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25 pages, 5971 KB  
Article
Blue Light Pollution and Ocular Surface Toxicity: p53-Mediated Ferroptosis in Corneal Epithelium Drives Dry Eye Pathogenesis
by Lingyu Zhang, Yiwen Qian, Jun Jin, Yu Zhang, Zhiliang Wang and Qingjian Li
Antioxidants 2026, 15(8), 1014; https://doi.org/10.3390/antiox15081014 - 14 Aug 2026
Viewed by 214
Abstract
Purpose: This study investigated the molecular mechanisms underlying blue light-induced corneal epithelial toxicity. Methods: C57BL/6J mice were exposed to 460 nm blue light for 1, 2, or 4 weeks, whereas human corneal epithelial (HCE) cells were exposed for 15 or 30 min. RNA-sequencing [...] Read more.
Purpose: This study investigated the molecular mechanisms underlying blue light-induced corneal epithelial toxicity. Methods: C57BL/6J mice were exposed to 460 nm blue light for 1, 2, or 4 weeks, whereas human corneal epithelial (HCE) cells were exposed for 15 or 30 min. RNA-sequencing with bioinformatic analysis identified p53 signaling and ferroptosis as key pathways. p53 knockdown using siRNA and pharmacological inhibition with pifithrin-α (PFT-α) were employed to validate the mechanism in vitro and in vivo. Results: Blue light exposure caused time-dependent corneal epithelial disruption, reduced tear film stability, increased inflammatory cell infiltration, downregulated K12 expression, and upregulated K10 expression. Blue light induced cell death and G1-phase cell-cycle arrest in HCE cells. Ferroptosis hallmarks included intracellular ferrous iron (Fe2+) accumulation, reactive oxygen species (ROS) generation, decreased SLC7A11 and GPX4 expression, and increased COX2 expression. RNA sequencing revealed p53 pathway activation as a master regulator of ferroptosis. p53 knockdown reversed blue light-induced SLC7A11/GPX4 suppression and COX2 upregulation. Topical PFT-α administration attenuated corneal epithelial damage, restored K12 expression, suppressed K10 expression, and normalized ferroptosis markers in vivo. Conclusions: Blue light pollution triggers corneal epithelial ferroptosis through p53-mediated SLC7A11/GPX4 axis suppression. Pharmacological inhibition of p53 represents a promising therapeutic strategy for blue light-associated dry eye. Full article
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15 pages, 6136 KB  
Article
Comparative Study on Ozone-Based Advanced Oxidation Processes for Printing and Dyeing Wastewater Treatment
by Jin Xu, Xiuwen Qian, Juan Huang and Ligang Xu
Water 2026, 18(16), 1962; https://doi.org/10.3390/w18161962 - 11 Aug 2026
Viewed by 284
Abstract
Widespread application of dyes has led to severe threats to water environments, and advanced oxidation processes (AOPs) have been confirmed as an effective solution to dye degradation. Among them, ozonation was one of the most prevalent AOPs. In this study, the effects of [...] Read more.
Widespread application of dyes has led to severe threats to water environments, and advanced oxidation processes (AOPs) have been confirmed as an effective solution to dye degradation. Among them, ozonation was one of the most prevalent AOPs. In this study, the effects of using AOPs—mainly based on ozone (O3)—to treat printing and dyeing wastewater (PDW) were compared. Firstly, ozone carrier active carbon fiber (ACF) was investigated for adsorption performance evaluation on pretreatment. The results showed that ACF treated by ultrasound performed best compared with ACF treated with other four pretreatment methods. Secondly, comparative studies based on individual O3, ultraviolet (UV), and combined O3/UV processes on PDW under different pH conditions were conducted. The decolorization rate of reactive brilliant blue X-BR dye under acidic conditions was higher than in alkaline and neutral dyes. In addition, with the utilization of single ozone and O3/UV under pH = 4 conditions, the decolorization rate could be above 99%. However, individual UV caused few variations in wastewater chromaticity. Thirdly, the effects of pH, UV light intensity, hydraulic retention time (HRT), and ACF filling rate on the performance of the O3/UV/ACF system were preliminarily screened using a saturated L9 orthogonal design. In terms of the results, the performance of the constructed O3/UV/ACF AOP system was superior than the conventional oxidation method, in which HRT had the largest apparent main effect on decolorization, followed by pH, ACF filling rate, and UV light intensity. Among the factor levels examined, the best-performing combination was pH 4, a UV power of 48 W, an HRT of 3 h, and an ACF filling rate of 80%. In a subsequent single kinetic experiment conducted using this combination, the final decolorization efficiency was 92.14%, the COD removal was 60%, and the biodegradability increased by 63.08%. This study offered novel insights into an O3-based AOP system for improving PDW treatment. Full article
(This article belongs to the Special Issue Advanced Oxidation Technologies for Water and Wastewater Treatment)
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18 pages, 1668 KB  
Article
Heat-Treated Lacticaseibacillus rhamnosus Skinbac™ SB06 Modulates Axillary Malodor-Associated Bacteria In Vitro and Demonstrates Antiperspirant and Deodorant Efficacy In Vivo
by Giovanni Deusebio, Annalisa Visciglia, Angela Amoruso and Marco Pane
Cosmetics 2026, 13(4), 178; https://doi.org/10.3390/cosmetics13040178 - 10 Jul 2026
Viewed by 1096
Abstract
Background: The axillary microbiome is a major contributor to body malodor generation through bacterial metabolism of apocrine and eccrine secretions. Dysbiosis of this microbial community, particularly through overgrowth of odorigenic species such as Staphylococcus aureus, is associated with increased volatile compound [...] Read more.
Background: The axillary microbiome is a major contributor to body malodor generation through bacterial metabolism of apocrine and eccrine secretions. Dysbiosis of this microbial community, particularly through overgrowth of odorigenic species such as Staphylococcus aureus, is associated with increased volatile compound production and local skin inflammation. Heat-treated postbiotics represent a promising class of cosmetic ingredients combining microbiological safety with retained bioactive properties. Objective: We aimed to evaluate the in vitro safety, molecular mechanisms, antipathogen and anti-inflammatory properties of heat-treated Lacticaseibacillus rhamnosus Skinbac™ SB06, and to assess the antiperspirant and deodorant efficacy of a deodorant spray formulation containing 1% SB06 in a controlled clinical study. Methods: In vitro studies assessed cytotoxicity (MTT/LDH assays), Aquaporin-3 (AQP3) expression, reactive oxygen species (ROS) production, antipathogen activity against Staphylococcus aureus (AlamarBlue assay), cytokine modulation (TNF-α, IL-6, IL-8, IL-23) in Normal Human Epidermal Keratinocytes (NHEK) and Peripheral Blood Mononuclear Cells (PBMCs), and axillary microbiome compatibility against Corynebacterium striatum, Staphylococcus epidermidis, and Staphylococcus hominis by viable plate count (CFU/mL). Clinically, a randomized split-body study (n = 20) evaluated antiperspirant effectiveness by gravimetric sweat collection and deodorant efficacy by expert olfactory panel (Likert 1–5) at 24 and 48 h. Results: In vitro testing confirmed the safety of SB06 (MTT and LDH, both non-significant vs. control). SB06 significantly increased AQP3 expression (+20%, p < 0.001) and significantly reduced ROS production (−48%, p < 0.05). Antipathogen testing showed significant reduction in S. aureus planktonic viability (−7%, p < 0.05). Microbiome compatibility testing on selected axillary-associated strains showed a differential compatibility profile, with the strongest inhibitory effect observed for C. striatum (13% residual viability at T24h, corresponding to 87% inhibition), near-complete preservation of S. epidermidis (92% residual viability at T48h), and a mild reduction in S. hominis (−15% at T48h). Cytokine modulation showed significant IL-8 and IL-23 reduction in NHEK (both p ≤ 0.05) and immunostimulatory activity in PBMCs. Clinically, SB06 reduced sweat production vs. placebo by −21.8% at T24 (p = 0.0009) and −10.0% at T48 (p = 0.0495), with significantly lower odor intensity at both timepoints (median score 3 vs. 4, p < 0.0001). Conclusions: Heat-treated L. rhamnosus SB06 showed a multimodal in vitro profile including antipathogen, anti-inflammatory, antioxidant, and AQP3-upregulating activities, and was associated with statistically significant antiperspirant and deodorant effects in a randomized controlled split-body study. These findings are consistent with SB06 being a functional postbiotic ingredient with potential for deodorant and antiperspirant applications, pending confirmation in larger controlled studies. Full article
(This article belongs to the Section Cosmetic Technology)
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9 pages, 1242 KB  
Communication
Covalent Organic Cage Directs EDA Complex Reactivity in Tetralone Synthesis
by Cheng Wang, Guohua Liu and Chunxia Tan
Chemistry 2026, 8(6), 74; https://doi.org/10.3390/chemistry8060074 - 1 Jun 2026
Viewed by 374
Abstract
Photocycloaddition reactions provide an efficient strategy for converting alkenes into structurally complex and high-value molecules that are often difficult to access under conventional thermal conditions. Herein, two readily accessible triarylamine-based imine molecular cages possessing distinct cavity environments were investigated as supramolecular photocatalysts for [...] Read more.
Photocycloaddition reactions provide an efficient strategy for converting alkenes into structurally complex and high-value molecules that are often difficult to access under conventional thermal conditions. Herein, two readily accessible triarylamine-based imine molecular cages possessing distinct cavity environments were investigated as supramolecular photocatalysts for reactions of pyridinium-masked enol (PME) substrates with unactivated alkenes. Spectroscopic studies are consistent with the formation of electron donor–acceptor (EDA) interactions between the electron-rich cage frameworks and electron-deficient PME substrates. Upon blue-light irradiation (450 nm), these charge-transfer assemblies undergo photoinduced activation, likely involving single-electron transfer, N–O bond cleavage, and subsequent radical generation. The resulting radical intermediates participate in formal [4 + 2] cycloaddition reactions to afford tetralone derivatives under metal-free conditions. Comparative studies revealed that the two cages produce distinct product distributions and selectivities, suggesting that subtle variations in cage architecture and confined supramolecular environments influence the fate of reactive radical intermediates and the balance between productive cyclization and competing side pathways. While the detailed mechanistic origin of these effects remains unresolved, this work demonstrates the potential of covalent organic cages as structurally tunable platforms for modulating EDA-mediated photochemical reactivity and radical selectivity. Full article
(This article belongs to the Section Supramolecular Chemistry)
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13 pages, 1109 KB  
Article
Association Between Oxidative Stress Biomarkers and Sperm DNA Damage in Idiopathic and Unexplained Male Infertility
by Kenza Berrada, Asmaa Serbouti, Abderrahmane Sadek, Yasmine Touhamia, Mohieddine Moumni, Noureddine Louanjli and Rachid Aboutaieb
Biology 2026, 15(10), 802; https://doi.org/10.3390/biology15100802 - 19 May 2026
Viewed by 1829
Abstract
(1) Background: Oxidative stress (OS) has been extensively associated with male infertility, contributing to its pathophysiology in approximately 30–80% of affected individuals. Excessive reactive oxygen species (ROS) levels trigger a cascade of interconnected processes, including lipid peroxidation, DNA damage, and mitochondrial dysfunction, ultimately [...] Read more.
(1) Background: Oxidative stress (OS) has been extensively associated with male infertility, contributing to its pathophysiology in approximately 30–80% of affected individuals. Excessive reactive oxygen species (ROS) levels trigger a cascade of interconnected processes, including lipid peroxidation, DNA damage, and mitochondrial dysfunction, ultimately impairing sperm quality. (2) Methods: The present study was designed to examine the relationship between seminal oxidative stress biomarkers such as superoxide dismutase (SOD), catalase (CAT), and malondialdehyde (MDA) and sperm DNA integrity in men with unexplained (UMI) and idiopathic (IMI) male infertility. The study population comprised 235 participants, who were divided into three groups: fertile controls (n = 78), UMI (n = 88), and IMI (n = 69). Semen analysis was performed according to WHO criteria. Sperm DNA fragmentation index (DFI) was assessed using the TUNEL assay, while sperm decondensation index (SDI) was evaluated by aniline blue staining. Seminal OS biomarkers were measured in seminal plasma using spectrophotometric methods. (3) Results: DFI and SDI were significantly increased in infertile groups compared with fertile controls (p < 0.001), exceeding the clinical thresholds of 30% and 15%, respectively. Antioxidant enzyme activities (SOD and CAT) were significantly reduced, whereas MDA levels were significantly elevated, particularly in the IMI group (p < 0.001). Correlation analysis revealed strong positive associations between MDA and both DFI (r = 0.76, p < 0.001) and SDI (r = 0.80, p < 0.001). Additionally, MDA, DFI, and SDI were negatively correlated with semen parameters, whereas SOD and CAT were positively correlated with sperm quality (p < 0.001). (4) Conclusions: Our findings emphasize the critical role of oxidative stress and sperm DNA integrity as potential biomarkers for the diagnosis and evaluation of UMI and IMI. Full article
(This article belongs to the Section Developmental and Reproductive Biology)
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17 pages, 3534 KB  
Article
Antifouling Polysulfone/Multi-Walled Carbon Nanotube/Terbium Oxide Nanocomposite Nanofiltration Membrane for Dye Removal Applications
by Abeer M. Alosaimi
Polymers 2026, 18(10), 1165; https://doi.org/10.3390/polym18101165 - 9 May 2026
Viewed by 898
Abstract
Polysulfone (PSF) nanofiltration membranes incorporating oxidized multi-walled carbon nanotubes (o–MWCNTs) and terbium oxide (Tb2O3) nanoparticles were fabricated via the non-solvent-induced phase inversion technique. The effect of Tb2O3 loading (0, 1, 3, and 5% w/w [...] Read more.
Polysulfone (PSF) nanofiltration membranes incorporating oxidized multi-walled carbon nanotubes (o–MWCNTs) and terbium oxide (Tb2O3) nanoparticles were fabricated via the non-solvent-induced phase inversion technique. The effect of Tb2O3 loading (0, 1, 3, and 5% w/w) on membrane morphology, hydrophilicity, water permeability, dye rejection, and antibiofouling performance was systematically investigated. Membrane structure was characterized by FTIR spectroscopy, SEM, EDX, XRD, and water contact angle measurements. The results confirmed the successful incorporation of Tb2O3 within the membrane matrix, and morphological analysis revealed a relatively dense membrane structure without macrovoid formation. Filtration experiments conducted in a dead-end cell under pressures of 1–4 bar demonstrated a maximum water flux of 53 L m−2 h−1, with dye rejection exceeding 99.9% for both methylene blue (MB) and Congo red (CR) at 4 bar. Antibiofouling performance, evaluated by colony-forming unit analysis, revealed bacterial growth reductions of 59% against Gram-negative Escherichia coli and 89% against Gram-positive Candida albicans, attributed to the dark-active generation of reactive oxygen species by Tb2O3, eliminating the need for UV irradiation. These results demonstrate that the synergistic integration of o–MWCNTs and Tb2O3 effectively addresses the permeability-selectivity trade-off and mitigates biofouling limitations associated with pristine PSF membranes, thereby offering a promising multifunctional platform for sustainable industrial wastewater treatment. Full article
(This article belongs to the Special Issue Advanced Polymeric Materials for Water Purification)
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14 pages, 2809 KB  
Article
Flower-like CoFe-LDH Activated Peroxymonosulfate for Tetracycline Degradation: Efficiency and Mechanism
by Yiting Luo, Yihui Zhou, Tao Xu, Rongkui Su, Xiancheng Ma and Wende Yan
Toxics 2026, 14(5), 389; https://doi.org/10.3390/toxics14050389 - 30 Apr 2026
Cited by 1 | Viewed by 1766
Abstract
The overuse of antibiotics has led to their widespread environmental residues, posing a significant threat to the ecological environment. In this study, a flower-like spherical CoFe-layered double hydroxide (CoFe-LDH) catalyst was prepared using a hydrothermal method. The degradation performance of the CoFe-LDH/peroxymonosulfate (PMS) [...] Read more.
The overuse of antibiotics has led to their widespread environmental residues, posing a significant threat to the ecological environment. In this study, a flower-like spherical CoFe-layered double hydroxide (CoFe-LDH) catalyst was prepared using a hydrothermal method. The degradation performance of the CoFe-LDH/peroxymonosulfate (PMS) system was systematically investigated using tetracycline (TC) as a model pollutant. The CoFe-LDH exhibited a three-dimensional nanoflower-like spherical structure formed by interlaced nanosheets, featuring smooth surfaces and well-defined edges. This hierarchical porous structure facilitates the exposure of active sites. The CoFe-LDH/PMS system demonstrated remarkable degradation efficiency, achieving over 90.17% TC removal within 10 min. As the dosage of CoFe-LDH and PMS increases, the degradation rate of TC improves significantly, but the marginal improvement effect decreases. TC degradation efficiency increased with pH up to an optimum at pH 5.0, beyond which it declined. The anions—Cl, NO3, and SO42—all exhibited inhibitory effects on TC degradation; the TC removal rates decreased to 77.88%, 80.58%, and 82.78%, respectively. The removal experiments of different organic pollutants, such as oxytetracycline (88.91%), methylene blue (98.36%), and ciprofloxacin (84.52%), as well as actual water experiments, such as lake water (92.48%) and tap water (80.86%), have demonstrated the good universality of the CoFe-LDH/PMS system. Radical quenching experiments confirmed that OH and SO4 were the dominant reactive species. Full article
(This article belongs to the Section Toxicity Reduction and Environmental Remediation)
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12 pages, 1666 KB  
Article
Solar-Activated Persulfate Oxidation Process in Treatment of Dye Solutions
by Coşku Barışsever, Saltuk Pirgalıoğlu and Şifa Doğan
Appl. Sci. 2026, 16(7), 3373; https://doi.org/10.3390/app16073373 - 31 Mar 2026
Viewed by 451
Abstract
In this study, sodium persulfate was used to oxidize Reactive Black 5 (RB5), an azo dye commonly used in the textile industry, and Reactive Blue 4 (RB4), an anthraquinone dye. Persulfate was activated using Fe(II) and natural solar irradiation to generate sulfate radicals [...] Read more.
In this study, sodium persulfate was used to oxidize Reactive Black 5 (RB5), an azo dye commonly used in the textile industry, and Reactive Blue 4 (RB4), an anthraquinone dye. Persulfate was activated using Fe(II) and natural solar irradiation to generate sulfate radicals (SO4•−), which possess a high redox potential and effectively oxidize organic pollutants in wastewater. Batch experiments demonstrated that the combined use of Fe(II) and solar-activated persulfate achieves up to 99% dye removal. The influence of natural solar irradiation was evaluated under outdoor conditions for both dye solutions, confirming the effectiveness of solar-activated persulfate oxidation. Mineralization was monitored via total organic carbon (TOC) analysis, with up to 97% dissolved organic carbon removal observed at the highest persulfate dosage for RB5. Two activation pathways were examined, and the results indicate that solar activation is a sustainable approach to minimizing energy and chemical consumption. This study also demonstrates the solar activation potential of the Lefke region in Northern Cyprus for advanced oxidation processes. Full article
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1 pages, 124 KB  
Correction
Correction: Shahid et al. Copper-Treated Environmentally Friendly Antipathogenic Cotton Fabric with Modified Reactive Blue 4 Dye to Improve Its Antibacterial and Aesthetic Properties. Coatings 2023, 13, 133
by Muhammad Shahid, Azam Ali, Nageena Zahid, Muhammad Shahzad Anjam, Jiri Militky, Jakub Wiener, Sundaramoorthy Palanisamy and Blanka Tomkova
Coatings 2026, 16(2), 224; https://doi.org/10.3390/coatings16020224 - 10 Feb 2026
Viewed by 403
Abstract
In the original publication [...] Full article
14 pages, 1734 KB  
Article
Biodecolorization of Textile Azo Dyes and Phytotoxicity Assessment of Metabolites by Bacillus subtilis CKCC
by Chanchao Chem, Sarawut Cheunkar, Prattana Ketbot, Sirilak Baramee, Apinya Singkhala, Rattiya Waeonukul, Patthra Pason, Khanok Ratanakhanokchai and Chakrit Tachaapaikoon
Processes 2026, 14(3), 570; https://doi.org/10.3390/pr14030570 - 6 Feb 2026
Viewed by 1272
Abstract
Synthetic azo dyes are widely used in the textile industry; however, their use often poses environmental challenges. Here, we characterized the compost bacterium Bacillus subtilis strain CKCC for the decolorization of various azo dyes, including Congo Red, Reactive Black 5, Reactive Green 19, [...] Read more.
Synthetic azo dyes are widely used in the textile industry; however, their use often poses environmental challenges. Here, we characterized the compost bacterium Bacillus subtilis strain CKCC for the decolorization of various azo dyes, including Congo Red, Reactive Black 5, Reactive Green 19, Reactive Red 120, and Reactive Blue 4. The application of strain CKCC exhibited high decolorization efficiency by utilizing various extracellular enzymes, including azoreductase and ligninolytic enzymes such as laccase, lignin peroxidase, and manganese peroxidase, which are essential for the decolorization of azo dyes. Fourier transform infrared spectroscopy (FTIR) analysis revealed structural changes during decolorization, consistent with the degradation of key functional groups. This transformation was attributed to the cleavage of azo linkages by azoreductase, with ligninolytic enzymes functioning on phenolic and aromatic moieties. While FTIR confirmed these structural changes, our findings only provided insights at the functional-group level, and the presence or absence of specific decolorized metabolites, such as aromatic amines, requires additional analytical techniques. In this study, the phytotoxic metabolites positively affected the germination and growth of Vigna radiata, confirming that decolorization using strain CKCC significantly reduced the toxic properties of the metabolites produced during dye decolorization. Hence, our isolated strain CKCC offers a potentially effective and environmentally sustainable method for treating azo-dye effluent in the textile industry. Full article
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11 pages, 1160 KB  
Article
Reuse of Textile Spent Reactive Anthraquinone Dyebaths Following Biological Decolorization Process Under Hypersaline Conditions
by Soogwan Lee and Young Haeng Lee
Processes 2026, 14(1), 32; https://doi.org/10.3390/pr14010032 - 21 Dec 2025
Viewed by 969
Abstract
The textile industry widely uses reactive anthraquinone dyes, which exhibit strong resistance to color removal and generate substantial volumes of wastewater containing significant quantities of residual dye requiring treatment prior to discharge. As part of a study aimed at reusing rather than discharging [...] Read more.
The textile industry widely uses reactive anthraquinone dyes, which exhibit strong resistance to color removal and generate substantial volumes of wastewater containing significant quantities of residual dye requiring treatment prior to discharge. As part of a study aimed at reusing rather than discharging spent reactive anthraquinone dyebaths, Reactive Blue 4 (RB4) dye was used in dyeing cotton, and the generated spent dyebaths were biologically decolorized using a fluidized bed reactor (FBR) operated under hypersaline conditions at a salt concentration of 100 g NaCl/L, which is typically found in commercial spent reactive dyebaths. Across five consecutive runs, the FBR achieved a mean decolorization efficiency of 91.2 ± 2.8% within a 6 h incubation period. The quality of cotton dyed with the treated and reused spent dyebaths was evaluated through shade reproducibility and color consistency assessments. Five repetitive dyeings using the biologically decolorized dyebaths showed that the ΔEcmc fabric color difference values were 0.58~0.80, which were lower than the industry-accepted value of 1.0. This study demonstrates that biologically decolorized spent dyebaths can be effectively reused, offering substantial reductions in water and salt consumption and improving the economic and environmental sustainability of the reactive dyeing process. Full article
(This article belongs to the Section Environmental and Green Processes)
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24 pages, 6444 KB  
Article
Development of Photo-Active Chitosan-Based Films with Riboflavin for Enhanced Antimicrobial Food Packaging Applications
by Jessica Genovese, Daniele Maria Martins, Tiziana Silvetti, Milena Brasca, Daniela Fracassetti, Gigliola Borgonovo, Stefania Mazzini and Sara Limbo
Molecules 2025, 30(21), 4166; https://doi.org/10.3390/molecules30214166 - 23 Oct 2025
Cited by 7 | Viewed by 2118
Abstract
This study reports the development of chitosan-based (CS) films incorporating riboflavin (RF) as a natural photosensitizer to create sustainable, light-activated antimicrobial packaging materials. The films were prepared by solvent casting, and their photochemical behavior under blue LED light (450 nm) was investigated, including [...] Read more.
This study reports the development of chitosan-based (CS) films incorporating riboflavin (RF) as a natural photosensitizer to create sustainable, light-activated antimicrobial packaging materials. The films were prepared by solvent casting, and their photochemical behavior under blue LED light (450 nm) was investigated, including RF photodegradation kinetics and structural changes in the film-forming solution analyzed by 1H NMR spectroscopy. Mechanical, thermal, optical, and barrier properties were also characterized to assess packaging suitability. Upon illumination, CS/RF films generated reactive oxygen species, particularly singlet oxygen (1O2), leading to visible color changes and significant antimicrobial activity against Pseudomonas fluorescens. Bacterial growth was reduced by up to 97% after 120 min of irradiation (0.92 J cm−2), with efficacy observed at both room temperature and 4 °C. The incorporation of RF did not alter the films’ mechanical properties, while thermal stability was preserved, optical transparency was modulated, and excellent oxygen barrier performance was maintained, although water vapor permeability remained moderate. These findings demonstrate that CS/RF films combine functionality and sustainability, offering a promising strategy for extending food shelf life through light-activated antimicrobial action. Validation under real storage conditions is recommended to confirm their potential in diverse food systems. Full article
(This article belongs to the Special Issue Development of Food Packaging Materials)
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28 pages, 4553 KB  
Article
Insights of Nanostructured Ferberite as Photocatalyst, Growth Mechanism and Photodegradation Under H2O2-Assisted Sunlight
by Andarair Gomes dos Santos, Yassine Elaadssi, Virginie Chevallier, Christine Leroux, Andre Luis Lopes-Moriyama and Madjid Arab
Molecules 2025, 30(19), 4026; https://doi.org/10.3390/molecules30194026 - 9 Oct 2025
Cited by 7 | Viewed by 1092
Abstract
In this study, nanostructured ferberites (FeWO4) were synthesized via hydrothermal routes in an acidic medium. It was then investigated as an efficient photocatalyst for degrading organic dye molecules, with methylene blue (MB) as a model pollutant. The formation mechanism of ferberite [...] Read more.
In this study, nanostructured ferberites (FeWO4) were synthesized via hydrothermal routes in an acidic medium. It was then investigated as an efficient photocatalyst for degrading organic dye molecules, with methylene blue (MB) as a model pollutant. The formation mechanism of ferberite revealed that the physical form of the precursor, FeSO4·7H2O, acts as a decisive factor in morphological evolution. Depending on whether it is in a solid or dilute solution form, two distinct nanostructures are produced: nanoplatelets and self-organized microspheres. Both structures are composed of stoichiometric FeWO4 (Fe: 49%, W: 51%) in a single monoclinic phase (space group P2/c:1) with high purity and crystallinity. The p-type semiconductor behavior was confirmed using Mott–Schottky model and the optical analysis, resulting in small band gap energies (≈1.7 eV) favoring visible absorption light. Photocatalytic tests under simulated solar irradiation revealed rapid and efficient degradation in less than 10 min under near-industrial conditions (pH 5). This was achieved using only a ferberite catalyst and a low concentration of H2O2 (4 mM) without additives, dopants, or artificial light sources. Advanced studies based on photocurrent measurements, trapping and stability tests were carried out to identify the main reactive species involved in the photocatalytic process and better understanding of photodegradation mechanisms. These results demonstrate the potential of nanostructured FeWO4 as a sustainable and effective photocatalyst for water purification applications. Full article
(This article belongs to the Special Issue Research on Heterogeneous Catalysis—2nd Edition)
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19 pages, 10127 KB  
Article
The Molecular Mechanism of Craniofacial Cartilage Deformity Induced by High Glucose in Zebrafish
by Xiaomei Chen, Yong Huang, Xin Yang, Huiqiang Lu and Jian Yang
Curr. Issues Mol. Biol. 2025, 47(9), 687; https://doi.org/10.3390/cimb47090687 - 26 Aug 2025
Viewed by 3330
Abstract
Gestational diabetes mellitus (GDM), a prevalent metabolic disorder in pregnancy, induces maternal hyperglycemia and elevates fetal malformation risks, particularly in craniofacial development. To investigate the underlying mechanisms, we employed zebrafish as a model organism due to its conserved skeletal development pathways with humans. [...] Read more.
Gestational diabetes mellitus (GDM), a prevalent metabolic disorder in pregnancy, induces maternal hyperglycemia and elevates fetal malformation risks, particularly in craniofacial development. To investigate the underlying mechanisms, we employed zebrafish as a model organism due to its conserved skeletal development pathways with humans. Zebrafish embryos were exposed to 3.5% and 4% high glucose (HG) from 10–80 h post-fertilization (hpf). Through comprehensive analyses including Alcian blue staining, confocal microscopy, and molecular assays, we demonstrated that HG exposure caused significant developmental abnormalities including growth retardation, craniofacial cartilage malformations, and impaired cranial neural crest cells (CNCCs) migration and proliferation. Mechanistically, HG induced reactive oxygen species (ROS) accumulation and oxidative stress while downregulating critical CNCCs markers (dlx2 and tfap2a). These molecular alterations correlated with histomorphological defects in pharyngeal arch cartilage, particularly in ceratohyal formation. Our findings establish that glucose disrupts craniofacial development through oxidative stress-mediated CNCCs dysfunction, providing novel mechanistic insights into GDM-associated skeletal abnormalities and potential therapeutic targets. Full article
(This article belongs to the Section Biochemistry, Molecular and Cellular Biology)
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15 pages, 4724 KB  
Article
Absorption of FD-150 in Brain Endothelial Cells by Cold Atmospheric Microplasma
by Md Jahangir Alam, Abubakar Hamza Sadiq, Jaroslav Kristof, Mahedi Hasan, Farhana Begum, Yamano Tomoki and Kazuo Shimizu
Plasma 2025, 8(2), 19; https://doi.org/10.3390/plasma8020019 - 12 May 2025
Cited by 2 | Viewed by 2264
Abstract
The blood–brain barrier (BBB) limits drug delivery to the brain, particularly for large or hydrophilic molecules. Brain microvascular endothelial cells (bEND.3), which form part of the BBB, play a critical role in regulating drug uptake. This study investigates the use of cold atmospheric [...] Read more.
The blood–brain barrier (BBB) limits drug delivery to the brain, particularly for large or hydrophilic molecules. Brain microvascular endothelial cells (bEND.3), which form part of the BBB, play a critical role in regulating drug uptake. This study investigates the use of cold atmospheric microplasma (CAM) to enhance membrane permeability and facilitate drug delivery in bEND.3 cells. CAM generates reactive oxygen species (ROS) that modulate membrane properties. We exposed bEND.3 cells to CAM at varying voltages (3, 3.5, 4, and 4.5 kV) and measured drug uptake using the fluorescent drug FD-150, fluorescence intensity, ROS levels, membrane lipid order, and membrane potential. The results showed a significant increase in fluorescence intensity and drug concentration in the plasma-treated cells compared to controls. ROS production, measured by DCFH-DA staining, was higher in the plasma-treated cells, supporting the hypothesis that CAM enhances membrane permeability through ROS-induced changes. Membrane lipid order, assessed using the LipiORDER probe, shifted from the liquid-ordered (Lo) to liquid-disordered (Ld) phase, indicating increased membrane fluidity. Membrane depolarization was detected with DisBAC2(3) dye, showing increased fluorescence in the plasma-treated cells. Cell viability, assessed by trypan blue and LIVE/DEAD™ assays, revealed transient damage at higher voltages (≥4 kV), with recovery after 24 h. These results suggest that CAM enhances drug delivery in bEND.3 cells by modulating membrane properties via ROS production and changes in membrane potential. CAM offers a promising strategy for improving drug delivery to the brain, with potential applications in brain-targeted therapies. Full article
(This article belongs to the Special Issue Feature Papers in Plasma Sciences 2025)
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