
We reported earlier about development of nano-formulation of an essential oil "eugenol" through its entrapment within animal protein "gelatin," using a simple ultrasonication technique, followed by purification via ultracentrifugation. The synthesized eugenol nanoparticle (ENP) exhibited promising antibacterial and antibiofilm activity on pathogenic strain Pseudomonas aeruginosa MTCC 2488 in vitro. Here, we report on in vivo therapeutic efficacy of ENP against Pseudomonas-administered lung infection, developed in BALB/c mice. Our findings revealed that ENP treatment significantly reduced bacterial burden in infected lung tissues and promoted recovery from infection-associated weight loss, hypothermia, and fluid accumulation in mice. In addition, histopathological and immunological studies showed that the elevated level of inflammatory cytokines TNF-α, IL-1β, MCP-1, GM-CSF, and IFN-γ in lung tissue, serum, and broncho-alveolar lavage (BAL) fluid of Pseudomonas-infected mice were considerably attenuated to almost normal level by ENP treatment. Notably, free eugenol had not so high antipseudomonal action as ENP.
Sepsis is a life-threatening condition characterized by immunosuppression, largely mediated by endotoxin tolerance. Akkermansia muciniphila (AKK), a gut probiotic, has been shown to modulate immune responses. In this study, 16S rRNA sequencing revealed decreased AKK levels in immunosuppressed individuals. In vitro experiments using RAW 264.7 macrophages demonstrated that endotoxin tolerance induced an M2 phenotype, which was reversed by AKK treatment, promoting an M1 phenotype. Additionally, AKK enhanced bacterial clearance of Pseudomonas aeruginosa. In vivo, AKK administration alleviated immunosuppression in an endotoxin-tolerant mouse model by modulating macrophage phenotypes. These findings highlight AKK as a potential therapeutic candidate for sepsis-induced immunosuppression.
The obligate intracellular Gram-negative bacterium Chlamydia psittaci, a zoonotic pathogen transmissible between birds and humans, has played a pioneering role in research on its membrane-bound replicative niche termed the inclusion. Inclusion membrane proteins (Inc proteins) are crucial for Chlamydia-host interactions and were first identified in C. psittaci. This study investigates putative C. psittaci Inc proteins by a combination of in silico analyses, immunofluorescence and, strikingly, a new Inc/GFP chimera protein-based interactomics approach to identify host cellular interaction partners. Here, we report a novel C. psittaci Inc protein, Cps0558, along with respective host cellular interaction partners, in particular ACAD11, which is involved in lipid metabolism. We confirm their physical interaction in the native infection context, supporting the physiological relevance of our chimera-based screen. Furthermore, new interaction partners for the known Inc protein IncA are identified, revealing a potential role of IncA as modulator of the host ubiquitylation system. These results provide further insights into the biology of C. psittaci and present a novel tool for studying Inc proteins under conditions closely resembling their natural tertiary structure.
The respiratory epithelium serves as initial defense against airborne pathogens through its barrier function and induction of immune responses. To study epithelial-pathogen interactions, we used primary epithelial models that closely resembled the epithelia of the airways, for which we collected nasal (n = 7), nasopharyngeal (n = 3), and bronchial (n = 4) epithelial cells from different donors. We cultured these epithelial cells on an air-liquid interface and evaluated their differentiation status. To assess how the different epithelial models respond to distinct types of exposures, the cells were stimulated with IFN-γ, Streptococcus pneumoniae, Neisseria meningitidis, or respiratory syncytial virus (RSV) for 72 h. The nasopharyngeal epithelium was distinct from nasal and bronchial cells with respect to morphology, pathogen load, and induction of cytokine responses, while nasal and bronchial epithelial cells had similar, but not identical cytokine profiles. Each tissue type and stimulus showed specific cytokine patterns. Interestingly, donor-specific differences for IFN-λ2,3 and IL-6 responses were found during meningococcal and RSV infections. Our data highlight morphological differences and a broad variety of epithelial cytokine responses in the different regions of the upper respiratory tract. These different epithelial models will help unravel why some pathogens target specific respiratory regions and why certain individuals are more susceptible to infections.
BK polyomavirus (BKPyV) infection reactivates with immunosuppressive therapies and can lead to the development of BKPyV-associated nephropathy (BKPyVAN) in kidney transplant recipients. This scoping review assesses the use of transcriptomics to profile BKPyVAN in kidney transplant recipients. The following search strategy was employed in Medline and Embase: ‘BK virus’ or ‘BK polyomavirus’ or ‘Polyomavirus’ AND ‘Kidney transplant’ or ‘Nephritis’ or ‘Nephropathy’ AND ‘Gene expression’ or ‘Transcriptomics’ or ‘mRNA’. The search identified 368 publications (264 EMBASE and 104 MEDLINE), and after removal of duplicates (92) and abstract/full-text screening, there were 11 eligible studies which included 7 original transcriptomic studies and 4 bioinformatic studies. There was consistent dysregulated expression of proinflammatory pathways (e.g. cytokines, chemokines, T- and B-cell-related pathways) in BKPyVAN compared with stable graft function. There was considerable overlap between the gene expression patterns identified in BKPyVAN and T-cell mediated rejection that require more exploration. This review highlights limitations including small sample sizes, lack of validation, and variation in technical platforms and study designs. Transcriptomics in BKPyVAN is currently underutilized and there is a genuine need for further research in larger cohorts to provide action in discovering novel therapeutic targets and discriminative gene expression signatures to guide individualized therapeutic strategies.
Pneumocystis jirovecii pneumonia (PJP) has significant mortality, especially in immunocompromised hosts without underlying human immunodeficiency virus infection (HIV). Inflammatory phenotypes may influence clinical outcomes. This study examines the relationship between inflammation, as measured by C-reactive protein (CRP), and adverse outcomes in HIV-negative patients with PJP. A retrospective analysis was conducted on 62 HIV-negative patients with presumed or confirmed PJP from 2006 to 2023. CRP measured within 48 hours of admission were used to classify patients into hypo-inflammatory (CRP<30 mg/l), normo-inflammatory (30-135 mg/l), and hyper-inflammatory (>135 mg/l) groups. Composite adverse outcomes (defined as all-cause in-hospital mortality or mechanical ventilation) were compared across groups using univariate and multivariable analyses. The inflammatory groups differed in CRP but not significantly in terms of white cell count, ferritin, or lactate dehydrogenase. Corticosteroid use was similar across groups. Adverse outcomes occurred in 37.5% of the hypo-inflammatory group, 20.0% of the normo-inflammatory group, and 68.8% of the hyper-inflammatory group (P = 0.005). Hyper-inflammation independently predicted adverse outcomes (adjusted OR 6.98, 95% CI 1.81-26.92, P = 0.005). This study raises the possibility of a U-shaped relationship between inflammatory phenotypes and outcomes in PJP, with hypo- and hyper-inflammatory phenotypes associated with worse outcomes.
Vibrio cholerae remains a significant public health threat in Sub-Saharan Africa and the East Mediterranean Region, where recurrent outbreaks are driven by inadequate water, sanitation, and hygiene infrastructure, climatic variability, and socio-political instability. This review explores the persistence of the pathogen in these regions, examining its epidemiology, environmental reservoirs, and genomic adaptations that enhance its survival and transmission. We highlight the impact of antimicrobial resistance and the role of climate change in cholera dynamics. Furthermore, we discuss current prevention and control strategies, including advancements in oral cholera vaccines, genomic surveillance, and microbiome-targeted interventions. Addressing these challenges requires a multifaceted approach that integrates sustainable sanitation improvements, strengthened disease surveillance, and innovative vaccination strategies. Understanding the persistence of V. cholerae in these high-risk regions is critical for developing effective, long-term mitigation strategies to reduce cholera morbidity and mortality.
The rat lungworm (Angiostrongylus cantonensis) is an invasive parasite of rats that in accidental hosts, such as dogs and humans, causes eosinophilic meningitis. In Australia, only two distinct rat lungworm cox1 haplotypes have been detected in clinically affected dogs, with haplotype Ac13 implicated in most cases. Using locally sourced isolates, we enquired whether the brain migrating larvae elicit different host response in its natural host. We examined brain transcriptome, faecal shedding rates, and adult worm of A. cantonensis isolates representing two distinct cox1 haplotypes, SYD.1 and Ac13 (represented by isolate SYD.2), in experimentally infected Wistar rats. For SYD.1-infected rats, only one differentially expressed gene (DEG) was upregulated in the compared to controls. In contrast, the transcriptome of SYD.2-infected rats included 100 DEGs, with enrichment of functional terms related to immune response, neuroactivity, and signalling. Faecal shedding did not differ between SYD.1- and SYD.2-infected rats, but adult worm burdens were higher in the SYD.1 group. The increased immune response in SYD.2-infected rats provides evidence that there is strain specific virulence that is pronounced in its natural host. This study provides initial parasite-specific evidence explaining why clinically affected dogs are more frequently presented with A. cantonensis haplotype Ac13.
Chlamydia trachomatis and Candida albicans are common inhabitants of the female genital tract. Candida albicans can impact the viability and pathogenesis of some bacteria. Previously, we investigated physical interactions between Ch. trachomatis elementary bodies (EBs) and Ca. albicans. This work indicated that EBs bind to Ca. albicans and become noninfectious by 24 h post-binding. Here, we continue our investigation of these interkingdom, polymicrobial interactions. Candida albicans adheres to bacteria or host surfaces via agglutinin-like sequence or heat shock 70 (Ssa) proteins. Chlamydia trachomatis EBs did not bind Ca. albicans Ssa2 deficient strains as efficiently as wild-type or complemented strains, indicating a role for this protein in chlamydial adherence to Candida. Additionally, Ca. albicans β-glucans inhibit chlamydial infection when exposure occurs during EB adsorption onto cervical cells. Laminarin, a β-glucan agonist of the C-type lectin receptor Dectin-1, inhibited chlamydial infection in both cervical epithelial cells and mice when exposure occurred prior to, during, or immediately following EB inoculation. Conversely, a Dectin-1 antagonist laminarin did not inhibit infection in vitro, suggesting that β-glucan inhibition of Ch. trachomatis requires C-type lectin receptor signaling. Overall, our data demonstrate that β-glucans from multiple species, including Ca. albicans, inhibit Chlamydia via stimulation of host-signaling pathways.
Inflammatory diseases of the human gastrointestinal tract are affected by the microbes that reside in the mucosal surfaces. Patients with inflammatory bowel diseases (IBD) have altered bacterial and fungal intestinal compositions, including higher levels of fecal Candida yeasts. Ongoing research indicates that genetic and phenotypic diversity of Candida albicans may be linked with disease severity. Here, we set out to investigate feces-derived C. albicans strains from individuals with IBD and healthy volunteers through microsatellite-based genotyping and phenotypic assays. A seven-locus microsatellite panel was applied, of which six loci were newly developed. It appears that there is no specific lineage of C. albicans that is associated with IBD, but rather that the three study populations (Crohn's disease, ulcerative colitis, healthy volunteers) do have distinguishable distributions of genotypes. In addition, phenotypic characterization by means of enzyme release assays revealed trends between genotypes, virulence-related enzyme activity, and clinical biomarkers. We thus show that microsatellite typing can describe genetic diversity of feces-derived C. albicans strains, and that phenotypic diversity of these strains may indeed correlate with fungal genotype or disease. This study opens further possibilities to investigate fecal fungi in relation to severity of inflammation in IBD or in other (intestinal) diseases.
Chlamydia genital infection caused by Chlamydia trachomatis is the most common bacterial sexually transmitted disease worldwide. A mouse model has been developed in our laboratory to better understand the effect of cold-induced stress on chlamydia genital infection and immune response. However, the stress mechanism affecting the host response to Chlamydia muridarum genital infection remains unclear. Here, we demonstrate a role for the beta2-adrenergic receptor (β2-AR), which binds noradrenaline and modulates the immune response against chlamydia genital infection in a mouse model. A successful β2-AR homozygous knockout (KO) mouse model was used to study the infection and analyze the immune response. Our data show that stressed mice lacking the β2-AR are less susceptible to C. muridarum genital infection than controls. A correlation was obtained between lower organ load and higher interferon-gamma production by CD4+ and CD8+ cells of the KO mice. Furthermore, exposure of CD4+ T cells to noradrenaline alters the production of cytokines in mice during C. muridarum genital infection. This study suggests that the blockade of β2-AR signaling could be used to increase resistance to chlamydia genital infection. We value the β2-AR KO as a viable model that can provide reproducible results in investigating medical research, including chlamydia genital infection.
The obligate intracellular bacterial genus Chlamydia harbours species with zoonotic potential, particularly C. psittaci, causative agent of psittacosis, and C. abortus, which may lead to miscarriage in pregnant women. The impact of other bird chlamydiae such as C. avium, C. gallinaceae, and C. buteonis, or reptilian species such as C. crocodili, amongst others, on human health is unclear. The chlamydial native plasmid, a suspected virulence factor, is present in all currently described 14 Chlamydia species except for some plasmid-free strains. The plasmid is also the primary tool to study chlamydial genetics, a still developing field that has mostly focused on C. trachomatis. Only recently, genetic transformation of C. felis, C. pecorum, C. pneumoniae, C. psittaci, and C. suis has succeeded, but existing methods have yet to be refined. In this review article, we will provide an update on the recent developments concerning the zoonotic potential of chlamydiae. Furthermore, we present an overview about the current state of knowledge regarding the chlamydial plasmid in terms of prevalence and significance as a virulence factor. Finally, we give insights into the progress of developing genetic tools for chlamydial species other than C. trachomatis with a special focus on zoonotic and veterinary chlamydiae.
Cutaneous burn trauma, compromise of dermal layers and immune defense system is a physical and fiscal burden on healthcare systems. Burn-wound infections are a serious complication of thermal injury and contribute significantly to care burden. After burn-induced trauma, sepsis by Pseudomonas aeruginosa impairs patient recovery and contributes to mortality and morbidity. Past studies show positive correlation between detection of Pseudomonas species and healing-impaired traumatic wounds. Pseudomonas aeruginosa is a resilient opportunistic human pathogen and a nosocomial agent involved in pathology of healing-impaired wounds, especially in burn patients. Expansive array of virulence determinants has resulted in gentamicin- and silver-resistant P. aeruginosa outbreaks. Knowledge of molecular dynamics and phylogeny of P. aeruginosa associated with burn wounds is limited. Therefore, we conducted whole-genome sequencing for genotyping and phylogenetic analysis of P. aeruginosa burn-associated strains (n = 19) isolated from 7 burn cases during hospitalization. Comparison of genetic features in P. aeruginosa strains in the core genome and mobilome detected genetic variations within some clonal infections over time. Genetic variations were observed among different burn cases, with some features identified in severe lung infections. Polyclonal infections were also observed, with differing genotypes and virulence potentials, highlighting the importance of reasoned sampling of isolates for clinical testing.
Acinetobacter baumannii is a major cause of nosocomial infections globally. The increasing prevalence of multidrug-resistant (MDR) A. baumannii has become an important public health concern. To combat drug resistance, alternative methods such as phage therapy have been suggested. In total, 30 MDR A. baumannii strains were isolated from clinical specimens, and their antibiotic susceptibilities were determined. The Acinetobacter phage vB_AbaS_SA1, isolated from hospital sewage, was characterized. In addition to its plaque size, particle morphology, and host range, its genome sequence was determined and annotated. Finally, the antibacterial effects of phage alone, antibiotics alone, and phage/antibiotic combinations were assessed against the A. baumannii strains. Phage vB_AbaS_SA1 had siphovirus morphology, showed a latent period of 20 min, and a 250 PFU/cell (plaque forming unit/cell) burst size. When combined with antibiotics, vB_AbaS_SA1 (SA1) showed a significant phage-antibiotic synergy effect and reduced the overall effective concentration of antibiotics in time-kill assessments. The genome of SA1 is a linear double-stranded DNA of 50 108 bp in size with a guanine-cytosine (GC) content of 39.15%. Despite the potent antibacterial effect of SA1, it is necessary to perform additional research to completely elucidate the mechanisms of action and potential constraints associated with utilizing this bacteriophage.
Chlamydia psittaci is threatening to the animal industry and human beings. Live attenuated duck enteritis virus (DEV) is considered a good vaccine vector. In the present study, the Pmp17G antigen of C. psittaci was expressed in DEV to construct a recombinant DEV-Pmp17G vaccine. The growing curve of the rDEV-Pmp17G vaccine was comparable to the parental DEV strain, and Pmp17G protein expression was detected in the cytosol and membrane of the infected host cells. A total of 30 ducklings assigned to 5 groups were used to evaluate the vaccine efficacy. The birds in the vaccine groups received 15 000 plaque forming units of the rDEV-Pmp17G vaccine via hypodermic injection. In contrast, the control groups received intramuscular inoculation with 1 × 103 embryo lethal dose of DEV vector or 50 µg of commercial recombinant major outer membrane protein (MOMP) vaccine. The rDEV-Pmp17G vaccine induced significantly higher levels of IgG antibodies than the commercial MOMP did on day 14, and the IgG antibodies persisted for 28 days. Moreover, the rDEV-Pmp17G vaccine also induced higher levels of lymphocyte proliferations compared to the DEV vector. The vaccinated animals significantly reduced lesions and enhanced bacterial clearance in the lungs and throats compared to the MOMP immunization. Thus, the rDEV-Pmp17G vaccine induced persistent IgG antibodies and lymphocyte proliferation against C. psittaci infection.
Urinary tract infections (UTIs), primarily caused by uropathogenic Escherichia coli (UPEC), have an unclear impact on bladder mucosal physiology. This study investigates UPEC's effects on the urothelium and lamina propria using an ex vivo porcine bladder model. Bladder mucosal strips were analysed for contractile responses to acetylcholine, serotonin, and neurokinin A. Given rising antibiotic resistance, non-antibiotic agents such as cranberry and d-mannose were also evaluated for their potential to prevent UPEC-induced damage. The findings of the current study revealed that UPEC significantly compromised urothelial integrity, barrier function, and permeability, with loss of urothelial cells, uroplakins, and tight junction protein ZO-1 expression. Additionally, infected bladders exhibited a markedly enhanced contractile response to serotonin compared to uninfected controls. Notably, neither cranberry nor d-mannose offered protection against UPEC-mediated damage or mitigated the heightened serotonin-induced contractility. This study provides novel insights into how UPEC disrupts bladder cell biology and highlights the possible involvement of serotonin in the pathophysiology of UTIs.
The severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has already infected more than 0.7 billion people and caused over 7 million deaths worldwide. At the same time, our knowledge about this virus is still incipient. In some cases, there is pre-pandemic immunity; however, its source is unknown. The analysis of patients' humoral responses might shed light on this puzzle. In this paper, we evaluated the antibody recognition of nucleocapsid protein, one of the structural proteins of SARS-CoV-2. For this purpose, we used pre-pandemic acute COVID-19 and convalescent patients' sera to identify and map nucleocapsid protein epitopes. We identified a common epitope KKSAAEASKKPRQKRTATKA recognized by sera antibodies from all three groups. Some motifs of this sequence are widespread among various coronaviruses, plants or human proteins indicating that there might be more sources of nucleocapsid-reactive antibodies than previous infections with seasonal coronavirus. The two sequences MSDNGPQNQRNAPRITFGGP and KADETQALPQRQKKQQTVTL were detected as specific for sera from patients in the acute phase of infection and convalescents making them suitable for future development of vaccines against SARS-CoV-2. Knowledge of the humoral response to SARS-CoV-2 infection is essential for the design of appropriate diagnostic tools and vaccine antigens.
Post-streptococcal glomerulonephritis (PSGN) is primarily associated with preceding group A streptococcal skin or throat infections, now mainly observed in economically disadvantaged communities. This condition significantly predisposes individuals to later-life chronic kidney disease and concurrent renal complications, with the elderly experiencing increased severity and less favourable outcomes. Streptococcal pyrogenic exotoxin B and nephritis-associated plasmin receptor are identified nephritogenic antigens (nephritogens). Pathogenesis of PSGN is multifactorial. It can involve the formation of antigen-antibody immune complexes, causing inflammatory damage to renal glomeruli. Deposition of circulating immune complexes or in situ formation of immune complexes in glomeruli, or both, results in glomerulonephritis. Additionally, molecular mimicry is hypothesized as a mechanism, wherein cross-reactivity between anti-streptococcal antibodies and glomerular intrinsic matrix proteins leads to glomerulonephritis. Besides, as observed in clinical studies, streptococcal inhibitor of complement, a streptococcal-secreted protein, can also be associated with PSGN. However, the interplay between these streptococcal antigens in the pathogenesis of PSGN necessitates further investigation. Despite the clinical significance of PSGN, the lack of credible animal models poses challenges in understanding the association between streptococcal antigens and the disease process. This review outlines the postulated mechanisms implicated in the development of PSGN with possible therapeutic approaches.
Japanese encephalitis virus (JEV) causes acute Japanese encephalitis (JE) in humans and reproductive disorders in pigs. There are ~68 000 cases of JE worldwide each year, with ~13 600-20 400 deaths. JE infections have a fatality rate of one-third, and half of the survivors experience permanent neurological sequelae. The disease is prevalent throughout the Asia-Pacific region and has the potential to spread globally. JEV poses a serious threat to human life and health, and vaccination is currently the only strategy for long-term sustainable protection against JEV infection. However, licensed JEV vaccines are not effective against all strains of JEV. To date, there are no drugs approved for clinical use, and the development of anti-JEV drugs is urgently needed. Natural products are characterized by a wide range of sources, unique structures, and low prices, and this paper provides an overview of the research and development of anti-JEV bioactive natural products.
The prevalence of Chlamydia trachomatis infection in the genitourinary tract is increasing, with an annual rise of 9 million cases. Individuals afflicted with these infections are at a heightened risk of developing adult inclusive conjunctivitis (AIC), which is commonly recognized as the ocular manifestation of this sexually transmitted infection. Despite its significant clinical implications, the lack of distinctive symptoms and the overlap with other ocular conditions often lead to underdiagnosis or misdiagnosis of AIC associated with C. trachomatis infection. Here, we established six distinct C. trachomatis culture cell lines, specifically highlighting the MA104 N*V cell line that exhibited diminished expression of interferon regulatory factor 3 (IRF3) and signal transducer and activator of transcription 1 (STAT1), resulting in reduced interferons. Infected MA104 N*V cells displayed the highest count of intracytoplasmic inclusions detected through immunofluorescence staining, peaking at 48 h postinfection. Subsequently, MA104 N*V cells were employed for clinical screening in adult patients diagnosed with AIC. Among the evaluated cohort of 20 patients, quantitative PCR (qPCR) testing revealed positive results in seven individuals, indicating the presence of C. trachomatis infection. Furthermore, the MA104 N*V cell cultures derived from these infected patients demonstrated successful cultivation and replication of the pathogen, confirming its viability and infectivity. Molecular genotyping identified four distinct urogenital serovars, with serovar D being the most prevalent (4/7), followed by E (1/7), F (1/7), and Ia (1/7). This novel cellular model contributes to studies on C. trachomatis pathogenesis, molecular mechanisms, and host-pathogen interactions both in vitro and in vivo. It also aids in acquiring clinically relevant strains critical for advancing diagnostics, treatments, and vaccines against C. trachomatis.