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Search Results (454)

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Keywords = nanoparticle selenium

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16 pages, 11238 KB  
Article
Foliar Application of Se and TiO2 Nanoparticles Induces Physiological Stability and Stem Anatomical Remodeling Without Affecting Vegetative Growth in Lilium cv. Concador
by Sergio Rubén Pérez-Ríos, Nayla Tamara Sánchez-Granados, Juan Ocampo-López, Mariana Saucedo-García, Fabián Fernández-Luqueño, María Fernanda Cenobio-Galindo, Macario Vicente-Flores, Ma Isabel Reyes-Santamaría, Cristián Raziel Delgado-González and Iridiam Hernández-Soto
Int. J. Plant Biol. 2026, 17(9), 83; https://doi.org/10.3390/ijpb17090083 - 4 Sep 2026
Viewed by 116
Abstract
Lilium sp. is one of the most commercially important ornamental species; however, improving its ornamental quality remains a challenge for production systems. In this context, nanoparticles have been proposed as an innovative alternative to optimize the agronomic performance of ornamental crops. The objective [...] Read more.
Lilium sp. is one of the most commercially important ornamental species; however, improving its ornamental quality remains a challenge for production systems. In this context, nanoparticles have been proposed as an innovative alternative to optimize the agronomic performance of ornamental crops. The objective of this study was to determine how the foliar application of selenium nanoparticles (SeNPs) and titanium dioxide nanoparticles (TiO2NPs) modifies the physiological response and stem morphoanatomy of Lilium cv. Concador. Plants were grown under greenhouse conditions using conventional agronomic management for commercial Lilium production. We evaluated vegetative growth variables, relative chlorophyll content (SPAD), root biomass, flowering characteristics, and quantitative stem anatomy using histological, morphometric, and multivariate statistical analyses. Most agronomic variables, including plant height, number of leaves, shoot biomass, and flower opening, did not differ significantly between treatments, indicating that the nanoparticles did not compromise vegetative development. In contrast, root biomass and stem anatomical organization responded differently depending on nanoparticle type and applied dose. SeNPs, particularly at the highest dose, promoted greater development of parenchyma and vascular tissue, while TiO2NPs induced dose-dependent anatomical responses, with less parenchyma expansion and less pronounced vascular remodeling. Taken together, these results demonstrate that foliar application of nanoparticles induces early remodeling of the stem’s functional architecture without affecting vegetative growth and show that quantitative anatomy is a sensitive tool for detecting early responses to nano-inputs in ornamental species. Full article
(This article belongs to the Section Plant Physiology)
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24 pages, 1157 KB  
Review
Selenium and Iodine as Susceptibility Modifiers of Thyroid Disruption Associated with Metals: An Overview of Human and Experimental Research Data
by Maria-Nefeli Georgaki, Despoina Ioannou, Kanellos Skourtsidis, Georgios Kiosis, Theodora Papamitsou and Dimosthenis Sarigiannis
J. Xenobiotics 2026, 16(5), 164; https://doi.org/10.3390/jox16050164 - 31 Aug 2026
Viewed by 183
Abstract
Background: Thyroid hormone synthesis, deiodination, and redox regulation depend on iodine availability and selenium-dependent proteins. Therefore, these nutrients may alter sensitivity to thyroid disturbance brought on by metals and metalloids; nevertheless, direct human evidence has not been compiled independently from rescue experiments. Goal [...] Read more.
Background: Thyroid hormone synthesis, deiodination, and redox regulation depend on iodine availability and selenium-dependent proteins. Therefore, these nutrients may alter sensitivity to thyroid disturbance brought on by metals and metalloids; nevertheless, direct human evidence has not been compiled independently from rescue experiments. Goal: To determine the mechanistic, biomarker, and study-design needs for interpretable human research, as well as to critically assess whether iodine or selenium alters metal-associated thyroid effects. Methods: Terms for metals, metalloids, iodine, selenium, and thyroid endpoints were used to search PubMed/MEDLINE until 14 July 2026. The database search was improved by selective forward citation searching, backward citation searching, and exact-title and DOI retrieval. A thyroid-specific outcome, a measurable or experimentally manipulated iodine or selenium variable, and a metal or metalloid exposure were all necessary for studies to be eligible. An author-developed framework that distinguished between formal interaction, stratification, joint-exposure modeling, contextual co-measurement, factorial nutritional-status experiments, physiologically interpretable supplementation, and pharmacological or nanoparticle rescue was used to categorize experimental evidence from humans and mammals. Results: Seven human studies and nine mammalian experimental studies made up the core evidence set. One additional human study was retained as contextual evidence. The results of the three human studies that directly assessed modification were mixed. One showed no clear interactions with iodine or selenium, one discovered an isolated strontium-by-iodine interaction, and one reported a suggestive mercury-by-iodine-supplement interaction. Most experimental trials employed high-dose, combination, parenteral, or nanoparticle rescue methods, but they more consistently demonstrated mitigation of thyroid damage by selenium-containing treatments. Conclusions: Although iodine- and selenium-dependent sensitivity is biologically feasible, there is currently little human data to support a consistent protective or detrimental modifying impact. Rather than supporting population-level prevention, experimental rescue promotes mechanistic modifiability. Repeated iodine testing, functional selenium biomarkers, metal speciation, vulnerable-window sampling, thyroid-specific outcomes, and predetermined interaction analyses are all necessary for future research. Full article
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33 pages, 67797 KB  
Article
Integrated Optimization, Genomic Characterization, and Functional Evaluation of Biogenic Selenium Nanoparticles from Bacillus licheniformis BLN313: Antibacterial and Anticancer Potential
by Shiza Nawaz, Maryam Anayat, Sana Parveen, Nida Nawaz, Alhassan Alrafaie, Yingjie Wang and Fenghuan Wang
Int. J. Mol. Sci. 2026, 27(17), 7792; https://doi.org/10.3390/ijms27177792 - 31 Aug 2026
Viewed by 158
Abstract
Microbial synthesis of selenium nanoparticles (SeNPs) offers a sustainable alternative to chemical routes, but the genetic basis of selenium handling in Bacillus remains poorly defined, which limits rational strain selection. Here, SeNP production, physicochemical characterization, and closed-genome sequencing are combined for Bacillus licheniformis [...] Read more.
Microbial synthesis of selenium nanoparticles (SeNPs) offers a sustainable alternative to chemical routes, but the genetic basis of selenium handling in Bacillus remains poorly defined, which limits rational strain selection. Here, SeNP production, physicochemical characterization, and closed-genome sequencing are combined for Bacillus licheniformis BLN313. Selenite reduction peaked at 500 µg/mL Na2SeO3 (88.8% conversion; 444 ± 27 µg/mL Se0); at higher concentrations, conversion efficiency and viability diverged, indicating that tolerance and reductive capacity are distinct traits. Purified SeNPs were spherical and partially crystalline trigonal Se0 (TEM 190 ± 52 nm; DLS 166 nm, PDI 0.03; zeta potential −20.8 mV), carrying a proteinaceous capping layer confirmed by XPS, EDS, and FTIR and shown by LC-MS to be enriched in cell wall-derived metabolites. The particles were bactericidal against Micrococcus luteus (MIC 62.5 µg/mL) and Klebsiella pneumoniae (MIC 250 µg/mL) and reduced MCF-7 viability (IC50 2.7 µg/mL) while sparing MCF-10A cells. The 4.11 Mb genome (46.3% GC; ANI 99.7%, dDDH 97.8%) encodes SulP and Pit transporters, multiple trxB copies, and sulfur-metabolism and oxidative-stress genes, defining a candidate gene set for selenium uptake, reduction and detoxification. BLN313 thus provides a genetically defined platform for SeNP production in biomedical and environmental applications. Full article
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28 pages, 5426 KB  
Article
Rutin-Functionalized Selenium Nanoparticles Attenuate Cisplatin-Induced Cardiohepatic Injury in Rats: Modulation of ER Stress-Related Gene Expression and Mitochondrial Apoptotic Markers
by Nievin Ahmed Mahran, Khaled M. Alam-ELDein, Mohamed A. Ali, Khalid M. Alsyaad, Rabab Mohamed Aljarari, Reem S. Alazragi, Maha Alsunbul, Salma M. Selim, Ossama M. Sayed, Mohamed H. A. Gadelmawla and Samah Shehata Mohammed
Int. J. Mol. Sci. 2026, 27(16), 7430; https://doi.org/10.3390/ijms27167430 - 19 Aug 2026
Viewed by 469
Abstract
Cisplatin is an effective chemotherapeutic agent whose clinical use is limited by dose-dependent off-target toxicities, particularly hepatic and cardiac injury. The present study investigated the protective efficacy of rutin-mediated selenium nanoparticles (RUT-SeNPs) against cisplatin-induced hepato-cardiotoxicity in rats and compared their effects against those [...] Read more.
Cisplatin is an effective chemotherapeutic agent whose clinical use is limited by dose-dependent off-target toxicities, particularly hepatic and cardiac injury. The present study investigated the protective efficacy of rutin-mediated selenium nanoparticles (RUT-SeNPs) against cisplatin-induced hepato-cardiotoxicity in rats and compared their effects against those of free rutin and sodium selenite. RUT-SeNPs were characterized using dynamic light scattering, zeta potential analysis, transmission electron microscopy, X-ray diffraction, and UV–visible spectroscopy. Thirty-five male rats were randomly assigned to five groups: control (CON), cisplatin (CIS), CIS + Rutin, CIS + selenium, and CIS + RUT-SeNPs. Cisplatin administration caused marked hepatic and cardiac injury, as evidenced by altered liver-function indices, elevated cardiac injury biomarkers, oxidative stress, inflammatory activation, endoplasmic reticulum stress, and apoptosis. These effects were associated with increased lipid peroxidation, depletion of endogenous antioxidants, KEAP1 upregulation, Nrf2 suppression, activation of the TLR4/MAPK/NF-κB inflammatory axis, elevated TNF-α, IL-6, and COX-2 levels, and increased mRNA expression of the ER stress-related genes PERK, ATF4, ATF6, and CHOP. Cisplatin also promoted mitochondrial apoptosis, as indicated by increased Bax expression and cytochrome c release together with reduced Bcl-2 levels. Although rutin and sodium selenite partially mitigated these alterations, RUT-SeNPs produced the most pronounced protective effects by restoring redox homeostasis, suppressing inflammatory signaling, reducing the elevated expression of ER stress-related genes, and limiting mitochondrial apoptotic activation. These molecular improvements were accompanied by substantial preservation of the hepatic and cardiac histoarchitecture. Collectively, these results indicate that RUT-SeNPs may represent a promising nanoformulation for reducing cisplatin-induced hepato-cardiac toxicity through coordinated modulation of oxidative stress, inflammation, endoplasmic reticulum stress, and apoptosis. Full article
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38 pages, 1727 KB  
Review
Co-Application of Silicon with Selenium, Sulphur, Zinc, and Iron in Plants: Mechanisms of Stress Tolerance, Nutrient Homeostasis and Secondary Metabolism
by Marija Polić Pasković, Mohammed Bouhadi, Soukaina Lahmaoui and Igor Pasković
Plants 2026, 15(16), 2463; https://doi.org/10.3390/plants15162463 - 14 Aug 2026
Cited by 1 | Viewed by 487
Abstract
While individual Si-nutrient interactions have been reviewed separately, a comparative analysis of multiple Si-element interactions remains lacking. This review compares current knowledge on co-application of Si with selenium (Se), sulphur (S), zinc (Zn) and iron (Fe), focusing on stress tolerance, nutrient homeostasis, physiological [...] Read more.
While individual Si-nutrient interactions have been reviewed separately, a comparative analysis of multiple Si-element interactions remains lacking. This review compares current knowledge on co-application of Si with selenium (Se), sulphur (S), zinc (Zn) and iron (Fe), focusing on stress tolerance, nutrient homeostasis, physiological responses, secondary metabolism and agronomic relevance. The evidence indicates that combining Si with these elements helps maintain reactive oxygen species (ROS) homeostasis, strengthen antioxidant defenses, stabilize photosynthetic function and improve nutrient uptake, translocation and use efficiency. Responses depend on plant species, nutrient form, application strategy and environmental conditions; at the metabolic level, Si-based combinations affect the synthesis of phenolic compounds, amino acids and sulphur-containing metabolites. Si-Se and Si-Fe proved most effective under heavy-metal stress, through regulation of metal transport, detoxification and sequestration, and Si-S and Si-Zn under drought, salinity and nutrient-deficient conditions, by enhancing osmotic adjustment, nutrient-use efficiency, ionic homeostasis and photosynthetic performance. Agronomically, these interactions can increase crop productivity, nutritional value and biofortification potential, and mitigate toxic-element accumulation in edible parts. Knowledge gaps remain regarding molecular regulation, variability among species and environments, and the long-term effectiveness of nanoparticle formulations. Since most evidence comes from hydroponic, pot and greenhouse studies, standardized field experiments are needed to assess agronomic relevance. Full article
(This article belongs to the Special Issue Silicon and Its Physiological Role in Plant Growth and Development)
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29 pages, 15494 KB  
Article
pH-Responsive Carboxymethyl Cellulose-Encapsulating Hesperidin–Selenium Nanoparticles Attenuate Paracetamol-Induced Acute Kidney Injury via Keap-1/Nrf2, NF-κB, and Mitochondrial Apoptosis Modulation
by Mohamed H. A. Gadelmawla, Khaled M. Alam-Eldein, Afnan Saleh, Sama Adel, Haneen Ali, Shaza Ayman, Esraa Tarek, Nievin Ahmed Mahran, Ahmed M. Ashour, Nasser M. Alorfi, Fahad S. Alshehri, Wessam N. El-Sayed, Ahmed Hassan Ibrahim Faraag, Ali Khames and Salma M. Selim
Int. J. Mol. Sci. 2026, 27(15), 7049; https://doi.org/10.3390/ijms27157049 - 6 Aug 2026
Cited by 1 | Viewed by 937
Abstract
Paracetamol overdose is a major cause of drug-induced acute kidney injury (AKI), driven by oxidative stress, inflammation, mitochondrial dysfunction, and tubular apoptosis. This study evaluated the nephroprotective efficacy of pH-responsive carboxymethyl cellulose-encapsulated hesperidin-stabilized selenium nanoparticles (CMC@HES-SeNPs) against paracetamol-induced AKI in rats. HES-SeNPs were [...] Read more.
Paracetamol overdose is a major cause of drug-induced acute kidney injury (AKI), driven by oxidative stress, inflammation, mitochondrial dysfunction, and tubular apoptosis. This study evaluated the nephroprotective efficacy of pH-responsive carboxymethyl cellulose-encapsulated hesperidin-stabilized selenium nanoparticles (CMC@HES-SeNPs) against paracetamol-induced AKI in rats. HES-SeNPs were synthesized using hesperidin as a reducing/stabilizing agent and further coated with CMC. The nanoparticles were characterized by DLS, zeta potential, TEM, and in vitro release kinetics at pH 7.4 and 5.5. 42 Male rats were allocated into groups of control, paracetamol (PAR), paracetamol treated with sodium selenite (PAR&Se), paracetamol treated with hesperidin (PAR&HES), paracetamol treated with hesperidin-loaded selenium nanoparticles (PAR&HES-SeNPs), and paracetamol treated with carboxy methyl cellulose-coated hesperidin-loaded selenium nanoparticles (PAR&CMC@HES-SeNPs). Paracetamol markedly impaired renal function, increasing creatinine, urea, NGAL, KIM-1, and cystatin-C, and induced oxidative/nitrosative stress, Keap-1 upregulation, Nrf2 suppression, NF-κB-mediated inflammation, cytochrome-C release, Bax/Bcl-2 imbalance, caspase-3 activation, and severe renal histopathological injury. CMC@HES-SeNPs displayed sustained, pH-enhanced hesperidin release and produced the strongest renoprotective response, restoring renal biomarkers, associated with restoration of Keap-1/Nrf2-related antioxidant markers, reduction in TNF-α, IL-6, NF-κB, and caspase-3, increased IL-10, and preservation of renal architecture. Collectively, these results indicate that CMC@HES-SeNPs represent a promising multifunctional nanoplatform for mitigating paracetamol-induced AKI in association with coordinated modulation of redox, inflammatory, and mitochondrial apoptotic markers, and highlight CMC encapsulation as a rational strategy to enhance selenium–flavonoid delivery and efficacy for future drug-induced AKI management and translation. Full article
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15 pages, 2850 KB  
Review
Biofortification with Selenium: Implications for the Resilience and Nutritional Value of Plants Under Changing Climate Conditions
by Kevin Böhm, Shahrzad Safinazlou, Jean-Philippe Reichheld, Muhammad Jawad Nasim and Claus Jacob
Sci 2026, 8(8), 196; https://doi.org/10.3390/sci8080196 - 6 Aug 2026
Viewed by 282
Abstract
Selenium (Se) is an essential trace element in animals and humans, usually acquired via nutrition and thus often dependent on the Se content of the soil from where the food crops originate. The uneven distribution of Se in soils may therefore result in [...] Read more.
Selenium (Se) is an essential trace element in animals and humans, usually acquired via nutrition and thus often dependent on the Se content of the soil from where the food crops originate. The uneven distribution of Se in soils may therefore result in regional Se deficiencies, often further exacerbated due to climate change and its subsequent effects on Se speciation (i.e., the chemical forms in which Se occurs) and the element’s mobility. In recent years, biofortification has emerged as a promising approach to address this issue. This review provides an overview of how climate-driven changes in Se cycling influence soil Se availability and discusses the resulting implications for plant resilience, crop biofortification and dietary Se supply. Although plants do not require Se per se, an increased Se content of plants may improve their yields, antioxidant defences, and tolerance to various—climate (change)-related—stresses such as drought, salinity, and oxidative stress at low concentrations. So far, selenite (SeO32−) and selenate (SeO42−) are the most commonly employed Se species in agriculture, often via foliar and soil applications, and due to their excellent solubility in water are subject to leaching or other weather-related limitations. Alternative Se compounds, such as Se nanoparticles (SeNPs) and selenium sulfide (SeS2) present promising approaches that may enable a more controlled Se release in soils. Nonetheless, their long-term agronomic performance and environmental behaviour require further investigations. Full article
(This article belongs to the Section Biology Research and Life Sciences)
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19 pages, 2186 KB  
Article
Foliar Application of Selenium Nanoparticles Reduced Cadmium Accumulation and Alleviated Cd Toxicity in Winter Wheat Grown in Cd-Contaminated Soil
by Yixun Qin, Yuanzhe Ma, Shangyan Hao, Yunmei Wu and Fuyong Wu
Agronomy 2026, 16(15), 1468; https://doi.org/10.3390/agronomy16151468 - 2 Aug 2026
Viewed by 634
Abstract
This study investigated the efficacy and mechanisms of foliar-applied selenium nanoparticles (SeNPs) in reducing cadmium (Cd) concentrations and alleviating Cd toxicity in winter wheat grown in Cd-contaminated soil. Pot experiments were conducted to evaluate SeNPs of different particle sizes (50, 100, 200 nm) [...] Read more.
This study investigated the efficacy and mechanisms of foliar-applied selenium nanoparticles (SeNPs) in reducing cadmium (Cd) concentrations and alleviating Cd toxicity in winter wheat grown in Cd-contaminated soil. Pot experiments were conducted to evaluate SeNPs of different particle sizes (50, 100, 200 nm) and concentrations (0.125, 0.25 mmol/L). Foliar SeNPs application achieved the dual objectives of significantly decreasing Cd while increasing selenium (Se) concentrations in wheat grain. High-concentration (0.25 mmol/L) SeNPs treatments were most effective, particularly with a particle size of 100 nm size. Compared with the control, SeNPs significantly reduced grain Cd concentrations by 18.9–70.5% and increased grain Se concentrations by 1.2–27.2 times. Durum wheat exhibited a stronger response than soft wheat. The primary mechanisms included: (1) enhancing antioxidant defense: SeNPs significantly boosted superoxide dismutase (55.2–165.2%) and peroxidase (36.5–182.6%) activities, effectively scavenging reactive oxygen species, reducing oxidative stress markers malondialdehyde (12.0–35.1%) and regulating hydrogen peroxide (7.9–64.1%), which mitigated membrane lipid peroxidation. (2) Regulating subcellular Cd distribution: SeNPs increased the proportion of Cd immobilized in the cell wall by 2.9–39.6% and decreased Cd in organelles by 9.1–38.4%, thereby reducing its bioavailability and toxicity. This study provides a theoretical basis for using foliar SeNPs to remediate Cd pollution and simultaneously produce Se-enriched functional wheat. Full article
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20 pages, 12240 KB  
Article
Evaluation of Redox-Mediated Responses of Coral Symbiotic Dinoflagellates to Nano-Selenium
by Xinyu Shan, Yunting Wang, Wenxin Wang, Mingxuan Wang, Shuangqi Yue, Fengyue Qin, Menglu Dong, Waqas Ahmed, Ling Li, Senjie Lin, Sajid Mehmood and Weidong Li
Mar. Drugs 2026, 24(8), 265; https://doi.org/10.3390/md24080265 - 31 Jul 2026
Viewed by 557
Abstract
This study investigated species-specific physiological and redox responses of two coral symbiotic dinoflagellates, Cladocopium sp. and Durusdinium sp., to green-synthesized nano-selenium (SeNP) gradients, with implications for eco-friendly marine antifouling. Growth, photosynthetic pigments, antioxidant enzymes (SOD, POD, CAT), lipid peroxidation (MDA), and osmo-protectants were [...] Read more.
This study investigated species-specific physiological and redox responses of two coral symbiotic dinoflagellates, Cladocopium sp. and Durusdinium sp., to green-synthesized nano-selenium (SeNP) gradients, with implications for eco-friendly marine antifouling. Growth, photosynthetic pigments, antioxidant enzymes (SOD, POD, CAT), lipid peroxidation (MDA), and osmo-protectants were assessed to elucidate mechanisms. Both species exhibited a biphasic (hormetic) response, with stimulation at low concentrations and inhibition at high levels. At 50–100 mg L−1, Cladocopium sp. showed enhanced growth, pigments, antioxidant activity, and osmotic regulation, with reduced oxidative stress, indicating improved redox homeostasis. In contrast, ≥150 mg L−1 disrupted redox balance and suppressed growth. Durusdinium sp. displayed slower growth but maintained stable pigments, consistent antioxidant activity, and low MDA, reflecting a tolerance-oriented strategy. Overall, SeNPs synergistically regulate antioxidant systems and osmotic homeostasis to balance the intracellular redox status of symbiotic dinoflagellates, indicating their potential as antioxidant agents to improve the growth performance of symbiotic dinoflagellates in coral nursery cultivation. Full article
(This article belongs to the Section Marine Chemoecology for Drug Discovery)
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45 pages, 4312 KB  
Systematic Review
Functional Aquafeeds for Climate-Resilient Finfish Culture: A PRISMA-Guided Systematic Evidence Map of Nutritional Strategies for Thermal-Stress Tolerance, Immunity and Metabolic Homeostasis
by Md Hashibur Rahman, Hyuncheol Jeon, Haham Kim and Seunghyung Lee
Vet. Sci. 2026, 13(8), 756; https://doi.org/10.3390/vetsci13080756 - 30 Jul 2026
Viewed by 662
Abstract
Thermal variability associated with climate change is an increasing constraint for finfish aquaculture because water temperature directly affects feed intake, nutrient utilization, endocrine stress responses, oxidative balance, immunity, intestinal integrity and survival. The literature search was conducted without a lower publication-year restriction through [...] Read more.
Thermal variability associated with climate change is an increasing constraint for finfish aquaculture because water temperature directly affects feed intake, nutrient utilization, endocrine stress responses, oxidative balance, immunity, intestinal integrity and survival. The literature search was conducted without a lower publication-year restriction through 5 July 2026. Database and citation-linked searches identified 386 candidate records, of which 274 remained after duplicate removal; 71 full-text articles were assessed; and 28 peer-reviewed primary feeding studies with publicly available final versions of record were retained for qualitative evidence mapping. The eligible studies were published between 2012 and 2026, with 2012 representing the earliest eligible publication rather than a prespecified starting year. Functional aquafeeds have therefore emerged as promising nutritional tools for supporting physiological resilience under heat, cold and sub-optimal temperature conditions. This review developed a PRISMA-guided systematic evidence map of dietary functional-aquafeed strategies evaluated for thermal-stress tolerance, immune regulation, antioxidant defense and metabolic homeostasis in cultured finfish. The main synthesis emphasizes studies with direct dietary thermal-stress interventions and extractable mechanistic outcomes, including sodium butyrate, organic selenium, selenium nanoparticles with riboflavin, astaxanthin, Bacillus spp., propolis, bay laurel essential oil, Spirulina-based strategies and essential oils. Overall, the available evidence suggests that selected functional aquafeeds may support thermal-stress resilience through coordinated improvements in antioxidant capacity, reduced oxidative damage, modulation of cortisol/glucose and heat-shock responses, enhancement of innate and mucosal immunity, improved intestinal or tissue condition and stabilization of metabolic indicators. The most biologically coherent translational patterns were observed when dietary interventions improved multiple response domains simultaneously rather than a single biomarker. However, such cross-domain improvement was interpreted as mechanistic and translational support rather than as an independent indicator of evidence confidence, which depended primarily on independent replication, consistency of response direction and methodological quality. Nevertheless, the current evidence remains uneven across species, stress models, life stages and outcome domains, with limited data for marine carnivores, repeated temperature fluctuation, post-stress recovery, disease challenge and multiomics integration. Therefore, the findings should be interpreted as a structured evidence map rather than universal formulation guidance. Future studies should use standardized thermal-challenge protocols, dose–response designs, clear tank-level experimental-unit reporting and integrated biomarker panels to support practical development of climate-resilient functional aquafeeds. Full article
(This article belongs to the Special Issue Health and Disease Management in Aquatic Animals)
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20 pages, 7787 KB  
Article
Himalayan Asphaltum-Driven Synthesis of Gold and Selenium Nanoparticles: Investigation of Antimicrobial Activity and Urolithin Levels
by Nenad Janković, Nodari Rizun, Srđan Stefanović, Lazar Rakočević, Jovana Matić, Sebastian Baloš, Marijana Kosanić and Nenad Ignjatović
Molecules 2026, 31(15), 2649; https://doi.org/10.3390/molecules31152649 - 29 Jul 2026
Viewed by 498
Abstract
This work examines the utilization of the natural product shilajit resin, sourced from the Himalayas, for the extraction of diverse components suitable to the synthesis of gold nanoparticles (AuNPs) and selenium nanoparticles (SeNPs). The study evaluated the extraction efficiency of Uro-A, a [...] Read more.
This work examines the utilization of the natural product shilajit resin, sourced from the Himalayas, for the extraction of diverse components suitable to the synthesis of gold nanoparticles (AuNPs) and selenium nanoparticles (SeNPs). The study evaluated the extraction efficiency of Uro-A, a polar phenolic component, from shilajit samples utilizing various solvent systems, followed by the eco-friendly synthesis and characterization of AuNPs and SeNPs. The LC-MS/MS analysis demonstrated that the methanol/ethyl acetate (MeOH/EA) extract was particularly effective and contained the highest concentration of Uro-A. A robust positive association was discovered between Uro-A content in shilajit and the efficiency of nanoparticle production. Sample 2, with 0.002 ppm Uro-A, produced suboptimal yields (15% for AuNPs; 34% for SeNPs), while sample 1, with 2.504 ppm Uro-A, noticeably enhanced the yields to 90% (AuNPs) and 96% (SeNPs). The synthesized AuNPs and SeNPs were characterized using SEM, EDS, PSD, ZP, XRD, FTIR, and XPS techniques, demonstrating spherical particles with an average diameter of around 100 nm. XPS spectra confirmed the elemental form of the obtained AuNPs and SeNPs. Antimicrobial studies revealed that SeNPs exhibit moderate efficacy (MIC = 0.125–1 mg/mL) against bacteria (e.g., Bacillus subtilis, Staphylococcus aureus) and fungi (e.g., Penicillium italicum, Mucor mucedo), but higher in comparison to AuNPs (MIC 0.25–5 mg/mL). Full article
(This article belongs to the Topic Antimicrobial Agents and Nanomaterials—2nd Edition)
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30 pages, 6457 KB  
Article
Withania somnifera-Functionalized Selenium Nanoparticles Attenuate Glycerol-Induced Rhabdomyolysis-Associated Acute Renal Failure
by Hala Fouad Elmazar, Khaled M. Alam-ElDein, Mariam G. Elneel, Habiba A. Abbas, Doaa Y. Ahmed Shalaby, Fatma H. Negm, Mariam S. Gerges Aryan, Basmala H. E. Khalaf, Ahmed Hassan Ibrahim Faraag, Khaled Abuelhaded, Ahmed M. Ashour, Ali Khames, Mohamed H. A. Gadelmawla, Mariam O. A. Hamed and Sara Youssif Ibrahim
Int. J. Mol. Sci. 2026, 27(15), 6746; https://doi.org/10.3390/ijms27156746 - 28 Jul 2026
Cited by 1 | Viewed by 793
Abstract
Rhabdomyolysis-associated acute kidney injury is driven by myoglobin-mediated oxidative stress, inflammation, mitochondrial impairment, and tubular cell death. This study evaluated the nephroprotective activity of green-synthesized Withania somnifera-functionalized selenium nanoparticles (Ws-SeNPs) in glycerol-induced renal injury and compared their efficacy with native W. somnifera [...] Read more.
Rhabdomyolysis-associated acute kidney injury is driven by myoglobin-mediated oxidative stress, inflammation, mitochondrial impairment, and tubular cell death. This study evaluated the nephroprotective activity of green-synthesized Withania somnifera-functionalized selenium nanoparticles (Ws-SeNPs) in glycerol-induced renal injury and compared their efficacy with native W. somnifera extract and sodium selenite. The chemical profile of the plant extract was characterized by LC–MS/MS, and Ws-SeNPs were evaluated using dynamic light scattering, zeta potential analysis, transmission electron microscopy, and FTIR spectroscopy. Thirty-five male rats were assigned to Control, ARF, ARF & Ws, ARF & selenium, and ARF & Ws-SeNPs. ARF was induced by intramuscular injection of 50% glycerol. Glycerol administration induced marked skeletal muscle injury, renal dysfunction, tubular damage, oxidative stress, inflammation, mitochondrial dysregulation, pyroptosis, apoptosis, and histopathological alterations. Both Ws and sodium selenite provided partial protection, whereas Ws-SeNPs produced the greatest improvement in renal function and tissue architecture. Their protective effect was associated with restoration of Nrf2-dependent antioxidant defenses, suppression of NF-κB/NLRP3/GSDMD-associated inflammatory and pyroptotic signaling, preservation of mitochondrial regulatory pathways, and attenuation of apoptosis. These findings indicate that Ws-SeNPs provide multi-target protection against glycerol-induced rhabdomyolysis-associated renal injury and may represent a promising phytochemical-based selenium nanoformulation for further preclinical investigation. Full article
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7 pages, 2011 KB  
Proceeding Paper
Histological and Ultrastructural Study of the Effect of Cisplatin on the Retina of Wistar Rats and the Protective Effect of Selenium and Zinc Nanoparticles
by Sofia Karachrysafi, Kiriaki Papadopoulou, Pavlos Pavlidis, Vasilis-Spyridon Tseriotis, Vasileios Fouskas, Despoina Ioannou, Nikolaos Pliatsikas, Stavros Panos, Panagiotis Patsalas, Chrysanthi Sardeli, Dimitrios Kouvelas and Theodora Papamitsou
Environ. Earth Sci. Proc. 2026, 44(1), 62; https://doi.org/10.3390/eesp2026044062 - 28 Jul 2026
Viewed by 197
Abstract
Ocular toxicity induced by cisplatin appears to be almost irreversible, while trace elements have been shown to be protective in retinal angiopathies, degenerative or inflammatory conditions. A total of 60 Wistar rats were used in which administration of cisplatin intraperitoneally and of selenium [...] Read more.
Ocular toxicity induced by cisplatin appears to be almost irreversible, while trace elements have been shown to be protective in retinal angiopathies, degenerative or inflammatory conditions. A total of 60 Wistar rats were used in which administration of cisplatin intraperitoneally and of selenium and zinc nanoparticles, both per os and intraperitoneally, were performed. Retinal tissues were studied with TEM and optical microscopy. The results showed reduced tissue lesions in the trace element administration groups compared to the cisplatin administration group concluding that trace elements in the form of nanoparticles can achieve better tissue penetration for the treatment of cisplatin-induced ocular toxicity. Full article
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16 pages, 1993 KB  
Article
Comparative Evaluation of the Effect of Foliar Nano-Se/Si Supply on the Yield and Nutritional Quality of Iceberg and Romaine Lettuce Grown in Hydroponics
by Nadezhda Golubkina, Mikhail Fedotov, Andrey Alpatov, Andrew Koshevarov, Marina Antoshkina, Viktor Kharchenko, Otilia Cristina Murariu, Hicham Fatnassi and Gianluca Caruso
Plants 2026, 15(15), 2289; https://doi.org/10.3390/plants15152289 - 26 Jul 2026
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Abstract
Hydroponic production of vegetables is beneficial for plant yield and quality, especially when utilizing growth stimulators. To evaluate the effect of Se/Si nanoparticle application, two contrasting lettuce types of relatively low (Iceberg) and high (Romaine) nutritional density were foliar-treated with nanoparticles of Se [...] Read more.
Hydroponic production of vegetables is beneficial for plant yield and quality, especially when utilizing growth stimulators. To evaluate the effect of Se/Si nanoparticle application, two contrasting lettuce types of relatively low (Iceberg) and high (Romaine) nutritional density were foliar-treated with nanoparticles of Se (25 mg L−1) and Si (14 mg L−1), singly or jointly. Only single nano-Se/Si supply showed a beneficial effect on lettuce yield, photosynthetic pigments, and antioxidant parameters. Compared to Romaine, Iceberg displayed a lower yield increase under nano-Se/Si supply, despite the higher photosynthetic pigment rise, while Romaine lettuce was characterized by a significantly higher augmentation of ascorbic acid, polyphenols, and total antioxidant activity (AOA). Nano-Se/Si halved the chlorophyll a/b ratio in Iceberg, with no effect on Romaine lettuce. Iceberg showed more evident mineral profile changes under all Se/Si treatments, with a significant Mn increase and Fe decrease. In both lettuce types, single nano-Se supply reduced Cu accumulation by more than twice, while joint Se/Si treatment significantly diminished both Cu and Zn. Nano-Si supplementation had contrasting effects on Cu, Zn, and Mn accumulation, increasing the assimilation capacity of minerals in Iceberg and decreasing Cu and Mn levels in Romaine, with no significant effect on Zn. Under single Se supply, both lettuce types provided 920–1030 µg Se kg−1 d.w., compared to lower values (611–720 µg kg−1 d.w.) associated with joint Se/Si treatment. The results of this research confirm the existence of significant genetic peculiarities in plant adaptation connected with photosynthetic pigment accumulation and mineral profile changes in the Iceberg genotype and with antioxidant parameters in Romaine lettuce. Full article
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26 pages, 7720 KB  
Article
Nano-Selenium-Mediated Alleviation of Chromium Toxicity and Selenium Biofortification of Ipomoea aquatica Forssk. in Cyclic Hydroponic System
by Mingxuan Wang, Yunting Wang, Shuangqi Yue, Fengyue Qin, Menglu Dong, Wenxin Wang, Xinyu Shan, Waqas Ahmed, Sajid Mehmood and Weidong Li
Plants 2026, 15(15), 2279; https://doi.org/10.3390/plants15152279 - 25 Jul 2026
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Abstract
Chromium (Cr) contamination poses a serious threat to agricultural productivity and food safety, yet effective strategies for mitigating Cr toxicity under practical cultivation conditions remain limited. In this study, green-synthesized selenium nanoparticles (SeNPs), prepared from banana peel extract (average particle size: 112.9 nm), [...] Read more.
Chromium (Cr) contamination poses a serious threat to agricultural productivity and food safety, yet effective strategies for mitigating Cr toxicity under practical cultivation conditions remain limited. In this study, green-synthesized selenium nanoparticles (SeNPs), prepared from banana peel extract (average particle size: 112.9 nm), were evaluated against conventional sodium selenite (Na2SeO3) for alleviating Cr(VI) toxicity in Ipomoea aquatica Forssk. grown in a dynamic cyclic hydroponic system. Plants were exposed to 20 mg L−1 Cr(VI) and treated with SeNPs or Na2SeO3 at 1 and 10 mg L−1, respectively, for a duration of one week. Green-synthesized SeNPs exhibited excellent colloidal stability (zeta potential: −35.5 mV) and an amorphous spherical morphology. Relative to the Cr-only treatment, 10 mg L−1 SeNPs almost completely restored plant biomass and root growth, decreased shoot Cr accumulation by 62.2%, and recovered total chlorophyll content to 94.8% of the control level. By comparison, 10 mg L−1 Na2SeO3 restored total chlorophyll to 74.2% of the control and reduced shoot Cr accumulation by 50.6%. SeNPs also elicited a stronger antioxidant response, markedly increasing SOD, POD, and CAT activities while significantly lowering H2O2, MDA, and proline levels, demonstrating a greater capacity than selenite to alleviate Cr-induced oxidative damage. SeNPs also restored the uptake of essential mineral nutrients (N, P, K, Ca, and Mg), improved soluble sugar and protein contents, and promoted selenium biofortification in edible shoots. Although both selenium forms alleviated Cr-induced growth inhibition and oxidative damage, SeNPs consistently outperformed Na2SeO3 owing to their higher bioavailability and sustained physiological activity. Overall, this study demonstrates that green-synthesized SeNPs provide an efficient and sustainable strategy for reducing Cr accumulation while simultaneously improving crop growth, antioxidant capacity, and nutritional quality under agriculturally relevant hydroponic conditions, highlighting their potential for safer food production and agricultural waste valorization. Full article
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