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Search Results (186)

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Keywords = non-antibiotic contamination

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31 pages, 5672 KB  
Article
Application and Characterization of Fruit Peel-Based Natural Adsorbents for Diclofenac and Amoxicillin Removal from Aqueous Solutions: A “Waste-to-Resource” Approach
by Xanthi Sventzouri, Christina I. Nannou and Athanasia K. Tolkou
AppliedChem 2026, 6(3), 63; https://doi.org/10.3390/appliedchem6030063 - 3 Sep 2026
Viewed by 90
Abstract
Pharmaceutical-contaminated wastewater from medical facilities and households can cause ecological damage. In this study, 100% natural fruit peels, namely lime (LP), orange (OP), kiwi (KP), fig (FP), and pomegranate (PP) peels, were investigated as low-cost adsorbents for the removal of diclofenac (DCF), a [...] Read more.
Pharmaceutical-contaminated wastewater from medical facilities and households can cause ecological damage. In this study, 100% natural fruit peels, namely lime (LP), orange (OP), kiwi (KP), fig (FP), and pomegranate (PP) peels, were investigated as low-cost adsorbents for the removal of diclofenac (DCF), a non-steroidal anti-inflammatory drug (NSAID), and amoxicillin (AMX), an antibiotic, from aqueous solution. The goal of this study was to use food waste as a source for wastewater treatment. According to the results, natural fruit peels were effective for DCF removal (C0 = 100 mg/L), with KP achieving a high removal efficiency (98.9%, 345.18 mg/g) at pH 3.0). The most promising materials (OP, KP, and FP) were further modified using MgO suspension followed by alkaline treatment with NaOH (OP-Mg, KP-Mg, and FP-Mg), resulting in enhanced performance for AMX removal (65.1%, 286.61 mg/g at pH 3.0, C0 = 50 mg/L). The maximum short-term uptake capacity was reached within 15 min, and kinetic and isotherm models were applied to describe the adsorption data. The Langmuir expression gave the better description of the concentration dependence for both pharmaceuticals, at equilibrium for DCF and at a fixed contact time of 15 min for AMX. SEM, FTIR and XRD characterization techniques provided information on the adsorption mechanisms, as well as confirming the successful modification with Μg. In conclusion, the results demonstrate that natural fruit peels were effective in the removal of pharmaceuticals and at the same time offer potential cost and environmental advantages through waste valorization and relatively simple preparation, supporting the principles of the circular economy, through the utilization of food waste as sustainable materials for water treatment. Full article
(This article belongs to the Special Issue Adsorbents: Characterization and Applications)
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28 pages, 444 KB  
Review
Probiotics in Poultry: A Comprehensive Review of Mechanisms, Applications, and Future Directions
by Zhe Jia, Yanfei He, Haijun Xu, Cai Zhang and Shunan Cuan
Vet. Sci. 2026, 13(8), 831; https://doi.org/10.3390/vetsci13080831 - 19 Aug 2026
Viewed by 440
Abstract
Global poultry consumption continues to rise, while worldwide bans on in-feed antibiotic growth promoters raise an urgent requirement for eco-friendly alternatives to guarantee production efficiency and food safety. Probiotics, live beneficial microorganisms that improve host intestinal health, are reviewed. We elaborate four core [...] Read more.
Global poultry consumption continues to rise, while worldwide bans on in-feed antibiotic growth promoters raise an urgent requirement for eco-friendly alternatives to guarantee production efficiency and food safety. Probiotics, live beneficial microorganisms that improve host intestinal health, are reviewed. We elaborate four core functional pathways of probiotics: competitive exclusion of pathogens, enhancement of intestinal barrier integrity, immune modulation and regulation of microbial metabolites such as short-chain fatty acids. Their mitigating effects against heat stress, suboptimal rearing environments, mycotoxin contamination, heavy metal exposure and immune stress are analyzed. We further evaluate the capacity of single and compound probiotics to control major poultry diseases. Early-life intervention strategies and innovative preparations (multistrain probiotics, synbiotics, postbiotics) are systematically summarized. Critical bottlenecks restricting industrial translation are highlighted, including empirical strain combination, non-standardized administration protocols, divergent evaluation indicators and single-factor laboratory challenge models inconsistent with actual farm conditions. Finally, we propose future research directions covering multi-omics-assisted strain screening, optimized delivery technology, unified industrial quality control standards and field verification under compound stress. This review offers integrated references for mechanistic research, strain development and precise industrial application of probiotics in sustainable antibiotic-free poultry breeding. Full article
23 pages, 6063 KB  
Article
Interfacial Electron Transfer-Assisted Activation of Peroxydisulfate by CuO/Biochar for Efficient Ciprofloxacin Degradation: Mechanistic Insights and Application in Permeable Reactive Barriers
by Yingchun Wang, Bang Li, Jie Zhao, Tong Zhou, Xiaoxian Hu, Xiang Guo, Xinyu Li, Shiqiang Yin, Svyatoslav V. Fedorov, Xinhai Zhang and Junfeng Wu
Catalysts 2026, 16(8), 706; https://doi.org/10.3390/catal16080706 - 4 Aug 2026
Viewed by 401
Abstract
The efficient removal of antibiotic contaminants from aquatic systems remains a significant challenge due to their persistence and complex environmental matrices. In this study, a CuO-loaded biochar (CuO–BC) composite was developed as an efficient catalyst for peroxydisulfate (PDS) activation toward ciprofloxacin (CIP) degradation. [...] Read more.
The efficient removal of antibiotic contaminants from aquatic systems remains a significant challenge due to their persistence and complex environmental matrices. In this study, a CuO-loaded biochar (CuO–BC) composite was developed as an efficient catalyst for peroxydisulfate (PDS) activation toward ciprofloxacin (CIP) degradation. The CuO–BC exhibited superior catalytic performance, achieving rapid CIP removal over a wide pH range with strong resistance to coexisting ions. Mechanistic investigations revealed that both radical (SO4 and •OH) and non-radical pathways (1O2 and electron transfer) contributed to CIP degradation. Quenching experiments, electron paramagnetic resonance (EPR), and probe analyses confirmed the coexistence of multiple reactive oxygen species (ROS), with interfacial electron transfer between Cu species and biochar appearing to play a significant role. The synergistic coupling of Cu2+/Cu+ redox cycling and the conductive biochar matrix facilitated efficient electron transport and selective ROS generation. Furthermore, the system was successfully applied in a simulated permeable reactive barrier (PRB), exhibiting stable degradation performance under continuous-flow conditions. This study provides new insights into interfacial PDS activation mechanisms and offers a promising strategy for designing efficient catalytic systems for antibiotic removal in complex water environments. Full article
(This article belongs to the Special Issue Catalysis for Sustainable Environmental Solutions)
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24 pages, 5540 KB  
Article
Comprehensive Characterization of a Novel Broad-Host-Range Lytic Salmonella Phage WP110 and Its Biocontrol Potential Across the Broiler Value Chain
by Wattana Pelyuntha, Wichanan Wannasrichan, Haemarat Khongkhai, David Yembilla Yamik, Mingkwan Yingkajorn, Vincent Guyonnet and Kitiya Vongkamjan
Antibiotics 2026, 15(8), 747; https://doi.org/10.3390/antibiotics15080747 - 31 Jul 2026
Viewed by 474
Abstract
Background/Objectives: Salmonella enterica (S. enterica) is a major poultry-associated foodborne pathogen and a persistent public health concern. The global rise in antimicrobial resistance has accelerated the search for alternative control strategies, including the use of bacteriophages. However, their successful application requires [...] Read more.
Background/Objectives: Salmonella enterica (S. enterica) is a major poultry-associated foodborne pathogen and a persistent public health concern. The global rise in antimicrobial resistance has accelerated the search for alternative control strategies, including the use of bacteriophages. However, their successful application requires a comprehensive evaluation of their biological performance, genomic safety, and functional proteins. This study aimed to characterize Salmonella phage WP110 and assess its potential as a biocontrol agent in broiler-associated production systems. Methods: Phage WP110 was evaluated against 251 S. enterica isolates from broiler-related sources. Adsorption kinetics, one-step growth, environmental stability (temperature and pH), and effective multiplicity of infection (MOI) were determined using Salmonella Kentucky S1H28. Whole-genome sequencing (WGS) and bioinformatic analyses were performed for genome annotation, taxonomic classification, and safety evaluation. In addition, protein structural prediction of a putative endolysin (WP110-gp057) was conducted using AlphaFold2, followed by structural comparison and molecular docking with peptidoglycan. Biocontrol efficacy was evaluated in contaminated rice husk, chicken meat, and on non-food materials. Results: Phage WP110 demonstrated a broad lytic spectrum, lysing 248/251 S. enterica isolates (98.8%). It adsorbed rapidly (within 3–15 min) to host cells and exhibited a latent period of ~20 min with a burst size of 134 particles per infected cell. Phage WP110 remained stable at 4–45 °C and pH 5–11 but was inactivated at ≥75 °C and pH 2. Complete bacterial inactivation in broth assay was achieved at an MOI of 104. Genomic analysis revealed a 110,216 bp linear dsDNA genome (39.74% GC) comprising 204 ORFs, 25 tRNAs, and long direct terminal repeats, with no detectable antibiotic resistance genes. Phylogenetic and intergenomic analyses classified phage WP110 as a novel species within the genus Epseptimavirus. Structural modeling of WP110-gp057 revealed conserved catalytic residues and high structural similarity to T5 endolysin, while docking analysis supported a structurally plausible interaction with peptidoglycan at the predicted active-site groove, consistent with its proposed role in host cell wall degradation. In application models, phage WP110 significantly reduced Salmonella contamination in rice husk (up to 4.3 log CFU/g), chicken meat (up to 1.7 log CFU/g), and on non-food material surfaces (0.7–1.5 log CFU reduction). Conclusions: Phage WP110 is a broad-host-range lytic phage with favorable infection kinetics, environmental robustness, and genomic safety. Its functionally supported endolysin and strong antibacterial efficacy across broiler-associated matrices highlight its potential as a biocontrol agent for Salmonella mitigation in poultry value chain. Full article
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18 pages, 6875 KB  
Article
Adsorption–Catalysis Dual-Function Nitrogen-Doped Carbon/CoFe2O4 Composite for Efficient Tetracycline Removal
by Xuekai Wang, Xiangwu Meng, Mengtian Zhang, Kai Li, Lichun Mao, Lu Zhong and Jianjun Li
Environments 2026, 13(8), 426; https://doi.org/10.3390/environments13080426 - 28 Jul 2026
Viewed by 771
Abstract
Efficient removal of tetracycline (TC) from antibiotic-contaminated wastewater remains a significant challenge. In this study, a nitrogen-doped carbon modified cobalt ferrite (C@CoFe2O4, CF) composite was synthesized via a one-step hydrothermal method, and its adsorption–catalysis dual-function performance was systematically evaluated. [...] Read more.
Efficient removal of tetracycline (TC) from antibiotic-contaminated wastewater remains a significant challenge. In this study, a nitrogen-doped carbon modified cobalt ferrite (C@CoFe2O4, CF) composite was synthesized via a one-step hydrothermal method, and its adsorption–catalysis dual-function performance was systematically evaluated. Structural characterization revealed that CoFe2O4 nanoparticles were locally encapsulated by an N-doped carbonaceous layer, providing a high specific surface area and abundant nitrogen-containing active sites. Under optimized conditions, the CF-3/PMS system achieved 93.44% TC removal within 45 min, while CF-3 exhibited a maximum adsorption capacity of 486.5 mg·g−1. Radical quenching experiments suggested that singlet oxygen (1O2) and superoxide radicals (O2) played major roles in TC oxidation, while sulfate radicals (SO4) and hydroxyl radicals (HO•) also contributed, indicating the coexistence of radical and non-radical oxidation pathways. TC adsorption was driven by surface complexation, π–π electron donor–acceptor interactions, and hydrogen bonding. The enhanced TC removal performance may arise from the cooperative contributions of N-containing carbon sites, accessible Co/Fe-containing regions, and interfacial electronic interactions, which promote TC enrichment and PMS-mediated oxidation. This work provides a promising strategy for designing bifunctional materials for antibiotic wastewater treatment. Full article
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23 pages, 32773 KB  
Article
Novel Antimicrobial Composites Modified with Nanosilver, CuSO4, Benzethonium Chloride, and ZnO
by Karolina Kiełczewska-Klim, Beata Podkościelna, Katarzyna Szałapata, Monika Osińska-Jaroszuk, Vladyslav Vivcharenko and Magdalena Jaszek
Materials 2026, 19(14), 3053; https://doi.org/10.3390/ma19143053 - 15 Jul 2026
Viewed by 343
Abstract
The antibiotic and drug resistance of various bacterial and fungal strains poses a significant challenge to medicine and industry. The subject of numerous studies is how to limit the spread of microorganisms and biofilm formation on various surfaces. This research focuses on the [...] Read more.
The antibiotic and drug resistance of various bacterial and fungal strains poses a significant challenge to medicine and industry. The subject of numerous studies is how to limit the spread of microorganisms and biofilm formation on various surfaces. This research focuses on the antibacterial and antifungal properties of cross-linked methacrylate-based composites for specific applications. These composites were modified using 10 wt.% of compounds with scientifically proven antimicrobial properties. These include nanosilver, copper sulphate, benzethonium chloride, and zinc oxide. The antimicrobial potential against the following bacteria and fungi was determined: Gram-positive bacteria (Staphylococcus aureus); Gram-negative bacteria (Pseudomonas aeruginosa and Escherichia coli); and the pathogenic fungi Candida albicans and Aspergillus niger. Using the modified disc-diffusion method alongside a serial dilution method demonstrated an inhibitory effect on the viability and formation of bacterial and fungal biofilms. It was demonstrated that—in liquid cultures—composites containing benzethonium chloride inhibited the growth of P. aeruginosa by over 75%, more than 50% of E. coli and more than 70% of S. aureus. Growth inhibition of C. albicans exceeded 80% for selected composites (BPA.DM + NVP + CuSO4, BPA.DM + NVP + ZnO), while all composites inhibited the growth of A. niger by more than 45%, and in some cases (BPA.DM + HEMA + CuSO4, BPA.DM + HEMA + Ag, BPA.DM + MMA + Ag and BPA.DM + AEH + CuSO4) by more than 90%. Additionally, these composites significantly reduced biofilm formation on their surfaces. Modification with zinc oxide and benzethonium chloride resulted in materials that were non-toxic to normal human skin fibroblasts. To sum up the obtained results, it can be stated that these multifunctional materials with antibacterial properties could be used in medical devices, coatings, and other specialised applications where microbial contamination is a significant issue. Full article
(This article belongs to the Special Issue Advances in the Synthesis and Properties of Novel Polymer Materials)
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25 pages, 1245 KB  
Review
Pharmaceuticals in Agricultural Soils as Emerging Non-Conventional Agrochemicals: Environmental Fate, Plant Uptake and Food Safety Implications
by Carla Matos, Ana Ferreira Vinha, Carla Guimarães Moutinho, Márcia Carvalho and Carla Sousa
Agrochemicals 2026, 5(3), 32; https://doi.org/10.3390/agrochemicals5030032 - 11 Jul 2026
Viewed by 613
Abstract
Pharmaceutical contamination in agricultural environments has become an increasing concern at the intersection of environmental sustainability, food security, and public health. The growing reuse of reclaimed wastewater (RWW), the application of biosolids, and intensive livestock production practices have contributed to the continuous release [...] Read more.
Pharmaceutical contamination in agricultural environments has become an increasing concern at the intersection of environmental sustainability, food security, and public health. The growing reuse of reclaimed wastewater (RWW), the application of biosolids, and intensive livestock production practices have contributed to the continuous release of pharmaceutically active compounds into agricultural soils worldwide. Although these substances are not intentionally applied in crop production systems, their persistent presence and biological activity have led to their recognition as emerging non-conventional agrochemicals. Once introduced into agroecosystems, pharmaceuticals may undergo sorption, degradation, and transformation, as well as interactions with soil microorganisms, while still remaining potentially available for plant uptake and transfer into the food chain. Various pharmaceutical classes, including antibiotics, anti-inflammatory drugs, antidepressants, antiepileptics, and hormones, have been detected in soils and edible crops at variable concentrations, depending on environmental conditions, soil properties, and plant physiological characteristics. In this context, this narrative review aims to analyze the origin of this contamination in agricultural soils, the physicochemical mechanisms that determine the environmental persistence of pharmaceuticals, as well as their absorption by plants, and the consequent impact on food security and the One Health model. It further proposes pharmaceuticals as a novel class of non-conventional agrochemicals unintentionally entering food production systems and discusses current regulatory challenges, mitigation strategies, and future research priorities needed to support sustainable agricultural management and safer resource reuse practices. Full article
(This article belongs to the Special Issue Feature Reviews in Agrochemicals)
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25 pages, 7307 KB  
Article
Application of Response Surface Methodology, Isotherms, and Kinetics in Metronidazole Removal from Water Using Highly Porous Maize Cob Activated Carbon
by Simon Bbumba, Moses Kigozi, Ibrahim Karume, Joan Talibawo, Muhammad Ntale, Yasin Wandhami Maganda, Billy Garvin Ssemyalo, Beatrice Arwenyo and Prashan M. Rodrigo
Environments 2026, 13(7), 393; https://doi.org/10.3390/environments13070393 - 10 Jul 2026
Viewed by 766
Abstract
The increasing discharge of pharmaceutical contaminants, particularly antibiotics like metronidazole (MNZ), into water systems poses significant ecological and public health risks due to their high solubility and low biodegradability. This study developed and characterized a highly porous activated carbon derived from maize cob [...] Read more.
The increasing discharge of pharmaceutical contaminants, particularly antibiotics like metronidazole (MNZ), into water systems poses significant ecological and public health risks due to their high solubility and low biodegradability. This study developed and characterized a highly porous activated carbon derived from maize cob (MC-AC). The synthesized material was characterized using FTIR, FESEM, PXRD, HRTEM, and BET analysis. Batch adsorption experiments were conducted, and the removal efficiency of MC-AC for MNZ was 98.6%. Optimization and modeling of the process variables of pH (3–11), contact time (0–75 min), concentration (0–70 mg/L), temperature (25–35 °C), and adsorbent dosage (0.5–1.5 g/L) were investigated using the Box–Behnken design (BBD) of response surface methodology, and 29 runs were obtained. The BBD model determined an optimal removal efficiency of 94.6 for metronidazole. Furthermore, non-linearized kinetic and isotherm models were used to determine the adsorption mechanism and mode of metronidazole from water. From the investigation, it was observed that both the Freundlich and pseudo-second-order models exhibited high correlation coefficients. The models with the best performance and low error metrics were determined by R2, MSE, RMSE, SAE, and SSE. Therefore, the adsorption mode was multilayer heterogeneous, and the mechanism was chemisorption. Therefore, this study provides a unique alternative for using the Box–Behnken design, kinetic, and isotherm models to understand the removal of metronidazole from water using maize cob-activated carbon. Full article
(This article belongs to the Section Environmental Pollution, Toxicology and Restoration)
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28 pages, 4202 KB  
Review
Evidence on Vector-Associated Dissemination of Multidrug-Resistant Salmonella in the Philippines Food Supply Chain: A One Health Scoping Review
by Nicolo John L. Bernaldo, Felicity S. Pogenio, Alexa T. Anicete, Justine G. Baje, Sheenah Kate V. Fetalvero, Paul Dexter T. Tiquez, Arnel O. Rendon, Ace Bryan Sotelo Cabal, Huai-Ying Huang, Po-Hua Wu, Kuo-Pin Chuang and Brian Harvey Avanceña Villanueva
Encyclopedia 2026, 6(7), 141; https://doi.org/10.3390/encyclopedia6070141 - 30 Jun 2026
Viewed by 2014
Abstract
This scoping review evaluates the role of vector-associated dissemination in contaminating the Philippine food supply chain with antimicrobial-resistant (AMR) Salmonella, an emerging infectious disease threat, using a One Health perspective to map the mechanisms through which insects and rodents bridge environmental reservoirs [...] Read more.
This scoping review evaluates the role of vector-associated dissemination in contaminating the Philippine food supply chain with antimicrobial-resistant (AMR) Salmonella, an emerging infectious disease threat, using a One Health perspective to map the mechanisms through which insects and rodents bridge environmental reservoirs to human food systems. This scoping review was conducted and reported in accordance with the PRISMA-ScR guidelines. From 1969 records identified through systematic database searches, 52 studies met the inclusion criteria. These comprised 21 primary Philippine studies, 28 non-Philippine studies (including ASEAN-based historical baseline reports), and 3 policy/gray literature studies, prioritized to reflect tropical ecological and agricultural settings. Results suggest that intensive swine and poultry farming may contribute to the emergence of multidrug resistance (MDR) linked to genes such as blaTEM and qnr. Evidence suggests that Salmonella persists in environmental matrices, such as manure and irrigation water, and that synanthropic vectors, including Rattus rattus and various fly species, potentially serve as biological and mechanical bridges in transmission. Clinical data reveal an alarming trend toward invasive non-typhoidal salmonellosis (iNTS) showing reduced susceptibility to cephalosporins and fluoroquinolones. Despite these findings, major evidence gaps remain, particularly regarding the prevalence of vector-borne Salmonella in pre-harvest produce. Consequently, mitigation requires a One Health framework that integrates non-antibiotic interventions, pest management to disrupt transmission pathways, and rapid diagnostic tools, such as loop-mediated isothermal amplification (LAMP), to enhance market surveillance. Full article
(This article belongs to the Collection Encyclopedia of One Health)
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24 pages, 6713 KB  
Article
Environmental and Human Health Risk Assessment of Pharmaceutical Pollutants Detected in the Sand River in Polokwane, South Africa
by Jean Sagwati Mdumela, Tsolanku Sidney Maliehe, Yannick Nuapia, Marks Matee Sebaiwa and Tlou Nelson Selepe
Safety 2026, 12(3), 78; https://doi.org/10.3390/safety12030078 - 3 Jun 2026
Viewed by 936
Abstract
Pharmaceutical and microbial pollution in urban rivers is an emerging concern, particularly in developing regions with limited wastewater treatment capacity, posing risks to human health and ecosystems. This study evaluated the risk profiles of selected pharmaceutical compounds and bacterial indicators in the Sand [...] Read more.
Pharmaceutical and microbial pollution in urban rivers is an emerging concern, particularly in developing regions with limited wastewater treatment capacity, posing risks to human health and ecosystems. This study evaluated the risk profiles of selected pharmaceutical compounds and bacterial indicators in the Sand River, South Africa, and computed their ecological risks, antimicrobial resistance (AMR), and human health risk assessment. Surface water samples were collected from three sites during the wet season and analyzed for target antibiotics and non-steroidal anti-inflammatory drugs (NSAIDs) using High-Performance Liquid Chromatography (HPLC) with a photodiode array (PDA) detector, while total coliforms (TCs) and Escherichia coli (E. coli) were enumerated using the Colilert system. Ciprofloxacin, sulfamethoxazole, and erythromycin were the most abundant pharmaceuticals, with maximum concentrations of 2.50 µg/L, 2.76 µg/L, and 2.53 µg/L, respectively. TC and E. coli levels exceeded regulatory thresholds, indicating severe microbial contamination. Risk quotient analysis identified ciprofloxacin, erythromycin, and trimethoprim as high-risk compounds for potential resistance selection (RQ ≥ 1), while ciprofloxacin and erythromycin posed significant ecological risks to fish. Although non-carcinogenic health risk assessment remained below concern (HI < 1), children showed higher exposure levels. These findings underscore the urgent need for improved pharmaceutical waste management and wastewater treatment infrastructure. Full article
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19 pages, 17539 KB  
Article
Degradation of Sulfamethoxazole in Soil by Peroxydisulfate Activated with Biochar-Supported Sulfidated Nanoscale Zero-Valent Iron: Effect of Soil Organic Matter
by Zexu Zhang, Guangyu Li, Yuxin Lan, Qingrui Liu, Jie Ju, Jinan Bai, Zhihui Kang and Weijian Liu
Water 2026, 18(10), 1234; https://doi.org/10.3390/w18101234 - 20 May 2026
Viewed by 556
Abstract
To improve the removal efficiency of sulfamethoxazole (SMX) in soil and to elucidate the role of soil organic matter (SOM) in peroxydisulfate (PDS)-based in situ chemical oxidation, a biochar-supported sulfidated nanoscale zero-valent iron (BC@S-nZVI)-activated PDS system was constructed in this study. The removal [...] Read more.
To improve the removal efficiency of sulfamethoxazole (SMX) in soil and to elucidate the role of soil organic matter (SOM) in peroxydisulfate (PDS)-based in situ chemical oxidation, a biochar-supported sulfidated nanoscale zero-valent iron (BC@S-nZVI)-activated PDS system was constructed in this study. The removal behavior and removal mechanisms of SMX were systematically compared between aqueous and soil systems, and the regulatory role of SOM was further clarified. Characterization results showed that BC@S-nZVI was successfully constructed with a composite interface consisting of a biochar support framework, an Fe0 core, and surface Fe-S structures. Under the optimized conditions, the BC@S-nZVI/PDS system achieved 92.9% removal of SMX within 120 min in the aqueous system, which was significantly higher than that of the nZVI/PDS and BC/PDS systems. In the soil system, the removal efficiency of SMX reached 74.4% within 120 min, and further increased to 91.3% after targeted removal of SOM. Results from radical quenching experiments, electron paramagnetic resonance (EPR) spectroscopy, and chemical probe tests demonstrated that OH and SO4•− were the dominant reactive species driving SMX degradation in the aqueous system, while 1O2 played an auxiliary role. In contrast, in the soil system, SOM, acting as a natural reductive component, competitively consumed OH and SO4•−, thereby markedly suppressing the radical oxidation pathway. Compared with these radical species, 1O2 exhibited stronger resistance to background interference and became the key reactive species responsible for the sustained transformation of SMX in soil. These findings demonstrate that the BC@S-nZVI/PDS system has considerable potential for the remediation of antibiotic-contaminated soils and reveal a mechanistic shift from radical-dominated to non-radical-dominated pathways under the interference of soil organic components. Full article
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23 pages, 1614 KB  
Article
Characteristics of Serratia rubidaea Clinical Strain Revealed Multiple Resistance to Antibiotics and Disinfectants
by Anfisa Kozyreva, Anna Akhmetzyanova, Alexey Kovalenko, Ivan Chudinov, Irina Rog, Elena Korneenko, Anastasia Vakaryuk, Veronica Gremyacheva, Ivan Butenko and Vadim Govorun
Microorganisms 2026, 14(5), 988; https://doi.org/10.3390/microorganisms14050988 - 28 Apr 2026
Viewed by 657
Abstract
A clinical strain of the opportunistic pathogen Serratia rubidaea, a known contaminant of healthcare environments and an emerging cause of invasive infections, is described. The studied isolate, recovered from a nurse’s hand skin swab during routine screening, exhibits a broad profile of [...] Read more.
A clinical strain of the opportunistic pathogen Serratia rubidaea, a known contaminant of healthcare environments and an emerging cause of invasive infections, is described. The studied isolate, recovered from a nurse’s hand skin swab during routine screening, exhibits a broad profile of antibiotic resistance combined with reduced susceptibility to several disinfectants. Phenotypic susceptibility testing using a tablet-based microdilution and disk diffusion method was employed to determine the minimum inhibitory concentrations (MICs) of antimicrobial agents from different classes, while broth microdilution assays with disinfectants revealed high-level tolerance to widely used agents, including 70% C2H5OH, 3% H2O2, 0.05% polyhexamethylene guanidine (PHMG) and others. Whole-genome sequencing identified multiple resistance-associated determinants, such as chromosome-encoded class C β-lactamase (ampC), several efflux systems (sdeXY, macAB, and emrAB) combined with multicopy tolC, and specific transferases (fos and arnT). Shotgun bottom-up HPLC-MS/MS proteomics confirmed baseline expression of these and other stress-tolerance-related proteins under non-inducing conditions. Taken together, these data underscore the importance of surveillance for Serratia spp. in healthcare facilities to detect strains that combine intrinsic or acquired multidrug resistance with robust survival traits such as disinfectant tolerance and biofilm formation. The present study provides a reference-level phenotypic, genomic, and proteomic characterization of a S. rubidaea clinical isolate, contributing to the understanding of the adaptive potential of this resilient opportunistic pathogen in clinical environments. Full article
(This article belongs to the Special Issue Antimicrobial Resistance (AMR): From the Environment to Health)
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50 pages, 6725 KB  
Review
Advances in Hybrid Photo-Fenton Processes for Treating Pharmaceutical Contaminants in Water and Wastewater Systems
by Enric Brillas and Juan M. Peralta-Hernández
Water 2026, 18(8), 920; https://doi.org/10.3390/w18080920 - 13 Apr 2026
Cited by 3 | Viewed by 1239
Abstract
Advanced oxidation processes based on photo-Fenton chemistry have gained increasing attention as effective treatment alternatives for the removal of pharmaceutical contaminants from water and wastewater systems. However, large-scale implementation remains constrained by operational requirements, limited mineralization efficiency, and challenges associated with process stability [...] Read more.
Advanced oxidation processes based on photo-Fenton chemistry have gained increasing attention as effective treatment alternatives for the removal of pharmaceutical contaminants from water and wastewater systems. However, large-scale implementation remains constrained by operational requirements, limited mineralization efficiency, and challenges associated with process stability and selectivity. This review provides a critical assessment of recent advances (2022–2025) in conventional photo-Fenton and hybrid systems, including photocatalysis/photo-Fenton and sono-photo-Fenton processes, with emphasis on their performance in water and wastewater treatment applications. The removal of non-steroidal anti-inflammatory drugs, antibiotics, pharmaceutical mixtures, and real wastewater matrices is analyzed considering catalyst configuration, irradiation sources, oxidant utilization, and operating conditions relevant to practical treatment scenarios. Conventional homogeneous Fe2+/H2O2 systems enable rapid contaminant degradation but typically require acidic conditions and show limited mineralization efficiency. In contrast, iron-complexed and heterogeneous catalysts allow operation under near-neutral pH and visible-light irradiation, improving applicability in realistic water treatment systems. Hybrid photocatalysis/photo-Fenton processes enhance treatment efficiency through synergistic generation of reactive oxygen species, while ultrasound-assisted systems further intensify oxidation rates and contaminant removal. Special attention is given to oxidation mechanisms, catalyst stability, transformation products, and toxicity evolution to identify the key factors controlling treatment performance. Finally, current technological limitations, operational challenges, and design considerations for process integration, scale-up, and sustainable implementation in water and wastewater treatment are discussed. Full article
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23 pages, 2098 KB  
Article
Non-Targeted and Targeted Screening of Organic Contaminants in Honeybees’ Death Incidents in Greece: A Story Beyond Pesticides
by Eirini Baira, Evangelia N. Tzanetou, Electra Manea-Karga, Kyriaki Machera and Konstantinos M. Kasiotis
J. Xenobiotics 2026, 16(2), 64; https://doi.org/10.3390/jox16020064 - 8 Apr 2026
Viewed by 826
Abstract
Despite the undisputable ecosystem importance of honeybees, human activities have a substantial impact on their health. Since foraging is directly linked to a wide range of crops and bee-attracting flowers, plant protection products are at the forefront of chemical scrutiny, along with contamination [...] Read more.
Despite the undisputable ecosystem importance of honeybees, human activities have a substantial impact on their health. Since foraging is directly linked to a wide range of crops and bee-attracting flowers, plant protection products are at the forefront of chemical scrutiny, along with contamination of pollen, nectar, beehive components and water by other xenobiotics. In this study, a non-targeted Liquid Chromatography-High-Resolution Mass Spectrometry (LC-HRMS) screening was applied to 25 honeybee samples collected after reported death incidents in Greece. This approach led to the tentative annotation of over 50 compounds across various chemical classes, including pesticides, PFAS candidates not included in the EFSA “PFAS-4”, pharmaceuticals, antibiotics, industrial chemicals, and natural product constituents. In parallel, targeted pesticide residue analysis using liquid and gas chromatography coupled to tandem mass spectrometry (LC-MS/MS and GC-MS/MS) was performed, covering more than 250 active substances and providing direct quantitative results, revealing 11 active substances in concentrations ranging from <limit of quantification (LOQ) to 0.95 mg/kg, overlapping substantially with the HRMS detection. Overall, this study does not allow concrete causal attribution of mortality to specific chemicals; however, it documents complex co-occurrence patterns (pesticides together with other xenobiotics and plant bioactives), not excluding sublethal and mixture-toxicity effects. Quantified pesticide concentrations were below acute LD50-based thresholds, yet selected samples combined neonicotinoid/pyrethroid/fungicide signatures and other contaminants, supporting the need for mixture-toxicity frameworks and effect-based follow-ups. Full article
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26 pages, 3042 KB  
Article
Mechanistic DFT Insights into Mn-Porphyrin Quantum Catalysts for Peroxymonosulfate-Driven Degradation of Sulfamethoxazole in Water
by Mohammad Oves
Catalysts 2026, 16(4), 298; https://doi.org/10.3390/catal16040298 - 31 Mar 2026
Viewed by 1263
Abstract
Emerging pharmaceutical contaminants, including sulfonamide antibiotics such as sulfamethoxazole (SMX), persist in natural water bodies at ng L−1 to µg L−1 concentrations and are inadequately removed by conventional wastewater treatment technologies, posing significant ecological and public health risks. Porphyrin-based quantum catalysts [...] Read more.
Emerging pharmaceutical contaminants, including sulfonamide antibiotics such as sulfamethoxazole (SMX), persist in natural water bodies at ng L−1 to µg L−1 concentrations and are inadequately removed by conventional wastewater treatment technologies, posing significant ecological and public health risks. Porphyrin-based quantum catalysts activated by peroxymonosulfate (PMS) represent a promising advanced oxidation strategy for the remediation of such recalcitrant micro-pollutants. However, the precise molecular mechanisms governing their catalytic activity remain incompletely understood. In this study, we present a comprehensive mechanistic investigation of SMX oxidation catalyzed by Mn (III) meso-tetraphenylporphyrin (Mn-TPP) in the presence of PMS, employing spin-unrestricted density functional theory (DFT) at the Becke, 3-parameter, Lee–Yang–Parr (B3LYP-D3BJ) level of theory with dispersion corrections. Full Gibbs free energy profiles for the catalytic cycle were constructed through geometry optimizations using the LACVP basis set on Mn and 6-31G(d,p) on all non-metal atoms, followed by single-point energy calculation at the 6-311+G(d,p) level, incorporating the SMD implicit solvation model to stimulate aqueous environment conditions. The results demonstrate that the oxidation of Mn TPP by PMS to generate the key high-valent intermediate Mn(V)=O(TPP)+ is thermodynamically and kinetically favorable. The activation barrier for Mn(V)=O(TPP)+ formation via PMS activation is ΔG† = 17.2 kcal mol−1 (SMD water, 298 K), confirming that this step is kinetically accessible under ambient environmental conditions. Subsequent SMX oxidation processes proceed via concerted radical and non-radical mechanistic pathways, with the most thermodynamically favorable route exhibiting a strongly exergonic reaction-free energy (ΔGr), indicating that significant mineralization of the target pollutant is thermodynamically accessible. The transition state analysis reveals spin density localization characteristic of the Mn-Oxo species, establishing a direct correlation between quantum confinement effects, electronic structure and the observed catalytic selectivity and oxidation stability of the Mn-TPP system. These mechanistic insights provide quantitative molecular-level design parameters, including activation barriers, spin state requirements, and electronic structure descriptors for the rational optimization of next-generation porphyrin-based quantum catalysts capable of efficiently degrading persistent pharmaceutical contaminants in complex aqueous matrices. Full article
(This article belongs to the Special Issue Novel Catalytic Techniques for Reducing Organic Pollutants)
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