and a potential target for antifungal intervention.

Cryptococcus neoformans

Molecular determinants of antimicrobial resistance in Klebsiella pneumoniae isolates among geriatric patients in Chattogram, Bangladesh: a cross-sectional study.

Klebsiella pneumoniae (KPN) infections pose heightened risks in the geriatric population due to weakened immunity, prevalent comorbidities, potential exposure in long-term care settings, and increased likelihood of antibiotic resistance (ABR). The study focused on the prevalence and antibiotic resistance of KPN infections, the presence of ABR genes in KPN, and the genomic characterization of KPN obtained from geriatric patients in Chattogram. A total of 543 specimens were collected from four hospitals in Chattogram, along with demographic data from hospital records. Genomic DNA was extracted from multi-drug-resistant (MDR) KPN, and the presence of ABR genes, blaTEM-1, sul-1, aadB, blaNDM-1, blaSHV-11, and phoE was identified. To characterize the KPN genomes, two MDR KPN isolates were subjected to whole-genome sequencing (WGS), and the data were analyzed using bioinformatics tools to identify genomic determinants of ABR. KPN exhibited high resistance to ceftazidime (96%), cefuroxime (92%), and cefixime (83%), but sensitivity to colistin (79%) and amikacin (75%). MDR KPN was mostly detected in sputum (36%) and urine (27%) specimens, where the prevalence of ABR genes, blaTEM-1, sul1, aadB, blaNDM-1, and blaSHV-11 were 28.2%, 17%, 6.17%, 56%, and 48% of these strains, respectively. These genomes exhibited distinct profiles for sequence types, ST420 and ST277 in Kpn007 and Kpn016, respectively, and ABR genes (qnrS1, blaCTX-M-15, and blaSHV-27), virulence factors (ybt, iuc1, iro1), and contained both K (K20, K46) and O antigens (O1, O3b). MDR KPN in the geriatric population poses a serious health concern due to their increased vulnerability to infections and limited treatment options, requiring careful management.IMPORTANCEMultidrug resistance (MDR) and the hypervirulence nature of Klebsiella pneumoniae (KPN) in geriatric patients pose a critical health concern in nosocomial infections worldwide and result in high clinical complexity and mortality. The study investigated the factors for KPN infections and analyzed antimicrobial resistance profiles. More than 60% of Klebsiella pneumoniae isolates from geriatric patients were resistant to third- and fourth-generation cephalosporins, and most isolates carried blaNDM-1 and blaSHV-11 genes. Analyzing whole genomes of two KPNs, Kpn007 (ST277) was identified as a hypervirulent strain with aerobactin and yersinia siderophores, contributing to virulence, and Kpn016 (ST420) carried fluoroquinolone (qnrS1), ESBL (blaCTX-M-15 and blaSHV-27) resistance. Both genomes contained K antigens (K20 and K46) and O antigens (O1 and O3b).

Humans

Genomic analysis of community-associated multidrug-resistant Klebsiella quasipneumoniae subsp. similipneumoniae and the identification of the ST2059-KL1 clone in the U.S.

UNLABELLED: Klebsiella quasipneumoniae subsp. similipneumoniae is an important member of the K. pneumoniae species complex (KpSC) and is increasingly reported as multidrug-resistant (MDR) in healthcare- and community-associated infections. Since clinical laboratories do not routinely distinguish K. quasipneumoniae subsp. similipneumoniae from K. pneumoniae, national prevalence estimates, particularly for MDR, are lacking. In this study, a total of 2,006 community-associated MDR KpSC isolates were collected from 42 U.S. states, with 30 K. quasipneumoniae subsp. similipneumoniae isolates originating from 12 states identified using whole genome sequencing. All isolates were resistant to ceftriaxone and exhibited high rates of resistance to other antimicrobial agents, including ampicillin-sulbactam (56.7%, 17/30), levofloxacin (75.9%, 22/29), and trimethoprim-sulfamethoxazole (53.3%, 16/30). Notably, five isolates were also carbapenem-resistant. Genomic analysis resolved 10 sequence types (STs), with ST2059 (n = 13) and ST414 (n = 9) predominating. Ceftriaxone resistance in most isolates (90%, 27/30) was conferred by an extended-spectrum β-lactamase gene, predominantly blaCTX-M-15 (73.3%, 22/30); the remaining isolates carried either a carbapenemase (blaKPC-3) or an AmpC β-lactamase (blaCMY-2). Nanopore sequencing identified blaCTX-M-15 harbored on two types of IncFIB(Kpn3) antimicrobial resistance (AMR) plasmids, either with or without the conjugative tra gene cluster. Interestingly, the KL1 locus, associated with canonical hypervirulent K. pneumoniae strains, was detected in all ST2059 isolates. Further analysis of public genomic data showed that the KL1 locus is widely distributed across KpSC. KL1 phylogenetic analyses indicated frequent intrasubspecies recombination but limited intersubspecies exchange of KL1. The identification of the dominant MDR K. quasipneumoniae subsp. similipneumoniae KL1-ST2059 clone in the U.S. underscores the importance of ongoing genomic surveillance. IMPORTANCE: Klebsiella quasipneumoniae subsp. similipneumoniae is an underrecognized member of the Klebsiella pneumoniae species complex that is frequently misidentified in clinical laboratories, leading to an incomplete understanding of its role in antimicrobial resistance. In this study, we used large-scale genomic surveillance of community-associated multidrug-resistant isolates across the U.S. to identify this subspecies as a reservoir of clinically relevant resistance plasmids. Notably, we detected a widely distributed ST2059 lineage carrying the K1 capsular locus, a feature traditionally associated with hypervirulent K. pneumoniae. These findings highlight the convergence of resistance and virulence-associated traits in an overlooked species and underscore the need for genomic surveillance to monitor emerging high-risk lineages in community settings.

Drug Resistance, Multiple, Bacterial