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Keywords = aquatic ecological health

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18 pages, 1047 KB  
Review
Potentials and Applications of Microalgae and Spirulina (Cyanobacterium) in Pet Nutrition and Health: A Comprehensive Review with a Special Focus on Euglena gracilis
by Jing Liu, Leshi Li, Yan Yan, Ming Du and Jiangxin Wang
Phycology 2026, 6(3), 87; https://doi.org/10.3390/phycology6030087 - 6 Aug 2026
Abstract
The pet food industry is undergoing a significant transformation, driven by the growing trend of companion animal humanization and increasing concerns over the environmental sustainability of conventional protein and lipid sources. Consumers now seek diets that not only meet basic nutritional requirements but [...] Read more.
The pet food industry is undergoing a significant transformation, driven by the growing trend of companion animal humanization and increasing concerns over the environmental sustainability of conventional protein and lipid sources. Consumers now seek diets that not only meet basic nutritional requirements but also offer preventive health benefits. Microalgae, including Arthrospira (Spirulina, a kind of cyanobacterium), Chlorella, Schizochytrium, and Euglena gracilis, have emerged as versatile biological platforms capable of addressing both functional and sustainability challenges. These microorganisms produce high-quality proteins, omega-3 long-chain polyunsaturated fatty acids (particularly docosahexaenoic acid, DHA), natural pigments, and immunomodulatory polysaccharides. This review synthesizes findings from peer-reviewed studies on the application of microalgae in pet nutrition, covering dogs, cats, and aquatic companion animals. We examine how algal ingredients influence gut microbiota, for instance, by enriching beneficial genera such as Turicibacter and Peptococcus, enhance vaccine responses and mucosal immunity, support cognitive function in aging pets, and contribute to weight management. Particular attention is given to Euglena gracilis and its paramylon (β-1,3-glucan), a pathogen-associated molecular pattern that engages the Dectin-1 pathway to train innate immunity and has demonstrated antiviral activity through host defense mechanisms. The review also surveys the patent landscape, highlighting trends in palatability enhancement, hypoallergenic formulations, and novel delivery formats. Key challenges remain, including ingredient standardization, safety validation, palatability optimization, and consumer acceptance. We outline a translational roadmap that prioritizes well-designed clinical trials in target species and processing methods that preserve bioactivity. Collectively, the evidence positions microalgae, and Euglena gracilis in particular, as promising candidates for next-generation functional pet foods that deliver health benefits alongside ecological sustainability. Full article
(This article belongs to the Special Issue Advances in Algal Molecular Biology and Biotechnology)
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15 pages, 1674 KB  
Perspective
The Role of Migratory Birds in the Dissemination of Antimicrobial Resistance: A One Health Perspective
by Ahmad Ali, Mohammad Adil, Bilal Ahmad, Muhammad Ilyas, Rakhshanda Rani, Uzair Alam, He Hongsu, Zhang Hui and Sun Zhihua
Vet. Sci. 2026, 13(8), 782; https://doi.org/10.3390/vetsci13080782 - 4 Aug 2026
Viewed by 141
Abstract
Antimicrobial resistance (AMR) is a major One Health challenge driven by antimicrobial misuse in human medicine, veterinary practice, animal production, and polluted environments. Migratory birds move among wetlands, farms, wastewater-affected habitats, landfills, and coastal ecosystems and may acquire and redistribute antimicrobial-resistant bacteria (ARB) [...] Read more.
Antimicrobial resistance (AMR) is a major One Health challenge driven by antimicrobial misuse in human medicine, veterinary practice, animal production, and polluted environments. Migratory birds move among wetlands, farms, wastewater-affected habitats, landfills, and coastal ecosystems and may acquire and redistribute antimicrobial-resistant bacteria (ARB) and antimicrobial resistance genes (ARGs) across ecological and political boundaries. This perspective synthesizes evidence on exposure sources, bacterial reservoirs, resistance determinants, cross-species interfaces, and surveillance priorities while explicitly distinguishing four claims: detection or carriage, persistence in individual birds, redistribution along migratory routes, and onward transmission to recipient hosts or environments. Published studies report multidrug-resistant Escherichia coli, Klebsiella pneumoniae, Salmonella spp., Enterococcus spp., and Campylobacter spp., with determinants including blaCTX-M, blaTEM, blaNDM, mcr, tet, sul, and qnr genes. The eight evidence groups summarized here constitute an illustrative, non-comprehensive selection; they are predominantly observational surveys or screenings, and none reconstructs a complete source–bird–destination–recipient transmission chain. Taxon-specific ecology modifies exposure: gulls and storks frequently exploit refuse and wastewater, waterfowl and shorebirds connect aquatic habitats, whereas passerines often reflect more local point-source contamination. Current evidence therefore supports migratory birds primarily as mobile sentinels and opportunistic carriers of anthropogenic AMR, while acknowledging possible natural or ancestral resistance in avian-associated microbiota. Future surveillance should combine longitudinal sampling, baseline cohorts such as pre-migratory nestlings, paired bird–water–soil–sediment sampling, whole-genome sequencing, plasmid profiling, telemetry, environmental DNA, wastewater-based epidemiology, and interoperable veterinary reporting. Practical mitigation requires antimicrobial stewardship, wastewater and landfill control, farm biosecurity, and coordinated veterinary, environmental, and public-health action. Full article
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23 pages, 1779 KB  
Review
Shiga Toxin-Producing Escherichia coli in Aquaculture: A Decade (2015–2025)-Long Global Retrospective Outlook
by Ayesha Sarwar, Bilal Aslam and Sulaiman F. Aljasir
Vet. Sci. 2026, 13(8), 779; https://doi.org/10.3390/vetsci13080779 - 4 Aug 2026
Viewed by 237
Abstract
Shiga toxin-producing Escherichia coli (STEC) contamination and proliferation in aquaculture and aquatic systems is worrisome for global food safety, as well as veterinary and public health. Traditionally linked with terrestrial ruminant reservoirs, aquaculture matrices, including farmed finfish, shellfish, culture water, and benthic organisms, [...] Read more.
Shiga toxin-producing Escherichia coli (STEC) contamination and proliferation in aquaculture and aquatic systems is worrisome for global food safety, as well as veterinary and public health. Traditionally linked with terrestrial ruminant reservoirs, aquaculture matrices, including farmed finfish, shellfish, culture water, and benthic organisms, are increasingly acknowledged as potential conduits for the dissemination of STEC. Herein, the review documented data concerning the prevalence, genomic composition, and ecological dynamics of STEC across various aquaculture environments across different regions of the globe. As a result, the persistence of virulence-associated genes (VAGs) and antibiotic-resistant genes (ARGs) in STEC within the aquaculture supply chain presents a considerable risk to global food security and public health, highlighting the urgent necessity for comprehensive “One Health” surveillance frameworks aimed at alleviating aquatic biosecurity challenges. Full article
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24 pages, 16593 KB  
Article
Green Fabrication of Aspergillus terreus–Silver Oxide Bio-Nanocomposite for Sustainable Wastewater Treatments: Synthesis, Optimization, Toxicity Assessment, and Application
by Ghada Abd-Elmonsef Mahmoud, Ahmed Y. Abdel-Mallek and Rania Mahmoud Fouad
Sustainability 2026, 18(15), 7817; https://doi.org/10.3390/su18157817 - 2 Aug 2026
Viewed by 216
Abstract
The discharge of azo-dye-containing wastewater from textile and related industries represents a major environmental challenge because of the persistence, toxicity, and poor bio-degradability of synthetic dyes. Congo red dye (CR), one of the most widely used azo dyes, poses serious ecological and public [...] Read more.
The discharge of azo-dye-containing wastewater from textile and related industries represents a major environmental challenge because of the persistence, toxicity, and poor bio-degradability of synthetic dyes. Congo red dye (CR), one of the most widely used azo dyes, poses serious ecological and public health risks when released into aquatic ecosystems. Although numerous biological adsorbents have been investigated for dye removal, the development of sustainable fungal-based nanocomposites with high adsorption efficiency, optimized operational conditions, and verified environmental safety remains limited. Therefore, the present work describes the development and evaluation of a novel Aspergillus terreus–silver oxide nanoparticle (Ag2O NPs) myco-nanocomposite as a promising eco-friendly biosorbent for CR dye removal from aqueous solutions and real wastewater. Aspergillus terreus (GenBank accession PX920301) isolated from dye-contaminated wastewater, the adsorption efficiencies of dried mycelia, and the myco-nanocomposite were compared. Myco-nanocomposite was characterized using ultraviolet visible spectroscopic analysis (UV/Vis), Fourier transform infrared spectroscopy (FTIR), and X-ray diffraction (XRD). A. terreus–Ag2O NPs myco-nanocomposite exhibited the highest ad-sorption efficiency 92.73%, adsorption capacity (qe) 118.7 mg/g and lowest CR dye residual by 3.81 mg/L, while A. terreus non-autoclaved dried mycelia recorded 78.28% CR removal, adsorption capacity (qe) 100.2 mg/g and CR dye residual by 11.39 mg/L. Adsorption parameters were optimized using a four-factor Box–Behnken experimental design, producing a highly significant quadratic model (R2 = 0.986). The highest optimized conditions were obtained at run 17 in which 100 mg L−1 CR dye, pH 8, 0.05 g adsorbent dosage, and 48 h contact time, with removal efficiency of 96.88%, followed by run 14 using 50 mg L−1 CR dye, pH 6, 0.05 g adsorbent dosage, and 48 h contact time, with removal efficiency of 95.79%. Phytotoxicity and microbial toxicity assays demonstrated that the treated wastewater was environmentally safer than untreated CR dye, exhibiting no inhibitory effects on representative bacteria, yeast, and filamentous fungi while improving wheat seedling growth. Furthermore, application of the myco-nanocomposite to real industrial wastewater achieved 94.92% decolorization. This study provides a sustainable myco-nanocomposite of A. terreus–Ag2O NPs which represents a promising green technology for the remediation of dye-contaminated industrial effluents and supports the development of environmentally sustainable wastewater management strategies and applicability of reusing treated wastewater. Full article
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22 pages, 6715 KB  
Article
Distribution, Source Apportionment, and Risk Assessment of Heavy Metals in Surface Waters from a Glacier Basin on the Southeastern Tibetan Plateau
by Xinyu Wen, Rui Zhang, Qianli Hong, Hui Li, Yan Yao, Meixian Mo, Binbin Ren and Huawei Zhang
Toxics 2026, 14(8), 672; https://doi.org/10.3390/toxics14080672 - 29 Jul 2026
Viewed by 244
Abstract
Heavy metals in surface waters pose significant risks to aquatic ecosystems and human health. In this study, a comprehensive analysis of multiple heavy metals (V, Cr, Mn, Co, Ni, Cu, Zn, As and Cd) was performed using extensive surface water samples from the [...] Read more.
Heavy metals in surface waters pose significant risks to aquatic ecosystems and human health. In this study, a comprehensive analysis of multiple heavy metals (V, Cr, Mn, Co, Ni, Cu, Zn, As and Cd) was performed using extensive surface water samples from the Meili Snow Mountains glacier basin, southeastern Tibetan Plateau. Results showed that heavy metal concentrations were higher in glacier meltwater than in downstream rivers, with significant variability observed in both the glacier basin (0.00300–33.4 μg/L) and downstream rivers (0.00500–2.85 μg/L), attributable to local geological processes and regional atmospheric deposition of transported particulate pollutants. Elevated total heavy metal concentrations at Sinong River and Qunatong River were primarily driven by uneven distribution of specific metals, likely from both anthropogenic and natural sources. Principal component analysis extracted three components that grouped heavy metals into Mn–Co–Ni–Cd, Cu–Zn, and V–Cr associations, indicating mixed geogenic and anthropogenic sources, with long-range atmospheric transport from surrounding polluted regions being a notable contributor. Risk assessments indicated low ecological risks (ERI < 150) and safe non–carcinogenic risks (HI < 1), with children exhibiting higher susceptibility than adults and As being the primary contributor. Although the carcinogenic risks (TCR: 10−6–10−4) were acceptable, ingestion of As and Ni posed higher risks, especially in the Yubeng River basin for adults. These findings provide valuable insights for water resource management and health protection in the southeastern Tibetan Plateau. Full article
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11 pages, 688 KB  
Review
Microalgal Bioremediation of Microplastics: Current Advances, Challenges and Environmental Applications
by Khushaboo Soni, Payal Chaurasia, Srishti Singh, Sanjay Singh, Alok Kumar Singh, Soubhagya Keshari Chand, Suresh Kumar Yatirajula, Sasmita Chand, Jagdeep Kumar Nayak and A. R. Palaniappan
Microplastics 2026, 5(3), 149; https://doi.org/10.3390/microplastics5030149 - 28 Jul 2026
Viewed by 171
Abstract
The world is facing a triple global crisis: climate change, loss of biodiversity, and pollution. Plastics, man-made polymers from primary fossil fuel sources, have pervasively entered almost every sector and thereby caused huge environmental pollution. Microplastic (MPs) sizes range between 1 μm and [...] Read more.
The world is facing a triple global crisis: climate change, loss of biodiversity, and pollution. Plastics, man-made polymers from primary fossil fuel sources, have pervasively entered almost every sector and thereby caused huge environmental pollution. Microplastic (MPs) sizes range between 1 μm and 5 μm, and nanoplastics are less than 1 μm in size, respectively. Behaviour, accumulation and movement of plastics in soil, water and air depend on their size. Smaller sizes of microplastics and nannoplastics can easily enter cells, tissues, and finally, the food chain, and pose growing ecological and health concerns due to their persistence. It also acts as an adsorbent and has the ability to penetrate food webs. Their diverse shapes, especially fibres, increase their dispersal and bioavailability in aquatic ecosystems. Recent findings indicate that microalgae contribute to the mitigation of microplastic pollution. Microalgae, diverse photosynthetic microorganisms ranging from 0.5 to 200 μm, interact with microplastics through processes such as adsorption, aggregation, and potential biodegradation mechanisms, including toxin systems or enzymes produced by the microalgae, utilising plastic polymers as carbon sources. The filamentous morphology of some species, such as Spirulina sp., increases the entrapment and potential degradation of microplastic fibres. It is essential to understand these interactions to construct sustainable means of mitigating microplastic pollution and recovering the aquatic ecosystem health. Microalgae produce enzymes such as lipases, esterases, and cellulases, which facilitate the biodegradation of plastics. Microalgae form biofilm on the surface of microplastics. They also secrete sticky extracellular polymeric substances (EPS) that cause the microplastic to sink to the bottom of the water body, which helps to remove microplastics from surfaces. This review summarises knowledge on microalgae–microplastic interactions, with a focus on their potential for bioremediation of microplastics and also sustainable conservation of the environment. Full article
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21 pages, 18990 KB  
Article
Metagenomic Characterization of Antibiotic Resistance Genes, Mobile Genetic Elements and Virulence Factors in the Surface Water of the Baotou Section of the Yellow River
by Chunjie Liu, Qiuying Yu, Qin Li, Yuqiao Jia, Xiuwen Zhu, Tianyang Li, Wenqi Yang, Qian Su and Feifei Wang
Water 2026, 18(15), 1780; https://doi.org/10.3390/w18151780 - 23 Jul 2026
Viewed by 322
Abstract
Antibiotic resistance genes (ARGs) have been widely recognized as emerging environmental contaminants due to their potential threats to public health and ecosystems. Owing to the extensive use of antibiotics in clinical, agricultural, and aquaculture settings, large quantities of ARGs are continuously introduced into [...] Read more.
Antibiotic resistance genes (ARGs) have been widely recognized as emerging environmental contaminants due to their potential threats to public health and ecosystems. Owing to the extensive use of antibiotics in clinical, agricultural, and aquaculture settings, large quantities of ARGs are continuously introduced into the natural environment. As a result, aquatic environments—particularly surface waters—act as important reservoirs and transmission pathways for ARGs. However, despite the Yellow River being a major surface river in northern China, the occurrence and sources of ARGs in this river remain poorly understood. In this study, shotgun metagenomic sequencing was applied to investigate the composition of ARGs, mobile genetic elements (MGEs), and virulence factors (VFs) in three water sources in the Baotou section of the Yellow River. A total of 35 types of ARGs, 3 types of MGEs, and 14 categories of VFs were identified across all samples. Among them, multidrug resistance genes, peptide resistance genes and glycopeptide resistance genes exhibited relatively high abundances, indicating their widespread distribution in the study area. In terms of MGEs, recombinases and transposases were dominant, suggesting their important roles in gene mobilization. Meanwhile, VFs were mainly associated with metabolic functions, immune modulation, and adherence, reflecting the potential pathogenic risks in the aquatic environment. Co-occurrence networks revealed extensive associations between ARGs and MGEs, as well as ARGs and VFs. Many positive correlations were observed, suggesting possible ecological associations between ARGs and MGEs and potential co-selection between ARGs and VFs. Overall, this study provides valuable insights into the distribution patterns and co-occurrence patterns of ARGs, MGEs, and VFs in the Yellow River and offers a scientific basis for the management and control of antibiotic resistance pollution in large river systems. Full article
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27 pages, 5884 KB  
Review
Research Progress on Peroxymonosulfate Activation by Copper-Based Single-Atom Catalysts for Antibiotic Removal
by Xun Liu, Jialin Chen, Qiang Chen and Wenlong Mo
Sustainability 2026, 18(15), 7507; https://doi.org/10.3390/su18157507 - 23 Jul 2026
Viewed by 503
Abstract
The persistent residue of antibiotics in aquatic environments and the subsequent global spread of antibiotic resistance (AMR) pose major threats to ecological security and public health. Advanced oxidation processes based on peroxymonosulfate (PMS) activation, which generate highly reactive species such as sulfate radicals, [...] Read more.
The persistent residue of antibiotics in aquatic environments and the subsequent global spread of antibiotic resistance (AMR) pose major threats to ecological security and public health. Advanced oxidation processes based on peroxymonosulfate (PMS) activation, which generate highly reactive species such as sulfate radicals, hydroxyl radicals, singlet oxygen, and high-valent metal-oxo species, have shown remarkable potential for the advanced treatment of antibiotic-contaminated wastewater. In recent years, copper-based single-atom catalysts (Cu SACs), featuring atomically dispersed active centers, nearly 100% atomic utilization, and highly tunable coordination microenvironments, have emerged as a research frontier in PMS activation. This review systematically summarizes the current status of antibiotic pollution and associated eco-health risks, and comprehensively discusses the main synthesis strategies for Cu SACs (e.g., MOF-pyrolysis, salt-assisted templating, nanoconfinement, multi-site synergistic systems, and biomass-derived methods) as well as structural characterization techniques. It focuses on the regulation mechanisms of PMS activation pathways through precise chemical strategies including coordination number regulation, heteroatom doping (S, P, etc.), axial/second-shell coordination engineering, and atomic inter-site spacing modulation. The competitive and synergistic relationships among radical, singlet oxygen, high-valent copper-oxo, and electron transfer pathways are systematically analyzed. Furthermore, this review evaluates the intrinsic activity, selectivity, wide pH adaptability, mineralization efficiency, catalyst stability, and performance in real water matrices for antibiotic degradation by Cu SACs. Finally, it highlights the key scientific challenges and future directions, including the precise construction of single-atom-cluster synergistic systems, integration of in situ/operando characterization with multiscale simulation, scalable synthesis and engineering lifetime validation, machine-learning-assisted high-throughput rational design, and holistic control of environmental risks throughout the treatment chain. Full article
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27 pages, 1624 KB  
Review
Chitosan Hydrogels for Antibiotic Remediation and Dye Removal: A Review
by Sai Yin, Wen Yuan, Longmei Zhao, Yida Niu and Jianhui Guo
Gels 2026, 12(8), 658; https://doi.org/10.3390/gels12080658 - 23 Jul 2026
Cited by 2 | Viewed by 373
Abstract
The co-contamination of aquatic environments by antibiotic residues and organic dyes poses a serious threat to ecological security and human health, underscoring the urgent need for high-efficiency, recyclable, and environmentally benign adsorbents. Chitosan, a naturally occurring alkaline polysaccharide rich in reactive functional groups, [...] Read more.
The co-contamination of aquatic environments by antibiotic residues and organic dyes poses a serious threat to ecological security and human health, underscoring the urgent need for high-efficiency, recyclable, and environmentally benign adsorbents. Chitosan, a naturally occurring alkaline polysaccharide rich in reactive functional groups, has attracted considerable attention in water treatment applications. Nevertheless, its practical use is often constrained by intrinsic limitations, including poor stability in acidic media, inadequate mechanical strength, and difficulties in solid–liquid separation. Chitosan-based hydrogels, featuring unique three-dimensional cross-linked networks, high porosity, and strong hydrophilicity, provide efficient mass-transfer pathways for macromolecular contaminants and thus offer a promising strategy to overcome the shortcomings of pristine chitosan. This review comprehensively summarizes recent advances in chitosan-based hydrogel adsorbents, with a focus on elucidating the critical structure–performance relationships that link molecular/structural design to adsorption efficacy. First, fabrication strategies are systematically reviewed, ranging from molecular-level modifications (e.g., grafting, chemical cross-linking, and interpenetrating polymer networks) to macroscopic structural engineering approaches (e.g., mechanically reinforced, magnetic, and stimuli-responsive hydrogels). Subsequently, adsorption behaviors toward representative classes of antibiotics, including tetracyclines, fluoroquinolones, and sulfonamides, are critically examined, with emphasis on the underlying mechanisms such as electrostatic interactions, hydrogen bonding, π–π stacking, and pore-filling effects. In addition, the removal performance of chitosan-based hydrogels for organic dyes with varying charge characteristics is summarized, together with an analysis of how environmental factors (e.g., pH and ionic strength) influence adsorption kinetics and thermodynamics. Finally, key challenges related to mechanical robustness, selective adsorption, and recyclability are discussed, and future perspectives are proposed for the development of multifunctional, synergistic, and intelligent, environmentally responsive chitosan-based hydrogel materials. This review aims to provide systematic insights and guidance for the rational design of advanced hydrogel adsorbents for the treatment of complex wastewater. Full article
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20 pages, 2699 KB  
Review
Environmental DNA in the Ecological Risk Assessment of Water Pollution: Methods, Applications, Challenges, and Future Perspectives
by Xiaotian Zhang, Xiaoran Gong, Shanshan Di and Miaomiao Teng
Toxics 2026, 14(7), 644; https://doi.org/10.3390/toxics14070644 - 22 Jul 2026
Viewed by 383
Abstract
Water pollution and its ecological consequences have become central concerns in watershed governance and aquatic ecosystem conservation. Conventional ecotoxicological research on water pollution has long relied on physicochemical monitoring, laboratory-based single-species exposure tests, and morphology-based biological surveys. Although these approaches have provided essential [...] Read more.
Water pollution and its ecological consequences have become central concerns in watershed governance and aquatic ecosystem conservation. Conventional ecotoxicological research on water pollution has long relied on physicochemical monitoring, laboratory-based single-species exposure tests, and morphology-based biological surveys. Although these approaches have provided essential support for pollutant identification, toxicity characterization, and environmental standard setting, they remain insufficient for resolving community-level responses, food-web perturbations, and ecosystem degradation under multiple-stressor conditions. Environmental DNA (eDNA) has emerged as a promising molecular tool because it is non-invasive, highly sensitive, high-throughput, and capable of detecting multiple taxa simultaneously. In aquatic systems, eDNA applications have expanded from biodiversity detection to pollution diagnosis, ecological health assessment, restoration monitoring, and early warning of ecological risk, while increasingly being integrated with eRNA, multi-omics approaches, machine learning, hydrological modeling, and ecological network analysis. However, several challenges still constrain its broader application, including incomplete methodological standardization, false-positive and false-negative detections, insufficient reference databases, limited quantitative capacity, scale mismatches caused by transport and mixing, and difficulties in causal attribution. This review synthesizes recent progress in the use of eDNA for water-pollution research, with emphasis on its technical workflow, major application domains, integrative analytical frameworks, and methodological boundaries. More specifically, three main points are highlighted: (1) eDNA is shifting water-pollution research from single-species toxicity characterization toward community- and ecosystem-level ecological interpretation; (2) its greatest value lies in its integrative role at the interface of biodiversity monitoring, ecological risk assessment, and management-oriented decision support; and (3) future progress will depend on improvements in standardization, quantitative inference, regional reference databases, and multi-source data integration. Overall, this review clarifies how eDNA can contribute to more robust, ecologically meaningful, and management-relevant assessment of water pollution. Full article
(This article belongs to the Section Ecotoxicology)
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14 pages, 1463 KB  
Article
Parental Lifetime PBSA Exposure Induces Neurodevelopmental Toxicity in F1 Zebrafish
by Ruo Chen, Jie Chen, Junyan Tao and Wei Huang
Toxics 2026, 14(7), 639; https://doi.org/10.3390/toxics14070639 - 22 Jul 2026
Viewed by 289
Abstract
2-phenylbenzimidazole-5-sulfonic acid (PBSA) is a commonly used organic ultraviolet (UV) filter frequently found in aquatic environments, raising substantial ecological health concerns. While some toxic effects of PBSA on aquatic organisms have been reported, its intergenerational developmental and neurotoxic risks remain poorly understood. In [...] Read more.
2-phenylbenzimidazole-5-sulfonic acid (PBSA) is a commonly used organic ultraviolet (UV) filter frequently found in aquatic environments, raising substantial ecological health concerns. While some toxic effects of PBSA on aquatic organisms have been reported, its intergenerational developmental and neurotoxic risks remain poorly understood. In this study, we established a zebrafish life-cycle exposure model to explore the intergenerational toxicity of environmentally relevant concentrations of PBSA (0.2, 2, and 20 μg/L). Offspring were categorized into three exposure groups: parental exposure only (F0+/F1−), parental exposure with continuous F1 exposure (F0+/F1+), and only F1 exposure without parental treatment (F0−/F1+). Our findings demonstrate the transfer of PBSA from parental gonads to F1 embryos. Parental lifetime exposure significantly inhibited somitogenesis and increased mortality and malformation rates in the F1 generation, with the most pronounced developmental damage observed in the F0+/F1+ group. Whole-mount immunohistochemistry revealed that PBSA notably reduced motor neuron axon length in F1 larvae, accompanied by downregulation of developmental-related genes including gap43, mbp, and shha. Mechanistically, the F0+/F1− group exhibited a marked increase in MDA levels. Excessive ROS accumulation and reduced CAT activity were specifically observed in the F0+/F1+ group, whereas the F0+/F1− and F0−/F1+ groups showed significantly elevated CAT activity, jointly driving developmental and neurotoxic changes. In silico predictions indicated low acute aquatic toxicity of PBSA, contradicting its observed intergenerational risks. Our findings demonstrate that parental lifetime PBSA exposure can induce significant intergenerational neurodevelopmental toxicity in zebrafish offspring by disrupting oxidative balance and neural gene expression, with continuous offspring exposure further aggravating the adverse effects. This research underscores that traditional single-generation toxicity assessments underestimate the ecological dangers of UV filters. It also offers new insights into the environmental risk evaluation of PBSA and similar emerging contaminants. Full article
(This article belongs to the Section Ecotoxicology)
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20 pages, 872 KB  
Review
Meloxicam in the Environment: Pathways of Entry, Ecotoxicity, and Removal Strategies
by Semyon M. Tyan and Irina B. Ivshina
Toxics 2026, 14(7), 631; https://doi.org/10.3390/toxics14070631 - 20 Jul 2026
Viewed by 309
Abstract
Meloxicam, a selective cyclooxygenase-2 inhibitor, is commonly used as non-steroidal anti-inflammatory drug in both human and veterinary medicine. Owing to its heterocyclic structure, toxicity to invertebrates, vertebrates, and microorganisms, and potential to biomagnify through the food webs, meloxicam persists in the environment and [...] Read more.
Meloxicam, a selective cyclooxygenase-2 inhibitor, is commonly used as non-steroidal anti-inflammatory drug in both human and veterinary medicine. Owing to its heterocyclic structure, toxicity to invertebrates, vertebrates, and microorganisms, and potential to biomagnify through the food webs, meloxicam persists in the environment and poses a risk to ecological health. There is still a paucity of information on meloxicam as a pharmaceutical contaminant. It is not included in priority lists, which means its environmental risk is often underestimated. This paper provides an integrative overview of the currently available literature (2009–2026) on the environmental occurrences, ecotoxicity, transport pathways, and removal strategies of meloxicam. The distribution of meloxicam has been most extensively studied in aquatic environments, whereas information on soils, plants, and terrestrial fauna remains limited. Bioaugmentation is the most promising strategy for reducing ecotoxicological risk, although its effectiveness against meloxicam has so far been confirmed only in a few model systems. The evidence presented here underscores the importance of strict regulation of meloxicam use and routine environmental monitoring. We hope this review will be useful to ecologists, microbiologists, and regulatory agencies developing strategies to mitigate pharmaceutical contamination. Full article
(This article belongs to the Special Issue Exposure to Emerging Contaminants and Human Health Risks)
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20 pages, 1285 KB  
Entry
Biodegradation: A Pharmaceutical Journey
by Thomas I. Wilkes
Encyclopedia 2026, 6(7), 159; https://doi.org/10.3390/encyclopedia6070159 - 19 Jul 2026
Viewed by 329
Definition
Pharmaceuticals are essential to modern healthcare but increasingly represent a pervasive and biologically active class of environmental contaminants. Following administration, many drugs are incompletely metabolised in the human body and are excreted as parent compounds or active metabolites, subsequently entering municipal wastewater treatment [...] Read more.
Pharmaceuticals are essential to modern healthcare but increasingly represent a pervasive and biologically active class of environmental contaminants. Following administration, many drugs are incompletely metabolised in the human body and are excreted as parent compounds or active metabolites, subsequently entering municipal wastewater treatment plants (WWTPs). Conventional treatment processes only partially remove many pharmaceuticals, resulting in chronic sub-therapeutic exposure of microbial communities which act as both functional agents of biodegradation and sensitive ecological targets. Such exposure alters microbial structure and function, reduces biotransformation capacity, promotes the persistence of recalcitrant compounds such as carbamazepine and diclofenac, and drives the selection and dissemination of antibiotic resistance genes. These effects may propagate across aquatic, terrestrial, agricultural, and food systems via treated effluents and biosolids, linking human medical practices to environmental and public health outcomes. By integrating Pharmaceutical science, wastewater engineering, microbiome ecology, and antimicrobial resistance research, this work frames pharmaceutical pollution as a closed-loop OneHealth challenge. Full article
(This article belongs to the Collection Encyclopedia of One Health)
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30 pages, 5436 KB  
Review
Microbial Bioremediation of Microplastic Pollution for a Sustainable Ecosystem and Greener Future: A Review
by Babita Thakur, Sukhminderjit Kaur, Manikant Tripathi and Pankaj Singh
Appl. Microbiol. 2026, 6(7), 82; https://doi.org/10.3390/applmicrobiol6070082 - 17 Jul 2026
Viewed by 400
Abstract
Pollution by emerging contaminants like microplastic is one of the major environmental concerns. Microplastics have become ubiquitous anthropogenic pollutants of aquatic, terrestrial and atmospheric ecosystems, and can generate considerable ecological and health-related risks. Conventional remediation regimes are widely ineffective, due to the physicochemical [...] Read more.
Pollution by emerging contaminants like microplastic is one of the major environmental concerns. Microplastics have become ubiquitous anthropogenic pollutants of aquatic, terrestrial and atmospheric ecosystems, and can generate considerable ecological and health-related risks. Conventional remediation regimes are widely ineffective, due to the physicochemical recalcitrance of polymer matrices. Recent advances in microbial biotechnology have revealed several contrasting microbial taxa and enzyme systems, which can convert or mineralize synthetic polymers through a variety of pathways of complex biochemistry. This review summarizes the current understanding of microbial–polymer interactions, including surface colonization, biofilm-mediated depolymerization, and intracellular uptake of degradation intermediates. It also discusses recent developments in enzyme engineering, strain optimization employing the CRISPR method, and synthetic biology approaches improving catabolic efficiency. The advent of a variety of multi-omics technologies of metagenomics, transcriptomics, and metabolomics has enabled the characterization of novel hydrolases and oxidoreductases with a high potential catalytic efficiency. Advances in nanobiocatalysis, enzyme immobilization, and bioreactor technology improve the scale-up of these processes. Related molecular developments and environmental applications will promote the application of microbial biotechnology as a selective and sustainable tool for the mitigation of microplastic accumulation and the development of a circular bioeconomy that interacts positively with ecosystem resilience. Full article
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15 pages, 15940 KB  
Article
Magnetically Recoverable Fe3O4/Cu2O-Ag Plasmonic Nanocomposites for Integrated Photocatalytic Degradation and Ultrasensitive SERS Detection of Tetracycline
by Haocheng He, Boya Ma, Haozhe Sun, Zimeng Li, Huixu Liu, Wenshi Zhao, Naveen Reddy Kadasala, Bo Feng and Yang Liu
Inorganics 2026, 14(7), 188; https://doi.org/10.3390/inorganics14070188 - 16 Jul 2026
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Abstract
The persistent accumulation of tetracycline (TC) antibiotics in aquatic environments poses severe ecological and public health risks, necessitating the development of multifunctional platforms capable of simultaneous detection and degradation. Herein, we report magnetically recoverable plasmonic Fe3O4/Cu2O-Ag nanocomposites [...] Read more.
The persistent accumulation of tetracycline (TC) antibiotics in aquatic environments poses severe ecological and public health risks, necessitating the development of multifunctional platforms capable of simultaneous detection and degradation. Herein, we report magnetically recoverable plasmonic Fe3O4/Cu2O-Ag nanocomposites (NCs) that integrate visible-light-driven photocatalysis with ultrasensitive surface-enhanced Raman scattering (SERS) detection. Hierarchical flower-like Fe3O4 nanocrystals were employed as magnetic supports, followed by in situ growth of Cu2O nanocrystals and controlled deposition of Ag nanocrystals. The optimized composite (FCA-2) exhibited enhanced visible-light absorption (Eg = 1.86 eV), suppressed electron–hole recombination, and improved photocurrent response, which were attributed to Schottky barrier formation at the Cu2O-Ag interface and localized surface plasmon resonance (LSPR) effects. Under simulated solar irradiation, FCA-2 NCs achieved 91.79% degradation of TC within 60 min, following pseudo-first-order kinetics (k = 20.37 × 10−3 min−1). Finite-difference time-domain (FDTD) simulations revealed that optimal Ag loading maximized plasmonic “hot spot” density, thereby enhancing electromagnetic field intensity and SERS performance. The FCA-2 substrate enabled ultrasensitive TC detection with a limit of detection of as low as 10−10 M. Moreover, the superparamagnetic Fe3O4 core allowed for rapid magnetic separation and sustained performance over multiple SERS–photocatalysis cycles, with negligible signal attenuation after 30 days. This work presents a rational strategy for constructing plasmonic magnetic NCs that synergistically couple photocatalytic remediation, ultrasensitive sensing, and magnetic recyclability, offering significant potential for integrated environmental monitoring and sustainable water treatment applications. Full article
(This article belongs to the Special Issue New Advances into Nanostructured Oxides, 3rd Edition)
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