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Genomic analysis of Neisseria gonorrhoeae strains from disseminated, urogenital, and rectal infections reveals differences in genes for iron acquisition and type IV secretion.

Neisseria gonorrhoeae, an obligate human pathogen, causes the sexually transmitted infection gonorrhea. Delayed treatment or immunodeficiencies can result in a higher risk of disseminated gonococcal infection (DGI), where the infection spreads to normally sterile anatomic sites, including the bloodstream. The gonococcus produces TonB-dependent transporters (TdTs) to sequester metals from host nutritional immunity proteins. These transporters are critical for survival and are important virulence factors. We characterized genes encoding iron-regulated TdTs in the genomes of strains from disseminated (n = 47), urogenital (n = 86), and rectal (n = 12) infections. We found that gonococcal strains isolated from DGI infections were more likely to express a functional hemoglobin-iron utilization operon (hpuAB wild type and phase on [32%, n = 15/47]), to harbor nonsense mutations in tdfF (57%, n = 27/47), and were predicted to express low levels of fetA (43%, n = 20/47) when compared to strains from urogenital or rectal infections. In contrast, gonococcal strains from localized urogenital infections were associated with a higher frequency of functional tdfF genes (66%, n = 57/86) and high fetA expression (30%, n = 26/86). Additionally, strains from rectal infections were more frequently found to have high fetA expression (33%, n = 4/12) and a functional tdfF (75%, n = 9/12). Furthermore, we identified associations between the presence and absence of tdfF and the gonococcal genetic island, which encodes a type IV secretion system. These findings inform our evolving understanding of the molecular mechanisms underlying disseminated gonococcal infections.IMPORTANCEGonorrhea is an emerging, global health threat, with over 100 million new cases each year. Delayed treatment, immunosuppressive medications, and immunodeficiencies can contribute to the spread of infection to the blood, presenting as a serious disseminated manifestation. With rising antimicrobial resistance and no licensed preventative vaccine, untreatable gonorrhea is a possibility in the near future. TonB-dependent transporters are highly conserved and vital for metal acquisition and survival, making them promising targets for therapeutic or preventative strategies. Associated surface-exposed lipoproteins display greater sequence variation but contribute to metal acquisition. We analyzed the genes encoding TonB-dependent transporters and associated lipoproteins from strains associated with distinct disease manifestations. We conclude that gonococci isolated from disseminated, urogenital, and rectal sites demonstrate different phase and allelic variations in genes encoding iron transport systems and the gonococcal genetic island.

Humans

Emergence of cefiderocol resistance in carbapenem-resistant Escherichia coli ST167 prior to clinical use: A multifactored resistance landscape.

OBJECTIVES: Cefiderocol is a novel siderophore cephalosporin with potent activity against multidrug-resistant Gram-negative bacteria. Here, we reported the prevalence and mechanisms of cefiderocol resistance in carbapenem-resistant Escherichia coli (CREC) in China before its clinical use. METHODS: A total of 443 non-duplicate CREC isolates collected from 67 hospitals in China (2013-2021) underwent antimicrobial susceptibility testing according to CLSI guidelines. Whole-genome sequencing, transcriptomic analysis, siderophore quantification, and targeted genetic manipulation were performed to investigate the underlying resistance mechanisms. RESULTS: Among the 443 CREC isolates, 102 (23.0%) were resistant to cefiderocol, and 34 (7.6%) showed intermediate susceptibility. Multivariable logistic regression identified ST167 lineage (OR, 3.05; 95% CI, 1.12-8.29; P = 0.028), blaNDM-5 carriage (OR, 9.04; 95% CI, 2.96-27.57; P < 0.001), and cirA truncation (OR, 49.56; 95% CI, 20.33-120.79; P < 0.001) as independent factors associated with cefiderocol resistance. Among ST167 isolates, cefiderocol-resistant isolates showed increased yersiniabactin carriage and siderophore production but comparable TonB-dependent transporter expression profiles. Phylogenetic analysis revealed that cefiderocol-resistant ST167 isolates clustered into a distinct subclade enriched with resistance-associated determinants, including a recurrent FhuA P50S substitution detected in 59/64 (92.2%) resistant isolates. Functional assays showed that the P50S substitution increased cefiderocol minimum inhibitory concentration (0.032-0.125 &#xb5;g/mL), particularly in an NDM-5-producing background (0.032-0.5 &#xb5;g/mL). CONCLUSIONS: Cefiderocol resistance is highly prevalent among high-risk ST167 CREC isolates before the clinical introduction of cefiderocol in China, highlighting the need for continued surveillance of this epidemic lineage. Cefiderocol resistance is mediated by multiple resistance determinants, and we identify the recurrent FhuA P50S substitution as a novel contributor to reduced cefiderocol susceptibility.

Antimicrobial resistance

Diversity and distribution of the lanthanome in aerobic methane-oxidising bacteria.

BACKGROUND: Lanthanides (Ln) play important and often regulatory roles in the metabolism of methylotrophs, including methanotrophs, particularly through their involvement in methanol oxidation. However, the diversity, distribution, and ecological relevance of Ln-associated proteins (the lanthanome) in aerobic methane-oxidising bacteria (MOB) remain underexplored. This study investigates the lanthanome using genome, plasmid, and proteome data, alongside metatranscriptome data from methane-rich lake sediments. RESULTS: We surveyed 179 genomes spanning Proteobacterial, Verrucomicrobial, and Actinobacterial MOBs to examine the distribution of Ln-dependent methanol dehydrogenases (MDHs) and Ln transport proteins. Distinct lineage-specific patterns were observed: XoxF5 was the most widespread MDH variant in Proteobacteria, while XoxF2 was restricted to Verrucomicrobia. Transporter systems also showed distinct&#xa0;patterns, with LanM restricted to Alphaproteobacteria, LanPepSY and LanA confined to Gammaproteobacteria, and LutH-like receptors broadly distributed across all lineages. Homologues of these genes were also detected on plasmids, indicating potential for horizontal gene transfer. In Lake Washington sediment metatranscriptomes, lanthanome transcripts were detected, with Proteobacteria as dominant contributors. Notably, a large fraction of xoxF transcripts were affiliated with non-MOB Methylophilaceae, consistent with known cooperative interactions with MOB. Using Methylosinus trichosporium OB3b as a model, we assessed methane oxidation and proteomic responses to soluble CeCl3 and a mixed-lanthanide ore. Lag phases were prolonged in the presence of lanthanides, particularly with ore, but methane oxidation rates converged across treatments after acclimation. Proteomic analysis revealed extensive condition-specific responses, with 724 proteins differentially expressed in Ore treatment compared to 60 under CeCl3. XoxF3 and XoxF5 were upregulated while MxaF and its accessory proteins were downregulated, consistent with the "lanthanide switch". Notably, LanM was not expressed despite being encoded, whereas LutH-like receptor was downregulated under both treatments, likely reflecting regulatory control to prevent excess metal uptake. Additional upregulation of a TonB-dependent receptor and ABC transporter suggests a potential lanthanophore-mediated uptake strategy. CONCLUSION: This study highlights the diversity and ecological activity of Ln-binding and transport systems in MOBs, their plasmid localisation and potential mobility, and their distinct regulation under different Ln sources. The strong proteomic response to complex ore underscores the physiological flexibility of MOBs in coping with natural lanthanide forms. These findings provide a framework for ecological studies and candidate targets for biotechnological applications in methane bioconversion and sustainable lanthanide recovery from complex materials.

Horizontal gene transfer

Bacterial extracellular vesicles exhibit distinct functional potential across biogeographic provinces of the South Pacific Ocean.

Bacterial extracellular vesicles (BEVs) are nanoscale membranous structures released by diverse types of bacteria, and are capable of transporting and delivering biological compounds between cells. Experimental investigation of BEVs in laboratory model systems indicates that these nanoparticles may play a number of roles in the ecophysiology of marine bacterial communities, but their functional potential in the environment remains unclear. Here we describe the proteomic composition of BEV populations over more than 5000 nautical miles of surface waters in the South Pacific, linking BEV cargoes to the bacterial communities producing them. The presence of marine BEVs was consistently observed across a range of biogeochemical conditions, with an overall abundance comparable to that of bacterial cells (up to 108 BEVs L-1). The protein cargo of marine BEVs, however, differed significantly among ocean regions. The BEV populations were enriched in carbohydrate transporters under phytoplankton bloom conditions, and contained iron uptake-related proteins in nutrient-limited waters. These data suggest that BEVs could enable cells to perform key extracellular functions in the marine environment. Our observations highlight the ubiquity of marine BEVs and biogeographic patterns in their ecological potential across oceanic scales.

Extracellular Vesicles

Outer membrane-dependent transport systems in Escherichia coli: turnover of TonB function.

Recent reports demonstrated that the energy-dependent step of vitamin B12 uptake into cells of Escherichia coli rapidly declines after cessation either of the expression of the tonB gene or of general protein synthesis. It is shown here that inhibition of protein synthesis results in the decline, with similar kinetics, of all tonB-dependent processes, including sensitivity to colicins B and Ia, irreversible adsorption of phage phi80, and siderophore-mediated iron uptake. The role of ongoing TonB-dependent reactions on this lability of TonB function was investigated. Ferrichrome and the enterochelin precursor, 2,3-dihydroxybenzoate, caused both a moderate depression of B12 uptake activity in growing cells (reversed upon removal of the siderophore) and an acceleration of the loss of activity following inhibition of protein synthesis by addition of spectinomycin. Strains lacking the tonB-dependent siderophore uptake systems did not show these responses. The results suggest the consumption of tonB product during its action.

Bacterial Proteins