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Marine-derived Bioactive Compounds: A Promising Frontier against Multidrug-resistant Microbial Infections.

The global escalation of Multidrug-Resistant (MDR) bacterial infections poses a serious and growing threat to public health, contributing to increased morbidity, mortality, and substantial economic burden worldwide. The widespread and often indiscriminate use of antibiotics in clinical and agricultural settings has accelerated the emergence of resistance, significantly diminishing the efficacy of conventional antimicrobial therapies. This pressing challenge necessitates the exploration of alternative sources for novel antibiotics. Marine ecosystems-renowned for their immense biodiversity and ecological complexity-have gained attention as a rich and largely untapped reservoir of bioactive natural products with potent antimicrobial activity. Marine organisms, such as sponges, tunicates, algae, and bacteria and fungi derived from marine sources, produce structurally diverse and pharmacologically active metabolites, including peptides, polyketides, alkaloids, terpenoids, sterols, lactones, and halogenated compounds. Many of these marine-derived molecules possess unique chemical scaffolds and novel mechanisms of action, offering the potential to circumvent existing resistance pathways. Some compounds have shown promising activity against MDR pathogens, including Staphylococcus aureus, Pseudomonas aeruginosa, and Acinetobacter baumannii. However, challenges such as low natural abundance, difficulty in cultivation, and structural complexity have limited their clinical translation. Recent advancements in marine biotechnology, genomics, metagenomics, and synthetic biology have opened new avenues for the discovery, biosynthesis, and structural optimization of these compounds. These innovative approaches not only facilitate sustainable production but also enhance the pharmacological properties.

Humans

Whole genome sequencing reveals the co-existence of blaPER-7, blaADC-52 and blaOXA-91 in multidrug resistant ST164pas/ST234oxfAcinetobacter baumannii strains in Bangladesh.

OBJECTIVE: Acinetobacter baumannii (A. baumannii) has emerged as a critical multidrug-resistant (MDR) pathogen with the capacity to persist in diverse ecological niches. Environmental reservoirs in densely populated settings such as Dhaka, Bangladesh, may play a significant role in sustaining and disseminating antimicrobial resistance (AMR). This study aimed to characterize the genomic and phenotypic features of MDR A. baumannii isolates recovered from urban water bodies. METHODS: Three environmental isolates of A. baumannii were subjected to antimicrobial susceptibility testing, biofilm and serum resistance assays, whole-genome sequencing and analysis. Comprehensive genome analysis was carried out emphasizing on antimicrobial resistance genes, virulence factor genes, multi-locus sequence type, integron, prophage and mobile genetic elements. RESULTS: Phenotypically, all the three isolates showed serum resistance and biofilm forming capacity. All the three isolates were identified as ST164pas/ST234oxf. The antimicrobial resistance genes investigation revealed that all the three isolates had co-existence of beta lactam resistance genes blaPER-7, blaADC-52 and blaOXA-91. The isolates had gyrA (S81L) and parC (V104I/D105E) mutations associated with fluoroquinolone resistance. Several prophage regions were found in the strains and A. baumannii ML1 harbored AMR genes inside prophage regions. All the isolates harbored integron 1 in their genome. Comparative genome analysis of the Bangladeshi ST164pas/ST234oxf strains revealed a high degree of genomic conservation. CONCLUSION: The findings from this study highlighted environmental water bodies as reservoirs for MDR A. baumannii and emphasize the need for targeted One Health surveillance and improved wastewater management to limit resistance dissemination.

Journal Article

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

Genomic Insights Into Multidrug-Resistant Foodborne Serratia liquefaciens Strains Carrying mcr-9 and Comparative Genomic Analysis of Novel Biosynthetic Gene Clusters.

Serratia liquefaciens is an opportunistic nosocomial pathogen with a wide range of antibiotic resistance patterns. This study reports the characterization of the first mcr-9-positive S. liquefaciens strains, 35E-19E1 and CST-066, isolated from meat products in Japan. The strains were screened for the presence of β-lactamases, plasmid-mediated mobile colistin resistance (mcr) genes, and carbapenemase-encoding genes using PCR. Antimicrobial susceptibility was tested using the broth microdilution method. The strains exhibited multidrug resistance (MDR) phenotypes to third-generation cephalosporins, cephamycin, fosfomycin, and other clinically important antimicrobials. Genomic DNA sequencing showed that the genome sizes of CST-066 and 35E-19E1 are 5,529,704 and 5,261,506 bps, respectively. mcr-9 was identified on a chromosome within a genetic environment that included the two-component system qseBC, which plays a key role in the signaling network that triggers colistin resistance in Enterobacterales. Downstream genome analysis revealed a 1695-bp eptB-like kdo2-lipid phosphoethanolamine transferase, which is involved in intrinsic polymyxin resistance mechanisms in Serratia spp. The strain 35E-19E1 carries five CRISPR-Cas enzymes that are essential for adaptive immunity in bacteria, allowing defense against invading elements. Functional analysis using subsystem technology revealed that both strains possess subsystem features responsible for invasion and adhesion within the host biomes. Genome mining using antiSMASH and BAGL4 revealed various biosynthetic gene clusters, responsible for secondary metabolite synthesis. Notably, we identified novel gene clusters, mainly nonribosomal peptide synthetases, in both the strains, indicating their potential to produce bioactive compounds. Although the presence of mcr-9 in Serratia may not be of clinical significance because of natural resistance of the strain to polymyxins, we shed light on the genomic characteristics of this MDR pathogen and the potential spread of mcr-9 among other bacterial species. The emergence of mcr-9 in drug-resistant S. liquefaciens provides significant insights, underscoring the need for increased surveillance of this pathogen.

biosynthetic gene cluster

Activity of Aztreonam-avibactam and Ceftazidime-Avibactam against Enterobacterales and Pseudomonas aeruginosa causing infections in patients hospitalized in hematology, oncology, and transplant units from United States medical centres (2019-2024).

Immunosuppression increases the risks and severity of infections and is associated with a higher incidence of infection with multidrug-resistant (MDR) pathogens. We evaluated the antimicrobial susceptibility of Enterobacterales and Pseudomonas aeruginosa from patients hospitalized in hospital units where the frequency of immunosuppressed patients is very high. Bacterial isolates were consecutively collected (1/patient) from 75 US medical centres in 2019-2024 and susceptibility tested by broth microdilution. Enterobacterales (n = 2,407) and P. aeruginosa (n = 485) from patients hospitalized in hematology, oncology, and transplant units were evaluated. Carbapenem-resistant Enterobacterales (CRE) were screened for β-lactamases by whole genome sequencing. Enterobacterales were mainly from bloodstream infection (BSI; 53.6%) and urinary tract infection (19.9%) and P. aeruginosa were mainly from BSI (37.9%) and pneumonia (35.0%). Aztreonam-avibactam, ceftazidime-avibactam, and meropenem-vaborbactam were highly active against Enterobacterales (99.9-99.4% susceptible), including MDR isolates (99.6-98.1% susceptible), but only aztreonam-avibactam exhibited good activity against CRE (95.8% susceptible). Ceftolozane-tazobactam showed good activity against Escherichia coli (95.7% S) and Klebsiella pneumoniae (92.8% S), but limited activity against Enterobacter cloacae species complex (75.9% susceptible). All (100.0%) carbapenemase (CBase)-producing CRE isolates were aztreonam-avibactam-susceptible while 77.4% were ceftazidime-avibactam-susceptible and 67.7% were meropenem-vaborbactam-susceptible. The most common CBases were KPC (41.7%), NDM (12.5%), and OXA-48 types (10.4%). Metallo-β-lactamases represented 23.5% of CBases and were identified in 16.7% of CREs. The most active agents against P. aeruginosa were ceftazidime-avibactam (95.7% susceptible), ceftolozane-tazobactam (94.8% susceptible), and tobramycin (91.5% susceptible). Piperacillin-tazobactam and meropenem were active against 81.4% and 82.5% of P. aeruginosa, respectively, and aztreonam-avibactam inhibited 78.6% of P. aeruginosa at ≤8 mg/L.

Humans

Heterologous expression and optimization of the antimicrobial peptide acidocin 4356 in Komagataella phaffii to target Pseudomonas aeruginosa.

Multidrug-resistant (MDR) pathogens, particularly Pseudomonas aeruginosa, pose a serious global health threat due to their increasing prevalence and limited therapeutic options. Antimicrobial peptides (AMPs) offer promising alternatives to traditional antibiotics, yet their large-scale application remains constrained by high production costs and technical challenges. This research sought to develop a yeast-based system for the cost-efficient synthesis of acidocin 4356 (ACD), an antimicrobial peptide proven effective against P. aeruginosa. A codon-optimized ACD gene was cloned into the pPICZα-A expression vector and integrated into the Komagataella phaffii (formerly Pichia pastoris) GS115 genome. Colony PCR confirmed successful integration, and specific transformants demonstrated expression of the 6 × His-ECS-rACD fusion protein, as verified by SDS-PAGE and dot blot analysis. After Ni-NTA chromatography and enterokinase digestion, rACD was found at ~ 20 kDa instead of 8.3 kDa, suggesting oligomerization or post-translational modifications. Response surface methodology determined the optimal temperature, pH, and methanol concentration for peptide synthesis. Under optimal circumstances (21 °C, pH 6.24, and 1.089% methanol), rACD synthesis increased by 34.12% over baseline conditions (30 °C, pH 6, 1% methanol). AlphaFold structural modeling identified three α-helices in high-confidence regions, implicated in bacterial membrane disruption. Antimicrobial assays demonstrated potent rACD activity against P. aeruginosa, yielding a 58.29% reduction in growth at 150 µg/mL and MIC50 and MIC90 values of 143.04 and 320.64 µg/mL, respectively. These findings underscore K. phaffii as a robust platform for AMP production and highlight rACD's therapeutic potential as an effective agent against MDR P. aeruginosa, warranting further investigation into its clinical and industrial applications. KEY POINTS: • Developing a novel K. phaffii strain for heterologous expression supports efficient rACD peptide production. • Optimized conditions boosted expression yield by 34.12% above the reference fermentation settings. • Recombinant acidocin suppressed Pseudomonas aeruginosa growth by 58%, indicating anti-MDR activity.

Pseudomonas aeruginosa

Comparative Genomic Analysis of Multidrug-Resistant Escherichia coli Across Poultry-Human-Environmental Interfaces.

The emergence of multidrug-resistant (MDR) Escherichia coli in poultry represents a critical One Health concern, particularly in developing countries. This study employed a comparative genomic approach to investigate the genomic characteristics, antimicrobial resistance (AMR) profiles, virulence determinants, of poultry-derived MDR E. coli isolates from Bangladesh. Whole-genome sequencing of three representative MDR isolates, identified with 83 globally diverse poultry, human, and environmental E. coli genomes. Pangenome analysis identified the characteristic open pangenome of E. coli, with core genes comprising only 4.6% of the combined dataset. Resistome analysis shown diverse AMR determinants, including blaCTX-M, blaTEM, sul, tet, and qnrS1, associated with antibiotic inactivation and efflux mechanisms. Virulence profiling revealed diverse genes involved in adhesion (fim, csg), iron acquisition (ent, fep, chu), motility, and secretion systems, with core virulence genes exhibiting > 90% sequence identity, whereas accessory virulence genes were more variable. Plasmid analysis demonstrated heterogeneous replicon types, predominantly IncF and Col plasmids, indicating their role in horizontal gene transfer. Jaccard similarity indices revealed moderate to high genetic overlap with global strains (~0.63 for virulence genes and ~0.55 for AMR profiles), suggesting shared evolutionary backgrounds. Phylogenomic and MLST identified all Bangladeshi isolates as ST457, clustering within a globally distributed clonal complex linked to ST10 and ST131 lineages. These findings suggest that the three Bangladeshi poultry-derived E. coli isolates are genetically related to globally circulating strains while harboring extensive resistance and virulence determinants, emphasizing poultry as an important reservoir of MDR pathogens and reinforcing the need for strengthened antimicrobial stewardship and genomic surveillance.

Animals

Multivalent Display of Antimicrobial Peptides on Plant Virus Scaffolds Enhances Killing of Drug-Resistant Bacteria.

Multidrug-resistant (MDR) bacteria pose a significant challenge to global health. Antimicrobial peptides (AMPs) have emerged as promising candidates against MDR bacteria due to their rapid and broad-spectrum activity; however, their clinical translation is hindered by compromised activity, toxicity, and poor stability under in vivo conditions. Here, we report the development of RPG (rod-based peptide grids), a plant virus-based antimicrobial platform that harnesses the structural scaffold of high-aspect-ratio Potato virus X (PVX) for the multivalent and modular display of AMPs. Our data show that RPG enhances the efficacy of AMPs by more than 9700-fold, maintaining activity under in vivo salt conditions. RPG eradicates MDR pathogens within 10-30 min, surpassing the efficacy of last-resort antibiotics (vancomycin, tigecycline, and cefiderocol), while exhibiting low measurable cytotoxicity to mammalian cells at high therapeutic doses. Due to structural complexity, RPG demonstrates stability in serum and resistance to proteases. Multivalent display of peptide variants enabled enhanced broad-spectrum killing at low doses. This work establishes plant virus-AMP conjugates as a safe, potent, broad-spectrum antimicrobial platform, offering a versatile strategy for addressing antibiotic resistance.

Antimicrobial Peptides

Mutations in the transcriptional regulator MAB_2885 confer tedizolid and linezolid resistance through the MmpS-MmpL efflux pump MAB_2302-MAB_2303 in Mycobacterium abscessus.

Mycobacterium abscessus (MAB) is a clinically significant multidrug-resistant (MDR) pathogen, particularly implicated in pulmonary infections among cystic fibrosis (CF) patients. Tedizolid (TZD), an oxazolidinone-class antibacterial drug, has been recommended as an alternative treatment for MAB-infected patients who are intolerant to or whose isolate is resistant to first-line drugs including linezolid (LZD). To investigate the TZD resistance mechanisms in MAB, we isolated 23 TZD-resistant MAB mutants and performed whole-genome sequencing (WGS) to identify resistance-associated genes. Frequent mutations were identified in MAB_2885, encoding a putative TetR transcriptional regulator, and MAB_2303, encoding a putative mycobacterial membrane protein large (MmpL). Drug susceptibility testing confirmed that MAB_2885 mutations contribute to both TZD and LZD resistance in MAB. RNA-seq analysis revealed that restoring wild-type MAB_2885 in mutants downregulated the MAB_2302-MAB_2303. Electrophoretic mobility shift assay (EMSA) showed the MAB_2885 protein binds to its target sequence upstream of MAB_2302-MAB_2303, further confirming their regulatory relationship. The W91R mutation in the MAB_2885 protein was found to impair its DNA-binding activity compared to the wild-type. Liquid chromatography-tandem mass spectrometry (LC-MS/MS) analysis confirmed that MAB_2302-MAB_2303 functions as a TZD efflux pump. Additionally, overexpression of MAB_2885 in M. abscessus subsp. bolletii and M. abscessus subsp. massiliense also increased their TZD susceptibility and downregulated their respective MmpS-MmpL orthologs. Overall, our study demonstrates that mutations in MAB_ 2885 contribute to TZD and LZD resistance by disrupting the negative regulation of the downstream MAB_2302-MAB_2303, which functions as a direct efflux pump for TZD. These findings provide new insights into oxazolidinone resistance mechanisms in MAB and identify potential biomarkers for detecting drug resistance.

Mycobacterium abscessus

Comparative and Subtractive Genomics Analysis of Multidrug-Resistant Klebsiella pneumoniae Strains for Novel Target Identification and Drug Repurposing Strategies.

The rapid rise of multidrug-resistant (MDR) Klebsiella pneumoniae has created a major global health challenge due to the limited availability of conserved therapeutic targets effective across diverse resistant strains. In this study, an integrative computational target-discovery and drug-repurposing framework was applied to six clinically relevant K. pneumoniae strains. Comparative genomic analysis identified 3012 conserved genes, which were subsequently filtered to nine essential, non-host homologous proteins. Among these, three conserved cytoplasmic proteins (accD, cpxR, and mraZ) were prioritized for functional analysis, with acetyl-CoA carboxylase subunit beta (accD) emerging as the most promising therapeutic target based on sequence conservation, predicted essentiality, subcellular localization, and pathway association. Structural assessment supported the reliability of the predicted accD model, whereas consensus binding-site analysis identified key residues suitable for ligand interaction. Virtual screening of FDA-approved drugs followed by molecular docking identified several compounds with favorable binding profiles toward accD. Subsequent molecular dynamics simulations, including root mean square deviation (RMSD), root mean square fluctuation (RMSF), radius of gyration (Rg), hydrogen-bond occupancy, principal component analysis (PCA), and PCA-based free energy landscape (FEL) analyses, consistently identified tenapanor, micafungin, deferoxamine, and cobicistat as the most stable protein-ligand complexes, with tenapanor exhibiting the most favorable overall structural and thermodynamic stability profile. These findings identify accD as a promising therapeutic target in MDR K. pneumoniae and suggest several FDA-approved compounds as potential candidates for drug repurposing. Although experimental validation is needed to confirm their biological activity and therapeutic potential, this study demonstrates the potential of integrating comparative genomics with molecular dynamics analyses to support antimicrobial target identification and drug repurposing against MDR bacterial pathogens.

Klebsiella pneumoniae

Molecular characterization of drug-resistance genes and dynamics of multidrug-resistant Salmonella spp. in waterfowl: a pre- and post-antibiotic ban surveillance in Guangdong, China from 2013 to 2023.

BACKGROUND: Multidrug-Resistant Organism (MDRO) refers to bacteria that are Resistant to three or more types of antibiotics in clinical use. The global health threat posed by multidrug-resistant (MDR) bacterial pathogens and their cross-species transmission necessitates rigorous Surveillance. This urgency is amplified in China where antibiotic growth promoters were widely used in animal husbandry until the 2020 implementation of Announcement No. 194 launched by Ministry of Agriculture and Rural Affairs (Announcement 194), banning non-therapeutic antibiotics in feed. This study conducted a decade long investigation on the correlation between antimicrobial resistance (AMR) phenotypes and genetic determinants in 314 Salmonella isolates collected from waterfowl across Guangdong Province, China, utilizing disk diffusion (Kirby-Bauer method) and PCR-based detection of antibiotic resistance genes (ARGs). The study period covered the antibiotic policy transition in China, specifically encompassing the pre-ban (2013-2019) and post-ban (2020-2023) phases of the nationwide prohibition on growth-promoting antimicrobials in animal feed. METHODS: Antimicrobial Susceptibility profiles against 16 agents were determined via Kirby-Bauer testing, while PCR amplification targeted 20 ARGs. Statistical analyses evaluated phenotype-genotype correlations using Pearson`s chi-square test. RESULTS: Surveillance revealed escalating resistance rates annually. Highest resistance prevalence was observed against &#x3b2;-lactams and amphenicols (92.25%), whereas amikacin exhibited the lowest resistance rate (9.55%). MDR prevalence reached 87.23%, with the AMP-CAZ-GEN-FFC-TET resistance profile predominating (51.6% of isolates). Genetic analysis identified 3 to 16 ARGs per isolate was harboring, with blaTEM demonstrating the highest detection frequency (90.76%). Significant phenotype-genotype correlations (p&#x2009;<&#x2009;0.05) were observed for 13 genes: blaCTX-M, blaTEM, blaOXA, aacC2, aph(3')-I, aac(3)-IV, aadA1, qnrS, qnrA, clmA, floR, sulII, tetA. Notably, significant declines in resistance to aminoglycosides (e.g., gentamicin from 71.7 to 3.5%) and florfenicol (from 81.1 to 9.6%) were observed after China's 2019 antibiotic ban policy (p&#x2009;<&#x2009;0.001), underscoring the impact of targeted antimicrobial stewardship in avian husbandry. CONCLUSIONS: Analysis of 314 waterfowl Salmonella strains revealed severe multidrug resistance (MDR) and diverse resistance genes (DRGs), with 13 DRGs linked to resistance. China's antibiotic ban reduced targeted resistance, but MDR persists alarmingly via acquired DRGs and adaptation. Continued enforcement may lower aminoglycoside/phenicol resistance, but &#x3b2;-lactam resistance will likely endure, worsened by transcontinental blaCTX-M spread. Critically, plasmid co-selection threatens to amplify MDR, demanding genomic surveillance. Mitigation requires boosting policy compliance, developing non-antibiotic therapies, mapping mutations, establishing cross-species barriers, and prioritizing One Health interventions to block resistance spread.

China

Capsular Polysaccharide Is Essential for the Virulence of the Antimicrobial-Resistant Pathogen Enterobacter hormaechei.

Nosocomial infections caused by multidrug-resistant (MDR) Enterobacter cloacae complex (ECC) pathogens are on the rise. However, the virulence strategies employed by these pathogens remain elusive. Here, we study the interaction of ECC clinical isolates with human serum to define how this pathogen evades the antimicrobial action of complement, one of the first lines of host-mediated immune defense. We identified a small number of serum-sensitive strains, including Enterobacter hormaechei strain NR3055, which we exploited for the in vitro selection of serum-resistant clones. Comparative genomics between the serum-sensitive NR3055 strain and the isolated serum-resistant clones revealed a premature stop codon in the wzy gene of the capsular polysaccharide biosynthesis locus of NR3055. The complementation of wzy conferred serum resistance to NR3055, prevented the deposition of complement proteins on the bacterial surface, inhibited phagocytosis by human neutrophils, and rendered the bacteria virulent in a mouse model of peritonitis. Mice exposed to a nonlethal dose of encapsulated NR3055 were protected from subsequent lethal infections by encapsulated NR3055, whereas mice that were previously exposed to unencapsulated NR3055 succumbed to infection. Thus, capsule is a key immune evasion determinant for E. hormaechei, and it is a potential target for prophylactics and therapeutics to combat these increasingly MDR human pathogens. IMPORTANCE Infections caused by antimicrobial resistant bacteria are of increasing concern, especially those due to carbapenem-resistant Enterobacteriaceae pathogens. Included in this group are species of the Enterobacter cloacae complex, regarding which there is a paucity of knowledge on the infection biology of the pathogens, despite their clinical relevance. In this study, we combine techniques in comparative genomics, bacterial genetics, and diverse models of infection to establish capsule as an important mechanism of Enterobacter pathogens to resist the antibacterial activity of serum, a first line of host defense against bacterial infections. We also show that immune memory targeting the Enterobacter capsule protects against lethal infection. The further characterization of Enterobacter infection biology and the immune response to infection are needed for the development of therapies and preventative interventions targeting these highly antibiotic resistant pathogens.

Humans

Whole-Genome Sequencing Uncovers Chromosomal and Plasmid-Borne Multidrug Resistance and Virulence Genes in Poultry-Associated Escherichia coli from Nigeria.

BACKGROUND: Broad and unregulated antibiotic use in livestock production, particularly poultry farming, has increased the development and persistence of multidrug-resistant (MDR) bacterial strains in animals. These resistant pathogens and their antibiotic resistance genes (ARGs) can spread to humans through environmental exposure and the food chain, posing serious public health risks. Whole-genome sequencing (WGS), alongside phenotypic antimicrobial susceptibility testing (AST), enables a comprehensive understanding of resistance mechanisms and informs antimicrobial stewardship strategies, particularly in resource-limited settings. AIM: This study aimed to characterize the phenotypic and genotypic antimicrobial resistance profiles, plasmid content, and virulence factors of an MDR E. coli strain (S3) isolated from a poultry farm in Enugu State, Nigeria, to elucidate potential risks to public health and the role of poultry as a reservoir for resistance determinants. METHODS: E. coli strain S3 was isolated from chicken droppings using standard microbiological methods and confirmed by MALDI-TOF mass spectrometry. AST was assessed using disc diffusion and broth microdilution to determine minimum inhibitory concentrations (MICs) for ten antibiotics across multiple classes. WGS was performed with a hybrid approach combining Illumina and Nanopore platforms, followed by genome assembly and annotation. ARGs, plasmid replicons, and virulence factors were identified in silico using AMRFinderPlus, starAMR, RGI/CARD, PlasmidFinder, MOB-suite, and the Virulence Factor Database (VFDB). RESULTS: Phenotypic testing revealed extensive resistance, with complete resistance to six of seven tested antibiotics (cefotaxime, ampicillin, erythromycin, gentamicin, ciprofloxacin, and doxycycline). MICs exceeded clinical breakpoints for multiple classes, confirming an MDR phenotype. Genome analysis indicated a 5.33 Mb genome distributed across five contigs, including one chromosome and four plasmid-associated contigs. The strain harboured numerous ARGs, including bla CTX-M-15, bla OXA-1, bla TEM-1, aac(6')-Ib-cr, aadA5, aph(3")-Ib, sul1/sul2, tet(A), dfrA17, and mph(A), co-localized on plasmids indicative of horizontal gene transfer (HGT) potential. Plasmid types included Col156, IncF, and two rep clusters. Virulence profiling revealed genes associated with adhesion (pap cluster, ECP), iron acquisition (enterobactin, yersiniabactin, aerobactin, heme uptake), and toxins (sat, senB), highlighting the isolate's potential for urinary tract and intestinal infections. CONCLUSION: This study highlights the significant role of poultry-associated bacteria as reservoirs of AMR genes, particularly those harboured on mobile plasmids with potential for HGT. E. coli strain S3 exhibits extensive multidrug resistance and carries a complex plasmid repertoire facilitating horizontal transfer of ARGs. Coupled with a rich virulence gene profile, this strain underscores the public health risk posed by poultry-associated E. coli in Nigeria. These findings demonstrate the urgent need for stringent antimicrobial stewardship, regulatory oversight, and genomic surveillance in poultry production milieus to mitigate the dissemination of MDR pathogens.

Escherichia coli

Characterization and application potential of two newly isolated phages targeting the prevalent multidrug resistant Salmonella serovars in China.

The escalating global threat of multidrug resistant (MDR) Salmonella, a foodborne pathogen with animal-derived foods serving as the primary transmission vehicle, underscores the urgent need for effective lytic phages for biocontrol. From 142 environmental and farm samples in Shandong Province, we isolated 103 phages active against MDR S. Enteritidis and S. Typhimurium, which were the most prevalent Salmonella serovars in China. Two Siphoviridae phages vB-SenS-S1 and vB-SenS-SEC2 were selected for further study. With optimal multiplicities of infection (MOIs) of 10-2 (vB-SenS-S1) and 10-5 (vB-SenS-SEC2), both phages exhibited a 20&#xa0;min latent period, yielding burst sizes of 52 and 37 PFU/cell, respectively. They also demonstrated stability across a range of temperatures (50-60&#xa0;&#xb0;C), pH levels (5-11), and after 1&#xa0;h of UV exposure. Genomic analysis identified vB-SenS-S1 (43,002&#xa0;bp, 47.04% GC) and vB-SenS-SEC2 (42,948&#xa0;bp, 47.65% GC) as novel double-stranded DNA phages. Functional annotation confirmed the presence of genes essential for structural assembly, host lysis, and DNA replication/metabolism, and also verified the absence of resistance, virulence, and lysogeny-associated genes. Both phages vB-SenS-S1 and vB-SenS-SEC2 exhibited synergy with colistin and tetracycline. The synergy with colistin was particularly potent, leading to complete bacterial eradication in vitro. The in vivo therapeutic efficacy was further validated in both Galleria mellonella larvae and murine models of MDR Salmonella infection. Combination therapy with vB-SenS-SEC2 and colistin not only dramatically increased survival but also achieved a significant reduction in bacterial burden across multiple visceral organs of infected mice. Moreover, vB-SenS-S1 (108 PFU/mL) completely inhibited MDR Salmonella on chicken meat at 4&#xa0;&#xb0;C and -20&#xa0;&#xb0;C when initial contamination was &#x2264;103&#xa0;CFU/mL. This study not only expands the diversity of Salmonella phages but also highlights their potential as biocontrol agents in both clinical veterinary use and food decontamination, thereby enhancing food quality and safety at both the meat production source and the terminal product.

Animals

Emergence and persistence of ESBL- and carbapenemase-producing Klebsiella pneumoniae-related species in Barcelona wastewater treatment plants.

The World Health Organization classifies extended-spectrum beta-lactamase (ESBL) and carbapenemase-producing Klebsiella pneumoniae as critical-priority pathogens due to their high incidence, mortality, transmissibility, rapid resistance acquisition, and limited treatment options. Beyond clinical settings, their detection in wastewater treatment plants (WWTPs) provides an opportunity to assess their prevalence, persistence, and circulation within wastewater systems. This study characterized 37 antibiotic-resistant K. pneumoniae-related species strains isolated from two WWTPs in the metropolitan area of Barcelona, analyzing their antimicrobial resistance (AMR) profiles, antimicrobial resistance genes (ARGs), biocide and heavy metal tolerance genes (HMTGs), virulence factor genes (VFGs), biofilm-forming capacity, and conjugation ability. Among them, 70.3% were multidrug-resistant (MDR), and 16.2% were extensively drug-resistant. Whole-genome sequencing revealed diverse ARGs; all strains carried &#x3b2;-lactam resistance genes (14 ESBL and 12 carbapenemase producers), nearly all (96.9%) carried biocide or HMTGs, 64.9% harbored integrases, and all carried VFGs. Core-genome SNP analysis identified closely related strains across sampling periods and treatment stages, suggesting long-term persistence within the wastewater treatment system, despite biological and chemical processes in secondary treatment. Most strains (67.6%) displayed biofilm-forming capacity, and conjugation assays confirmed horizontal gene transfer in five of the seven ESBL-producing strains tested. High-risk clones were predominantly detected in the IFAS secondary treatment stage of the Gav&#xe0;-Viladecans WWTP. The three strains recovered from the reclaimed water of the Baix Llobregat WWTP were ESBL or carbapenemase producers. Altogether, these results provide genomic and phenotypic evidence of the persistence and circulation of antibiotic-resistant K. pneumoniae-related species within wastewater treatment systems.IMPORTANCEWWTPs are essential for urban sanitation and environmental protection. Understanding how clinically relevant pathogens, such as ESBL and carbapenemase-producing K. pneumoniae-related species strains, behave in these settings may inform public health considerations. Investigating the presence and persistence of high-risk MDR pathogens in WWTPs helps identify circulation of AMR, assess the risk of gene transfer, and evaluate the potential for co-selection with other contaminants. This knowledge supports efforts to improve wastewater treatments, strengthen environmental surveillance, and develop integrated One Health strategies to limit the spread of AMR across human, animal, and environmental sectors.

Wastewater

FMT alleviates multidrug-resistant Salmonella enterica-induced diarrhea and is associated with loss of IncHI2A-associated resistance determinants in mice.

INTRODUCTION: Multidrug-resistant (MDR) Salmonella enterica (S. enterica) poses a serious threat to animal and public health because of increasingly limited treatment options. Fecal microbiota transplantation (FMT) is a potential microbiota-based intervention; however, its effects on MDR Salmonella infection and pathogen-associated antibiotic resistance gene (ARG) dynamics remain unclear. METHODS: A murine diarrhea model was established using the clinical MDR S. enterica isolate P174, and infected mice were treated with FMT. Clinical symptoms, intestinal pathology, transcriptional inflammatory responses, gut microbiota composition, and ARG profiles of recovered Salmonella isolates were evaluated. Whole-genome sequencing was used to characterize resistance determinants, and the stability of ARGs and IncHI2A backbone markers was further assessed during 19 in vitro passages. RESULTS: FMT reduced diarrhea, promoted body weight recovery, and alleviated intestinal tissue injury and inflammatory cell infiltration. Colonic expression of Tnf, Il1b, and Il6 decreased, whereas Il10 expression increased. FMT was also associated with partial recovery of gut microbial diversity, increased relative abundances of Lactobacillus, Bifidobacterium, and other commensal anaerobic taxa, and reduced Salmonella abundance. Whole-genome sequencing showed that bla OXA-1, floR, oqxA, and oqxB were co-localized on an IncHI2A-associated plasmid sequence. Loss of these resistance determinants increased over time in isolates recovered from FMT-treated mice, whereas no loss of the four ARGs or the IncHI2A backbone markers repB and parB was detected during 19 in vitro passages. Among isolates showing simultaneous loss of all four ARGs, nearly all also lacked detectable repB and parB, whereas isolates with partial ARG loss retained both markers. These patterns were consistent with both backbone-associated loss and resistance-region deletion or rearrangement. Most ARG-loss isolates showed reduced antimicrobial resistance. DISCUSSION: FMT alleviated MDR S. enterica-induced intestinal disease and was associated with partial recovery of gut microbiota characteristics and increased instability and loss of IncHI2A-associated resistance determinants in vivo. These findings suggest a potential association between intestinal microbial ecological changes and altered maintenance patterns of resistance-associated genetic elements in MDR S. enterica.

Salmonella enterica

Time-resolved proteomic adaptation of multidrug-resistant Acinetobacter baumannii to antimicrobial stress induced by partially purified fraction from Caesalpinia pulcherrima flower using DEqMS.

UNLABELLED: The global prevalence of multidrug-resistant (MDR) bacteria represents an urgent public health challenge, emphasizing the critical need for novel antimicrobial agents. MDR Acinetobacter baumannii, a nosocomial pathogen of critical global concern owing to its capacity to acquire and disseminate antimicrobial resistance, was employed as a bacterial model to investigate the antimicrobial potential of natural products derived from Caesalpinia pulcherrima (L.) Sw. (Fabaceae). This medicinal plant represents a promising reservoir of novel bioactive compounds; however, its molecular effects on the A. baumannii proteome had not previously been characterized. The partially purified ethyl acetate fraction of C. pulcherrima flowers (CPF4) exhibited potent bactericidal activity against susceptible A. baumannii (minimum inhibitory concentration and minimum bactericidal concentration = 31.25 &#xb5;g/mL), and time-resolved label-free quantitative LC-MS/MS proteomics was subsequently performed on MDR A. baumannii cultures treated with CPF4 at 24 h, 48 h, and 72 h post-treatment alongside untreated controls in biological triplicate, with differential protein expression assessed using differential expression of quantified mass spectrometry data. No significantly differentially expressed proteins were detected at 24 h or 48 h relative to the control, indicating that the proteomic effects of CPF4 manifest predominantly at the late treatment stage. In contrast, a robust late-phase response was identified at 72 h, comprising the coordinated induction of proteins associated with DNA damage repair, transcriptional regulation, and cell surface glycosylation remodeling. The sensor histidine kinase PmrB was significantly upregulated at 72 h vs 48 h (adjusted P = 0.029), implicating the PmrA/PmrB two-component system in late-phase colistin tolerance acquisition under sustained CPF4 exposure. IMPORTANCE: These findings provide mechanistic insight into the adaptive survival strategies employed by multidrug-resistant Acinetobacter baumannii in response to plant-derived antimicrobial challenge and support the further development of Caesalpinia pulcherrima-derived natural products as candidate antimicrobial agents.

Acinetobacter baumannii

Multidrug resistance and genomic characteristics of nontypeable Haemophilus influenzae isolates from the respiratory tract of pediatric patients.

UNLABELLED: Nontypeable Haemophilus influenzae (NTHi) is a common colonizer of the human upper respiratory tract and one of the major pathogens responsible for pediatric respiratory tract infections. Given the increasing severity of its multidrug resistance (MDR), this study comprehensively investigated the genomic characteristics of circulating NTHi isolated from sputum and bronchoalveolar lavage fluid (BALF). A total of 104 H. influenzae isolates (69 from sputum; 35 from BALF) were collected from pediatric patients between January 2024 and January 2025. All isolates underwent whole-genome sequencing and antimicrobial susceptibility testing, followed by core/pan-genome phylogenetic analysis, multilocus sequence typing (MLST), and resistome profiling. Among them, 103 were identified as NTHi. We identified 29 known sequence types (STs) and 10 novel STs, with ST-107 (14.4%), ST-57 (10.6%), and ST-11 (8.7%) being the major circulating lineages. However, core-genome phylogenetic analysis provided a more granular view of the genetic variation within these identical STs. All the isolates showed high resistance to ampicillin (98.1%) and cefuroxime (84.6%). Genomically, the multidrug efflux pump gene hmrM was ubiquitous (100%). Ampicillin resistance was predominantly driven by blaTEM-1 carriage (77.9%), with minor contributions from chromosomal ftsI mutations. Fifteen plasmid replicons were predicted from 25 isolates, which highly coincided with the carriage of blaTEM-1 and other acquired resistance genes. This study demonstrates that MDR in pediatric NTHi is primarily driven by acquired resistance genes and chromosomal mutations, with specific resistant clones persisting and enriching under clinical antibiotic pressures. These findings underscore the importance of continuous high-resolution genomic surveillance in guiding rational antibiotic stewardship. IMPORTANCE: This study highlights the critical importance of high-resolution genomic surveillance in managing pediatric nontypeable Haemophilus influenzae (NTHi) infections. By utilizing whole-genome sequencing, we uncovered the pathogen's highly dynamic population structure and complex multidrug resistance (MDR) mechanisms. Crucially, our findings reveal a strong, non-random coupling between core genomic architectures, virulence factors, and MDR elements, driven by dual environmental and pharmacological pressures. This "virulence-MDR" co-evolutionary trend underscores the persistent clinical threat of locally adapted high-risk clones. These findings provide important insights for guiding rational clinical antibiotic stewardship, optimizing treatment strategies, and improving regional infection control.

Humans