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Formation of environmental persistent free radicals in soil of ammunition demolition site: Roles of 2,4,6-trinitrotoluene and heavy metals.

Environmental Persistent Free Radicals (EPFRs) are a particular type of contaminant present in soil. This study investigated the formation process, environmental behavior, and main influencing variables of EPFRs in soils contaminated with heavy metals and 2,4,6-trinitrotoluene (TNT) from an ammunition demolition site. The results showed that the concentration of total organic carbon (TOC) in the soil was negatively correlated with EPFRs (r = -0.29). In contrast, the content of TNT and copper was significantly positively correlated with EPFRs (r = 0.90 and 0.78, respectively), indicating that TNT acts as a precursor macromolecule in the formation of EPFRs in this type of contaminated soil. Transition metal Cu may be an essential carrier in EPFR production. In order to explore the possible formation mechanism of EPFRs, a simulation experiment was carried out under different temperature and light conditions. The results showed that the photolysis process of TNT was impacted by external energy sources such as heat and light. TNT was firstly adsorbed onto the surface of a transition metal (Cu), and then EPFRs were formed through further electron transfer. This is the first study to detect significant levels of EPFRs in the soil at ammunition demolition sites.

Trinitrotoluene

Comparative genomic analysis reveals distinct population structure in Legionella anisa.

Legionella anisa has been frequently isolated from engineered water systems; however, its population structure remains understudied compared to Legionella pneumophila. Here, we generated complete genome sequences for four L. anisa isolates recovered from a healthcare facility in Rimouski, Canada. Further the population structure of this species was investigated by performing comparative genomic analyses of the genomes generated in this study together with publicly available L. anisa genomes. Genome-wide phylogenetic analysis revealed the presence of three distinct clades separated by substantial genetic divergence (∼500 SNP), with the Rimouski isolates forming a tightly clustered group, suggesting a clonal lineage. Comparative pangenome analysis indicated moderate core genome conservation accompanied by a highly variable accessory genome (∼50%). The isolates characterized in this study harbored multiple plasmids encoding genes associated with conjugation, heavy metal resistance, and other stress-related functions, suggesting potential roles in environmental persistence. Previous studies have shown that L. anisa can proliferate within protozoan host cells, although outcomes vary depending on the host species. Our isolates showed efficient proliferation within Acanthamoeba castellanii, but not within Vermamoeba vermiformis, under the conditions tested. Together, these findings underscore the genomic diversity of this understudied Legionella species and provide a framework for future investigations regarding environmental persistence and potential pathogenicity.

Legionella anisa, Whole genome sequencing

From ecological threats to environmental solutions: a critical review of invasive plant species for heavy metal phytoremediation.

Heavy metal contamination represents a persistent environmental challenge threatening ecosystem stability, agricultural productivity, and human health. Therefore, the development of sustainable and cost-effective remediation strategies is essential. Phytoremediation, an environmentally compatible approach that utilizes plants and their associated biological processes to reduce contaminant mobility, bioavailability, and toxicity, has gained increasing attention as an alternative to conventional remediation techniques. Among potential phytoremediation candidates, invasive plant species (IPS) have attracted interest due to their rapid growth, high biomass production, extensive root systems, physiological plasticity, and tolerance to stressful environments, including heavy metal contamination. Species such as Alternanthera philoxeroides, Arundo donax, Eichhornia crassipes, and Pistia stratiotes have demonstrated potential for metal uptake, accumulation, immobilization, or tolerance in contaminated ecosystems. This review critically examines the role of invasive plants in heavy metal phytoremediation by evaluating the physiological, biochemical, and ecological traits that influence remediation outcomes. Key mechanisms, including phytoextraction, phytostabilization, rhizosphere-mediated processes, and plant-microbe interactions, are discussed using evidence from contaminated soil and aquatic environments. The potential advantages of invasive plants, particularly their high biomass production and environmental adaptability, are evaluated alongside ecological concerns associated with their utilization. Importantly, invasion success does not necessarily translate into remediation success, and the effectiveness of invasive plants depends on contaminant characteristics, ecosystem conditions, and management practices. Major challenges, including uncontrolled spread, ecosystem disruption, contaminated biomass management, and limited field-scale validation, are critically assessed. Overall, invasive plants represent context-dependent remediation resources rather than universal solutions. Their application requires integrated risk assessment, containment strategies, long-term monitoring, and evidence-based management frameworks to maximize remediation benefits while minimizing ecological risks.

Contamination

Emerging hantavirus risks in mass gatherings: epidemiology, diagnostic challenges, and outbreak preparedness.

Hantaviruses are emerging rodent borne zoonotic pathogens of increasing global public health concern because of their high mortality, expanding ecological distribution, and potential for international dissemination. Although traditionally associated with sporadic rural outbreaks, recent ecological disruption, climate variability, urbanization, and increased global mobility have heightened concerns regarding hantavirus risks in mass gathering settings. This review critically examines the epidemiology, transmission uncertainty, diagnostic and surveillance challenges, and preparedness strategies related to hantavirus infections in the context of mass gatherings, including religious events, refugee settlements, cruise tourism, sporting events, and temporary accommodations. Particular emphasis is placed on the 2026 multinational cruise ship associated outbreak linked to the MV Hondius, which highlighted vulnerabilities related to delayed diagnosis, international passenger dispersal, and uncertainties surrounding possible human to human transmission of Andes virus. Current evidence indicates that hantavirus transmission occurs primarily through inhalation of aerosolized rodent excreta; however, controversies regarding limited interpersonal transmission, environmental persistence, and asymptomatic infections continue to complicate risk assessment and outbreak preparedness. Diagnostic limitations, underreporting, insufficient environmental surveillance, and lack of mass gathering specific preparedness frameworks remain major public health challenges, especially in resource limited settings. Strengthening proactive preparedness through integrated One Health approaches, ecological surveillance, genomic monitoring, AI driven epidemic intelligence, and coordinated international response systems is essential for mitigating future risks. The review emphasizes the urgent need for multidisciplinary research and evidence based policy development to improve global preparedness against emerging hantavirus associated threats in increasingly interconnected mass gathering environments.

Humans

Behavioral persistence following switchovers between environmental enrichment and impoverishment in mice.

Weanling mice were reared in environmental enrichment and/or impoverishment conditions for 2 months. In the 1st experiment, mice were switched from 1 environment into the other after 1 month, and maintained in the opposite environment for 2 or 4 weeks. Switched and nonswitched groups were compared to establish whether the effects of the initial environmental exposure would persist through later opposite environmental experiences. The performance of switched groups tended to differ from that of all nonswitched groups: little behavioral persistence was found. In the 2nd experiment, mice were switched every 7, 14, or 28 days over a 2-month period. These procedures yielded several types of behavioral outcomes; however, no behavioral persistence was evidenced. The data indicate that early life experiences in a particular level of environmental complexity need not permanently modify behavior.

Animals

Outbreaks of fluconazole-resistant Candida parapsilosis are driven by low-biofilm-producing isolates that emerge under host selection.

Candida parapsilosis is a major human fungal pathogen, with recent global outbreaks driven by fluconazole-resistant (FLCR-Cp) isolates that are difficult to eradicate and associated with poor clinical outcomes. However, the microbial traits enabling persistence of these outbreak lineages remain poorly defined. Here, we show that FLCR-Cp isolates responsible for prolonged, multi-country outbreaks consistently exhibit a striking low-biofilm-producing (LBP) phenotype. Contrary to the prevailing view that robust biofilm formation promotes persistence, LBP strains displayed enhanced stress tolerance, increased cell wall masking, and reduced immune recognition. These traits conferred resistance to neutrophil and macrophage killing and enhanced survival in immune cell-rich organs during systemic infection. Genome-wide transcriptomic profiling revealed extensive metabolic and regulatory rewiring in LBP strains. Whole-genome sequencing (WGS) of a global isolate collection further demonstrated that the LBP phenotype has emerged independently multiple times, supporting convergent evolution under host selection. Functional genomic analyses suggest that biofilm attenuation arises through multigenic changes, and disruption of key biofilm-associated transcriptional regulators enhanced fitness during immune interactions. Together, our findings overturn the assumption that robust biofilm formation drives outbreak persistence and instead identify biofilm attenuation as an adaptive tradeoff that promotes immune evasion and long-term survival. These results redefine our understanding of C. parapsilosis adaptation during healthcare-associated outbreaks and shift attention toward host-driven evolutionary processes than environmental persistence alone.

Biofilms

Microbial aerobic degradation of 4-isopropylnitrobenzene by Sphingobium yanoikuyae strain SG1.

4-Isopropylnitrobenzene (4-IPNB) is a nitroaromatic compound commonly employed as an intermediate in pesticide synthesis and chemical manufacturing. Despite its potential environmental persistence and ecological risks, the microbial degradation pathway of 4-IPNB remains largely unknown. In this study, a Gram-negative bacterium, designated Sphingobium yanoikuyae strain SG1, was isolated from a pesticide manufacturing site in Brazil for its ability to utilize 4-IPNB as the sole added source of carbon, nitrogen, and energy. Aerobic degradation of 4-IPNB by strain SG1 was accompanied by nitrite release, and intermediate-trapping experiments revealed the transient accumulation of 4-isopropylcatechol (4-IPC). Together, these findings support the initial conversion of 4-IPNB to 4-IPC through oxidative denitration and dihydroxylation. Genomic and transcriptomic analyses further inferred several candidate nitroarene dioxygenases that may catalyze this initial reaction. Furthermore, the downstream metabolism of 4-IPC proceeded via both meta- and ortho-cleavage pathways, with cell-extract enzyme assays demonstrating predominant meta-cleavage activity under the tested conditions. Strain SG1 also degraded 4-IPNB in nonsterile soil slurry microcosms, extending its degradation capability beyond defined liquid culture. This study provides the first comprehensive insight into the microbial aerobic degradation of 4-IPNB, advances our understanding of the environmental fate of emerging nitroaromatic contaminants, and supports the potential of strain SG1 in 4-IPNB biodegradation and removal.

Sphingomonadaceae

The maternal-to-zygotic transition is a critical window for PFOA-induced disruption of developmental programming.

Early embryogenesis is governed by precisely timed gene regulatory programs that coordinate cell fate specification, tissue patterning, and morphogenesis. The maternal-to-zygotic transition (MZT) represents a pivotal developmental milestone during which regulatory control shifts from maternally deposited transcripts to activation of the zygotic genome. Disruption of this transition has the potential to alter developmental trajectories with lasting consequences. Per- and polyfluoroalkyl substances (PFAS), environmentally persistent contaminants, have been linked to developmental abnormalities, yet their impact on core embryonic gene regulatory networks especially with exposure during MZT is not well understood. Using zebrafish (Danio rerio), a tractable vertebrate model and New Approach Methodology (NAM), we investigated how PFAS exposure during the MZT alters early developmental programming. Embryos were exposed starting at different times before and within the MZT time window and collected at 24 h post-fertilization (hpf) for transcriptomic analysis. Targeted qRT-PCR revealed dysregulation of genes controlling transcriptional activation, lineage specification, proliferation, and differentiation. Whole-transcriptome RNA sequencing (RNA-seq) further identified widespread perturbations in gene networks governing transcriptional regulation, cell signaling, and embryonic morphogenesis. Temporal analysis revealed that exposure beginning at 3.5 hpf, followed by 8 hpf, corresponding to early zygotic genome activation and near completion of zygotic activation, respectively, resulted in the greatest differential gene expression changes at 24 hpf. Consistent with these early gene regulatory perturbations, larvae exposed starting at 8 hpf also exhibited altered behavior at 5 days post-fertilization. Together, these findings demonstrate that PFAS exposure during MZT disrupts the establishment of embryonic gene regulatory networks, linking environmental toxicant exposure to altered developmental patterning and organismal outcomes. This work underscores the vulnerability of early developmental transitions to environmental perturbation and positions MZT as a critical window of susceptibility during development.

NAMs (new approach methodologies)

Genomic Insights into Mammaliicoccus sciuri from Subclinical Bovine Mastitis to Unveil Key Resistance, Virulence, Biofilm and Adaptation Traits.

The Mammaliicoccus sciuri (M. sciuri), is recognized as a reservoir of antimicrobial resistance (AMR) genes, poses challenges in the Indian dairy sector where antibiotic use is poorly regulated. This study aimed to genomically characterize M. sciuri (formerly Staphylococcus sciuri) isolates recovered from subclinical mastitis (SCM) cattle milk. A total of 128 composite (quarter-wise pooled) milk samples were collected from 199 households (HH) across 16 epiunits /villages in four blocks of Chikkaballapur district, Karnataka, India. Of these, 36 milk samples (28.13%, 36/128; 95% CI: 21.06–36.46%) were diagnosed with SCM using the California Mastitis Test (CMT) and bacteriological culture yielded 113 isolates (88.28%; 113/128; 95% CI: 81.56–92.77%) were phenotypically identified as Staph spp. Through molecular technique PCR targeting the gap gene, two isolates (1.77%; 2/113; 95% CI: 0.49–6.22%) from Hosuru and Gattamaranahalli epiunits were confirmed as M. sciuri and both isolates were mecA-positives indicating methicillin resistance. Whole genome sequencing (WGS) identified 36–37 resistance genes (mecA and blaZ), conferring resistance to β-lactams, macrolides, fluoroquinolones and aminoglycosides. Horizontal gene transfer (HGT) was evidenced by diverse mobile genetic elements (MGEs) such as SCCmec variants, insertion sequences, transposons (IS3, IS6, IS256, and IS1182) and plasmids (Rep1, Rep13, RepUS5 and RepUS43). Virulence profiling uncovered biofilm-associated genes (ica, bap) and heavy metal resistance operons (ars, cop, znu) suggesting mechanisms for environmental persistence and co-selection of resistance traits. Phylogenetic analysis of 99 global isolates revealed host-and geography-specific clustering with Indian isolates occupying distinct evolutionary niches. These findings highlights its possible role as an AMR reservoir and also in bovine mastitis.

Animals

Unlocking microbial potential: advances in omics and bioinformatics for aromatic hydrocarbon degradation.

Aromatic hydrocarbons (AHs) are persistent environmental pollutants with high toxicity. Bacterial degradation of AHs provides a sustainable and cost-effective approach for the remediation of sites contaminated with both mono- and polycyclic aromatic hydrocarbons. Aerobic degradation of AHs typically involves oxygenases-mediated hydroxylation followed by aromatic ring cleavage. In contrast, anaerobic degradation relies on diverse activation mechanisms that ultimately converge on the central intermediate benzoyl-CoA. Over the past decades, research on bacterial degradation of AHs has grown steadily, supported by advances in omics and bioinformatics. In this review, we summarize the current knowledge on the pathways, enzymes, and microbial diversity involved in AH degradation, highlighting how omics and bioinformatic approaches are advancing our understanding of this process. However, to improve our knowledge of microbial AHs catabolism, it is crucial to prioritize the characterization of novel enzymes and pathways, especially those mediating anaerobic and hybrid degradation strategies. Addressing this gap requires the development of specialized resources that incorporate a broader taxonomic diversity and an expanded inventory of anaerobic genes and enzymes supported by experimental evidence. Equally important is the integration of multi-omics technologies, artificial intelligence, and ecological modeling into unified analytical pipelines. These efforts will be key to fully unlocking microbial metabolic potential and guiding more effective bioremediation and monitoring strategies for AHs.

Biodegradation, Environmental

Clade-dependent antifungal resistance and susceptibility in Candidozyma auris: A global scoping review.

BACKGROUND: Candidozyma auris (formerly Candida auris) is an emerging multidrug-resistant fungal pathogen that has spread globally since its first identification in 2009 and is now classified as a critical-priority pathogen by the World Health Organization. Distinct genetic clades are associated with variations in geographic distribution, antifungal susceptibility, and resistance mechanisms; however, clade-specific evidence remains fragmented. AIMS: To systematically map global evidence on clade diversity, antifungal susceptibility patterns, resistance mechanisms, and clinical implications of C. auris. METHODS: A scoping review was conducted following PRISMA-ScR guidelines. Peer-reviewed primary studies published between 2009 and September 2025 were included if they reported clade attribution and antifungal susceptibility or resistance data. PubMed/MEDLINE, Scopus, and Web of Science were searched. Two reviewers independently screened studies and extracted data using a standardized form. RESULTS: Of 2050 records identified, 105 studies met inclusion criteria, representing 29 countries and diverse study designs. Whole-genome sequencing was the most common typing method. Antifungal susceptibility varied substantially across clades. High fluconazole resistance was consistently reported (MIC 4 to >256μg/mL). Echinocandins generally retained activity, although reduced susceptibility associated with FKS1 mutations was observed. Resistance mechanisms primarily involved mutations in ERG11, FKS1, and efflux-related genes. Studies also reported challenges in healthcare-associated transmission, environmental persistence, and diagnostic misidentification. CONCLUSIONS: C. auris exhibits marked clade-dependent variability in antifungal susceptibility and resistance mechanisms. These findings support the need for clade-informed interpretation of susceptibility data, standardized surveillance, improved diagnostics, and development of novel antifungal therapies.

Antifungal Agents

Hydroxyl Radical Inactivation of Vesicle-Cloaked and Free Murine Norovirus: Linking Biomolecular Oxidation to Lifecycle Disruption and Infectivity Loss.

Hydroxyl radicals (•OH) play a central role in inactivating human viruses during advanced oxidation processes for water and wastewater treatment, solar disinfection, and natural attenuation in sunlit aquatic environments. Human norovirus, a leading cause of gastroenteritis, is efficiently transmitted through water and exhibits strong environmental persistence. The recent discovery of vesicle-cloaked virus clusters (viral vesicles) further challenges water treatment and reuse, particularly for norovirus elimination. We investigated •OH inactivation kinetics and mechanisms of murine norovirus 1 (MNV-1), a human norovirus surrogate, in free-virus and vesicle-cloaked forms. •OH rapidly inactivated both MNV-1 vesicles and free MNV-1 with second rate constants of ∼1010 M-1 s-1; however, the vesicle membrane provided a 2.24-fold protective effect to cloaked MNV-1, resulting in slower inactivation kinetics than those of free MNV-1. •OH oxidized viral capsid proteins and genomes together with vesicle proteins and lipids, resulting in impaired CD300lf receptor and cell-based binding, disrupted genome replication, and diminished viral assembly. Despite these biochemical and functional impairments, most vesicle structures remained largely intact following •OH exposure. This study establishes a quantitative framework linking biomolecular damage to viral infectivity loss through functional impairment and lifecycle disruption, providing mechanistic insights into advance water disinfection strategies and public health protection.

Norovirus

Emergence of Acinetobacter soli harboring three carbapenemase-encoding genes (blaNDM-1, blaIMP-14, and blaOXA-58) on a single plasmid in an ICU patient.

Acinetobacter soli is an environmentally adaptable species increasingly recognized as an emerging pathogen in hospital settings, particularly in intensive care units (ICUs). In this study, we report the first A. soli isolate from an ICU patient that co-harbors three carbapenemase-encoding genes (blaNDM-1, blaIMP-14, and blaOXA-58) on a single plasmid. Whole-genome sequencing revealed that multidrug resistance in this strain is mediated by a 294,790 bp plasmid, pSLAB-A, carrying 16 antimicrobial resistance genes, including all three carbapenemases. Comparative plasmid analysis showed a highly conserved backbone but identified a unique ~40 kb multidrug-resistance region containing blaNDM-1, blaIMP-14, and eight additional resistance genes. Genetic context analysis indicated that insertion sequences (ISAba125 and ISAba3) and class 1 integrons contribute to the mobilization and accumulation of carbapenemase-encoding genes. Plasmid stability assays demonstrated that pSLAB-A remained stably maintained for more than 90 generations without antibiotic selection. A global survey of the NCBI database identified 15 A. soli strains carrying carbapenemase-encoding genes, most of which were isolated from China, with clinical specimens representing the predominant source. Seven carbapenemase-encoding genes were detected, with blaNDM-1 being the most prevalent. Among eight isolates with complete genomes, all carried carbapenemase-encoding genes on plasmids. Phylogenetic analysis revealed regional dissemination of a clonal lineage across hospitals in Zhejiang Province and sustained nosocomial transmission within a hospital in Taiwan. These findings suggest that the spread of carbapenem resistance in A. soli is largely driven by multidrug-resistance plasmids, facilitating clonal expansion in hospital environments and posing a growing challenge for antimicrobial therapy and infection control in ICUs.IMPORTANCECarbapenem-resistant A. soli is an emerging clinical concern, capable of causing severe invasive infections, including bacteremia, in intensive care unit settings, and its emergence poses substantial challenges to antimicrobial therapy. In this study, we demonstrate that carbapenem resistance in A. soli is predominantly mediated by the acquisition of multidrug-resistance plasmids carrying carbapenemase-encoding genes. Owing to its strong environmental persistence, A. soli can readily undergo nosocomial clonal dissemination once carbapenem resistance is acquired. Moreover, the spread of multidrug plasmids co-harboring multiple carbapenemase-encoding genes may accelerate the evolutionary trajectory of resistance in A. soli, further exacerbating the threat to clinical management. Given its demonstrated capacity to cause hospital-associated infections and to rapidly acquire multidrug resistance, A. soli warrants heightened vigilance from both clinical and public health perspectives.

beta-Lactamases

Genomic and ecological systems-thinking framework for pathogenic Leptospira in Puerto Rico.

INTRODUCTION: Leptospirosis is a complex zoonotic disease requiring high-resolution surveillance. A systems-thinking framework was used to connect genomic and ecological data and map the geographic and host-based structuring of co-circulating pathogenic Leptospira lineages in Puerto Rico. METHODS: Forty-four core genomes of L. interrogans, L. borgpetersenii, and L. kirschneri from human, domestic, and wildlife hosts were analyzed. Spatiotemporal and landscape metadata were integrated using root-to-tip regression, isolation-by-distance profiling and calibrated single-nucleotide polymorphism (SNP) thresholds (≤1, ≤5, and ≤10 SNPs) to define transmission clusters. RESULTS: Leptospira species exhibited distinct ecological pathways partitioned by geography, explaining 56% of genomic variance for L. interrogans and 91% for L. borgpetersenii (PERMANOVA). L. interrogans displayed high landscape connectivity across multiple hosts, forming localized networks (≤1 to ≤10 SNPs) that capture active spillovers (human-to-rat linkages at ≤1 SNP) and resolved into rodent host-specific lineages (R2 = 0.34). Conversely, L. borgpetersenii showed spatial and temporal genomic homogeneity and a lack of host-associated structure within an unpartitioned transmission pool dominated by Mus musculus. As a result, fixed genomic thresholds yielded disparate outcomes: L. interrogans resolved into 4 to 5 discrete, expanding clusters, whereas L. borgpetersenii grouped into a single uniform population at the ≤10-SNP threshold. CONCLUSION: Co-circulating pathogenic leptospires occupy distinct ecological niches shaped by varying host restriction and environmental persistence. Fixed genomic thresholds lack universal applicability; effective genomic epidemiological surveillance must employ species-specific threshold calibration to accurately map transmission pathways.

Puerto Rico

Understanding Candidozyma (Candida) auris: genomic evolution, antifungal resistance and the growing challenges in global infection control.

Candida auris (recently renamed Candidozyma auris) is an emerging multidrug-resistant fungal pathogen, first identified in Japan in 2009. C. auris exhibits remarkable persistence on human skin and inanimate surfaces, resistance to multiple antifungals, notably fluconazole, and biofilm formation, which hinders infection control and leads to hospital outbreaks with high mortality rates. Despite ongoing research, key aspects of its reservoir origin, transmission routes and the best way to combat its spread and multidrug resistance remain unclear. Improving genomic surveillance and antifungal strategies is crucial to contain its spread and mitigate the growing public health threat posed by this resilient and potentially fatal fungal pathogen.

Humans

Evaluating the persistence of semen under controlled environmental conditions.

When semen is deposited at a crime scene, it may be exposed to harmful environmental conditions. It is important to understand to what extent the different components of semen, specifically acid phosphatase (AP), prostate specific antigens (PSA), sperm and DNA, may become less detectable after exposure to high temperatures and varying levels of humidity. In this study, semen (50&#xa0;&#x3bc;L) was deposited onto squares of black cotton and exposed to 45&#xa0;&#xb0;C and a relative humidity (RH) of 10 or 80% for 0, 7, 14, 21 or 28&#xa0;days (n&#xa0;=&#xa0;5 per day, per climate condition). Source testing included AP test reagent, ABAcard&#xae; p30 immunoassay kits, and hematoxylin and eosin staining. DNA was extracted using the DNA IQ&#x2122; System (Promega, Australia) and quantified using Quantfiler Trio&#x2122; (Thermo Fisher Scientific, Australia). Over the 28-day period under both RH conditions, the time taken for a positive AP test to develop increased significantly (p&#xa0;<&#xa0;0.01) and the number of sperm observed decreased significantly (p&#xa0;<&#xa0;0.01). All ABAcard&#xae; p30 tests were positive regardless of exposure time or conditions. No impact on the quantity of DNA recovered was observed when semen was exposed to 45&#xa0;&#xb0;C and 10% RH, with a higher median quantity of DNA recovered at day 28 compared to day 0. In contrast, when the RH was raised to 80%, the median quantity of DNA recovered was substantially less at day 28 (81.5&#xa0;ng, IQR: 87.5&#xa0;ng) compared to day 0 (181.5&#xa0;ng, IQR: 1172.4&#xa0;ng). This study highlights the impact that temperature and RH may have on the persistence of AP, PSA, sperm and DNA over time.

Humans

Epidemiological and phylogenetic analysis of anthrax in Kazakhstan in 2024.

BACKGROUND: Anthrax remains an important zoonotic disease in Kazakhstan due to the persistence of environmental reservoirs and long-standing endemic foci. Despite ongoing surveillance, the epidemiological characteristics and genetic diversity of circulating Bacillus anthracis strains in the country remain incompletely understood. METHODS: A retrospective epidemiological and phylogenetic investigation of anthrax outbreaks reported in Kazakhstan during 2024 was conducted. Epidemiological data were collected for all laboratory-confirmed human cases and associated outbreak foci. Confirmation of infection was performed by PCR, and B. anthracis isolates were obtained from clinical, environmental and animal-associated samples. Whole-genome sequencing and core-genome single nucleotide polymorphism (cgSNP) analysis were used to characterize the genetic relationships among isolates and to determine their phylogenetic placement. RESULTS: Nine anthrax outbreaks were identified across four regions of Kazakhstan (Almaty, Zhambyl, Atyrau, and West Kazakhstan), resulting in 20 confirmed human cases. All patients were male, with the highest proportion occurring among individuals aged 36-55&#xa0;years (45%). The mean patient age was 43.9&#xa0;years (range: 16-64&#xa0;years). Most infections were associated with slaughtering infected livestock (65%), followed by handling contaminated meat (15%). PCR confirmed infection in all 20 human cases. Culture yielded 17 human-derived B. anthracis isolates from 14 patients and 17 environmental/animal-derived isolates, resulting in 34 isolates in total. Of these, 22 representative isolates underwent whole-genome sequencing. Phylogenetic analysis revealed the circulation of two major lineages. Isolates from Atyrau and West Kazakhstan clustered within the Trans-Eurasian (TEA/STI) lineage. Atyrau isolates formed a tight cluster differing by only 21-32 cgSNPs, consistent with a shared epidemiolocal source, whereas the West Kazakhstan isolate was highly divergent. Zhambyl and Almaty region belonged to the A.Br.Ames lineage but diverged into two distinct sublineages. Zhambyl region isolates demonstrated minimal divergence from the global reference genome Ames Ancestor, differing by only 16-31 SNPs. Almaty region isolates formed an endemic subclone, separated from the reference group by approximately 114 SNPs. Comparison with the Ames Ancestor and Sterne reference strains demonstrated substantial genetic divergence. CONCLUSION: Anthrax outbreaks in Kazakhstan during 2024 were primarily associated with livestock exposure and occurred within established endemic regions. Whole-genome sequencing revealed the coexistence of distinct TEA and Ames lineages, including evidence of persistent local transmission and long-term evolutionary stability of endemic B. anthracis populations. These findings enhance understanding of anthrax epidemiology in Central Asia and support the integration of genomic surveillance into national outbreak investigation programs.

Anthrax