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The Conjugative Megaplasmid pMD9A Mediates Transferring Antibiotic Resistance Genes.

Pseudomonas asiaticais an emerging opportunistic pathogen with a broad host range. Current evidence suggests that some isolates exhibit multidrug resistance, which may complicate treatment. In this study, a multidrug-resistant P. asiatica strain MD9 was isolated from aquaculture water. We aimed to characterize its complete genome sequence and investigate the role of its conjugative megaplasmid pMD9A in the horizontal transfer of antibiotic resistance genes. The genome of MD9 consists of one circular chromosome (5,956,782 bp, with a G + C content of 62.5%) and one circular megaplasmid, pMD9A (455,169 bp, with a G + C content of 56.5%). Genome annotation identified 65 antibiotic resistance genes and 148 putative virulence factor-encoding genes in the MD9 genome. The megaplasmid pMD9A carries 29 antibiotic resistance genes conferring resistance to β-lactams, chloramphenicol/florfenicol, aminoglycosides, and macrolides. A class 1 integron (intI1) and multiple autonomous conjugative transfer elements were identified in pMD9A. Conjugation experiments demonstrated that the β-lactam resistance gene blaOXA-246 could be horizontally transferred from the donor MD9 strain to the recipient Escherichia coli 25DN strain. The megaplasmid pMD9A not only carries a broad array of antibiotic resistance genes, but also facilitates their horizontal spread among environmental bacteria, thereby potentially contributing to the dissemination of multidrug-resistant bacteria.

Pseudomonas asiatica

Molecular characterization of pESI-like megaplasmids in Salmonella Infantis from poultry in Lebanon.

UNLABELLED: Salmonella enterica serovar Infantis has emerged as a globally disseminated multidrug-resistant (MDR) pathogen, largely driven by the spread of the plasmid of emerging Salmonella Infantis (pESI)-like megaplasmid. In our study, we investigated the prevalence, antimicrobial resistance (AMR) phenotypes, and genomic features of S. Infantis isolates collected from poultry farms in Lebanon. A total of 72 isolates were recovered during a nationwide surveillance effort, among which 67 (93%) were MDR based on antimicrobial susceptibility testing (disk diffusion and broth microdilution) results, including resistance to critically important agents such as quinolones, and highly important classes such as tetracyclines and sulfonamides. Whole-genome sequencing was performed on 19 isolates selected through a stratified approach to encompass all identified AMR phenotypes; this analysis revealed a conserved pESI-like backbone together with MDR-associated determinants, including sul1, tet(A), and aadA. Plasmid marker analysis confirmed the presence of pESI in the majority of isolates, with plasmid-associated genes (ardA and trbA) and replicon markers (IncP and IncFIB(pN55391)) among the most prevalent. Comparative plasmid alignments with representative pESI sequences from Italy, Turkey, and the United States revealed strong conservation of the backbone alongside regional variation in AMR gene content. These findings highlight the role of poultry production systems in Lebanon as reservoirs for pESI-like megaplasmids and MDR S. Infantis, underscoring the zoonotic and public health risks posed at the human-animal-environment interface. Strengthened surveillance, antimicrobial stewardship, and biosecurity interventions are urgently needed to mitigate the spread of MDR S. Infantis within agriculture and beyond. IMPORTANCE: The emergence of plasmid of emerging Salmonella Infantis (pESI)-like megaplasmids has transformed Salmonella Infantis into a globally distributed multidrug-resistant (MDR) clone with the capacity to persist in livestock and disseminate resistance genes across ecological boundaries. Our study provides the first genomic characterization of pESI-positive S. Infantis from poultry farms in Lebanon, a region with high antimicrobial usage and limited stewardship frameworks. By integrating phenotypic susceptibility testing and whole-genome sequencing, we demonstrate that Lebanese isolates harbor conserved pESI-like backbone markers together with antimicrobial resistance determinants, aligning them with internationally circulating lineages. Comparative analysis with isolates from Italy, Turkey, and the United States highlights both the evolutionary stability and geographic diversity of pESI. These findings emphasize the urgent need for integrated surveillance and stewardship strategies to curb the spread of MDR S. Infantis and reduce the zoonotic risk at the human-animal-environment interface.

Animals

Triple carbapenemase-producing Klebsiella pneumoniae ST6668 resistant to novel β-lactam/β-lactamase inhibitor combinations and cefiderocol, Northern Italy, 2025.

OBJECTIVE: Klebsiella pneumoniae ST6668 has recently emerged in Northern Italy, but data on its resistance architecture remain limited. METHODS: We identified a K. pneumoniae ST6668 (KNVO1) strain co-producing NDM-1, VIM-1, and OXA-48 carbapenemases via multiple megaplasmids from an elderly hospitalized patient who experienced clinical deterioration during a prolonged period of health care exposure. RESULTS: KNVO1 showed resistance to all tested β-lactams, including novel β-lactam/β-lactamase inhibitor combinations and cefiderocol, with susceptibility retained only to colistin, gentamycin and aztreonam/avibactam. Whole-genome sequencing confirmed the ST6668. The plasmidome included two megaplasmids (pKPC-CAV1321 and IncFIB:IncHI) carrying blaVIM-1 and blaNDM-1, respectively, and an IncL plasmid harbouring blaOXA-48. SNPs-based phylogeny demonstrated genomic distance to other ST6668 strains circulating locally, suggesting an independent introduction event. CONCLUSION: The convergence of three major carbapenemase families within ST6668 highlights the capacity of this clone to accumulate complex resistance determinants via megaplasmids, posing a serious threat to infection control and antimicrobial stewardship in health care settings.

Klebsiella pneumoniae

A UG5 reverse transcriptase-nitrilase antiviral module confers phage immunity in the plant symbiont Sinorhizobium meliloti.

Bacteriophages exert strong selective pressure on soil- and rhizosphere-associated bacteria, including plant-associated symbionts. Reverse transcriptase-associated defense systems of the UG family are widespread across bacterial lineages, yet their ecological roles remain largely undefined. Within this family, UG5 systems are distinguished by reverse transcriptases fused to or associated with a nitrilase domain. Here, we combine phylogenetic, metagenomic, and functional analyses to investigate the evolutionary context and antiviral activity of UG5-associated systems. Phylogenetic analysis of 728 nitrilase domains places UG5-associated nitrilases within a well-supported UG-related radiation encompassing the UG1, UG5, and UG6 families, with UG1 nested within a broader UG5 lineage. Metagenomic analysis further revealed UG5-associated reverse transcriptases in soil- and rhizosphere-derived metagenomes. Based on this observation, we characterized a UG5-large reverse transcriptase (RT)-associated system, here designated DRT11, encoded on the pSymA megaplasmid of Sinorhizobium meliloti RMO17, a nitrogen-fixing symbiont of Medicago sativa. Despite lacking the transmembrane protein typical of canonical UG5-large architectures, DRT11 confers protection against naturally occurring M. sativa rhizosphere phages with podovirus-like morphology. Phage infection assays reveal protection at low multiplicities of infection, consistent with an abortive-infection-like mechanism. Moreover, mutational analyses demonstrate that antiviral activity requires only the RT and its fused C-terminal nitrilase domain, establishing DRT11 as a minimal UG5-associated antiviral system.IMPORTANCEIn this study, we report the functional characterization of a UG5-large reverse transcriptase-associated defense system (DRT11) encoded on the pSymA megaplasmid of the nitrogen-fixing plant symbiont Sinorhizobium meliloti. Using a combination of phylogenetic, metagenomic, genomic, and experimental approaches, we demonstrate that DRT11 functions as a bona fide antiviral defense module, providing protection against naturally occurring rhizosphere phages through a minimal reverse transcriptase-nitrilase architecture. This work establishes direct functional evidence for antiviral activity within the UG5 family and clarifies the evolutionary placement of UG5-associated systems within the broader UG radiation.

Phylogeny

Giants within: a new class of microbial mobile elements.

Prokaryotes harbor a diverse spectrum of extrachromosomal elements (ECEs), which are intracellular replicons maintained independently of the primary chromosome. Historically, the ECE research field has focused on relatively small ECEs, such as plasmids. However, the advent of long-read sequencing has revealed that prokaryotes also harbor various types of giant ECEs, spanning hundreds of kilobases to over 1 Mb, that were not hitherto recognized. In this review, we describe how long-read sequencing has enabled the discovery of giant ECEs and compare the genetic architectures and functional repertoires of several recently characterized examples. The functions of most genes in these ECEs remain uncharacterized, and current computational tools frequently misclassify or overlook them. We further discuss how the discovery of these giant ECEs challenges existing classification frameworks that attempt to distinguish megaplasmids, chromids, and chromosomes. Together, these findings highlight giant ECEs as a largely unexplored layer of microbial genetics, whose characterization will have broad implications for our understanding of microbial adaptation and horizontal gene transfer.

Extrachromosomal DNA

Quorum sensing and DNA methylation play active roles in clinical Burkholderia phase variation.

Phenotypic diversity in bacteria often results from adaptation to changing environmental conditions, exemplified by variable colony morphotypes. In Burkholderia pseudomallei, discrete genomic alterations and modulation of gene expression facilitate adaptation. Adapted variants of species within the Burkholderia cepacia complex (Bcc) often lose the pC3 virulence megaplasmid, impacting their colony morphology and their production of virulence factors. In this study, we characterize variants arising in Burkholderia ambifaria clinical isolates using proteomics and phenotypic tests and show that some of them have retained the pC3, indicating a distinct phase variation mechanism at play in this Bcc species. Interestingly, variants of B. ambifaria strains CEP0996 (pC3-null) and HSJ1 (pC3-positive) still share similarities in phenotypes controlled by the Cep quorum-sensing (QS) system. We further investigated the role of QS in B. ambifaria HSJ1 phase variation and confirmed that the Cep QS system is important for the emergence of variants. Given that DNA methylation is a key epigenetic factor regulating virulence factors in Burkholderia cenocepacia, we hypothesized that adenosine DNA methylation also governs phase variation in B. ambifaria HSJ1. By deleting the genes encoding putative adenosine DNA methyltransferases, we discovered that an orphan type II DNA methyltransferase inhibits the emergence of phase variants. This study is the first to demonstrate that quorum sensing and adenosine DNA methylation are two antagonistic systems independently controlling phase variation in B. ambifaria.IMPORTANCESome Burkholderia species are pathogenic to plants, animals, or humans. In immunocompromised individuals, and people suffering from cystic fibrosis, infection from the Burkholderia cepacia complex (Bcc) can lead to "cepacia syndrome." In northern Australia and southeast Asia, melioidosis caused by Burkholderia pseudomallei is prevalent among native population, particularly among people with diabetes, chronic lung or kidney disease or alcoholism. Burkholderia's phenotypic plasticity, including colony morphotype variation (CMV), enables rapid adaptation to diverse environments, enhancing its survival and pathogenicity. This study reveals phase variation as a new CMV mechanism within the Bcc group and is the first to report that quorum sensing and DNA methylation are involved in phase variation. Understanding the underlying mechanisms of CMV could lead to the development of targeted therapies against these highly antibiotic-tolerant bacteria.

Quorum Sensing

Ecological and evolutionary implications of a mobile genetic element-rich haloarchaeon with unique osmotic resilience.

We isolated a novel halophilic archaeon, strain DSL9, representing the proposed new species Haloliberatus hailidukes gen. nov., sp. nov., from Dishui Lake, China. Unlike most obligate halophiles, DSL9 survives in low salinity, even distilled water, without lysis. Genomic analysis revealed dual salinity adaptation strategies: salt-in and compatible solutes, including a complete trehalose biosynthesis pathway. The strain harbors multiple plasmids, notably a 111,311 bp large plasmid (pHdsl9-3) encoding replication (Orc1/Cdc6, SSB), transcription (TFIIB), transmission (T4SS cluster, ArdC-like protein), and recombination (XerA) modules. pHdsl9-3 provides auxiliary functions such as defense, genome diversification, ion detoxification, and suggests active horizontal gene transfer. Similar elements are widespread in Halobacteriales, highlighting their role in haloarchaeal genetic diversity and plasticity. The encoded XerA hinted at a function beyond DNA dimer resolution, suggesting it may have been adapted by other archaeal mobile genetic elements. These findings underscore the need to investigate plasmid-driven evolution and environmental adaptation mechanisms in haloarchaea.IMPORTANCEThis study reports the isolation and characterization of DSL9, a novel halophilic archaeon from a freshwater lake. Remarkably, DSL9 defies the typical obligate halophilic lifestyle by surviving in low-salinity environments, including distilled water, without cell lysis. A key discovery is the identification of a 111,311 bp large plasmid harboring essential modules for replication, transcription, transmission, and integration. Widespread distribution of similar elements across Halobacteriales suggests their crucial role in haloarchaeal genetic diversity and plasticity, warranting further study of plasmid-mediated evolution and adaptation strategies.

Lakes