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Keywords = Na+ transporter

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25 pages, 11894 KB  
Article
FERONIA Modulates Translational Buffering Capacity of Ribosome-Associated Gene Module in Salt-Stressed Tomato Roots
by Junyu Bai, Yanfen Fan, Ruolin Yang and Jingquan Yu
Plants 2026, 15(15), 2278; https://doi.org/10.3390/plants15152278 - 25 Jul 2026
Abstract
Salt stress limits tomato productivity, yet how translational regulation contributes to root salt adaptation remains poorly understood. We integrated RNA-seq and ribosome profiling in wild-type (WT) and FERONIA (FER) mutant (fer) tomato roots under control and 150 mM NaCl conditions. In [...] Read more.
Salt stress limits tomato productivity, yet how translational regulation contributes to root salt adaptation remains poorly understood. We integrated RNA-seq and ribosome profiling in wild-type (WT) and FERONIA (FER) mutant (fer) tomato roots under control and 150 mM NaCl conditions. In WT roots, the salt response was predominantly transcript-driven, but a 29-gene ribosome-associated module showed reduced RNA abundance alongside increased translational efficiency, indicating selective translational buffering. FER loss-of-function disrupted this balance, constitutively elevating ribosome occupancy of ribosome-associated genes while reducing basal expression of stress- and ion-transport-related genes; under salt treatment, fer also showed stronger ion-transport transcriptional responses but weaker translational efficiency responses of this module. WT salt stress further shifted ribosome allocation from the 5 untranslated region (UTR) toward the coding sequence (CDS), an effect attenuated in fer, alongside positive coupling between uORF and CDS translational efficiency. Feature modeling identified sequence and structural predictors of uORF translation, including weaker local RNA folding near the start codon and specific amino acid and stop codon preferences. Together, these results reveal FER-associated changes in ribosome-associated translational buffering during tomato root salt responses. Full article
(This article belongs to the Section Plant Genetics, Genomics and Biotechnology)
12 pages, 2237 KB  
Article
Free-Supported Geopolymer-Based NaA Zeolite Membrane for PGME Dehydration Purification
by Xia Deng, Lemin Huang, Yunfei Mo and Xuemin Cui
Separations 2026, 13(8), 210; https://doi.org/10.3390/separations13080210 - 25 Jul 2026
Abstract
Self-supported gradient bilayer NaA zeolite membranes were hydrothermally converted from geopolymer precursors for pervaporative dehydration of the propylene glycol methyl ether (PGME)/water azeotrope. XRD confirms crystallization of amorphous geopolymer into NaA zeolite. The 9 mm-thick membrane comprises a thin surface NaA-selective layer and [...] Read more.
Self-supported gradient bilayer NaA zeolite membranes were hydrothermally converted from geopolymer precursors for pervaporative dehydration of the propylene glycol methyl ether (PGME)/water azeotrope. XRD confirms crystallization of amorphous geopolymer into NaA zeolite. The 9 mm-thick membrane comprises a thin surface NaA-selective layer and a porous substrate providing low-resistance feed transport. The membrane shows preferential water adsorption and separates via the adsorption–diffusion mechanism. Performance depends on feed temperature and PGME concentration. At 30 °C and 95 wt% PGME, it achieves a flux of 1.1 kg·m−2·h−1 and an ultrahigh separation factor of 2695, far exceeding conventional PVA membranes. This low-cost membrane demonstrates excellent potential for lab-scale organic solvent dehydration. Full article
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24 pages, 5390 KB  
Article
Mechanistic Insights into Selenium-Induced Tolerance of Cucumber (Cucumis sativus L.) Seedlings to Alkaline Stress
by Wenjing Nie, Xiangyu Wang, Peng Qiao, Haiyang Zhang, Junlin Li, Rao Fu, Haiman Ge, Weijun Yin and Chi Zhang
Plants 2026, 15(15), 2271; https://doi.org/10.3390/plants15152271 - 24 Jul 2026
Viewed by 156
Abstract
Saline–alkali stress severely restricts cucumber (Cucumis sativus L.) growth by disrupting ion balance, water status, photosynthesis, and redox homeostasis. Here, we examined the effects of exogenous selenium (Se) on cucumber seedlings exposed to NaHCO3 stress. Se supplementation improved plant growth and [...] Read more.
Saline–alkali stress severely restricts cucumber (Cucumis sativus L.) growth by disrupting ion balance, water status, photosynthesis, and redox homeostasis. Here, we examined the effects of exogenous selenium (Se) on cucumber seedlings exposed to NaHCO3 stress. Se supplementation improved plant growth and root activity and partly restored photosynthetic performance by maintaining chlorophyll content, gas exchange, and chlorophyll fluorescence. Se reduced oxidative injury through lower ROS and MDA levels and by enhancing antioxidant enzyme activities together with the AsA–GSH cycle. In parallel, Se moderated ion toxicity by limiting Na+ accumulation, increasing K+, Ca2+, and Mg2+ uptake, and stimulating H+-ATPase and H+-PPase activities. Enhanced TCA cycle activity and organic acid accumulation suggested improved energy metabolism and ionic regulation. Se also promoted osmotic adjustment via soluble sugars and proline, and upregulated aquaporin genes (PIP1;2 and PIP2;4) to sustain water transport. Moreover, Se increased salicylic acid levels by upregulating CsPAL and CsICS, pointing to a role of SA signaling in Se-induced tolerance. Full article
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17 pages, 2297 KB  
Article
Sustainable Chloride Removal from Conservation Electrolytes Using Alkali-Activated Carbon Nanofiber-Supported BiOCl in Capacitive Deionization
by Aoze Li, Fanghui Pan, Liping Sun, Mengying Xu, Ran Zhang, Fei Yu and Jie Ma
Nanomaterials 2026, 16(15), 907; https://doi.org/10.3390/nano16150907 - 24 Jul 2026
Viewed by 138
Abstract
Chloride-induced corrosion is a major threat to excavated bronze artifacts, yet conventional alkaline desalination requires repeated solution replacement and generates secondary chemical waste. Herein, a series of BiOCl-loaded carbon nanofiber composites (CNFs@BiOCl-X) were prepared by KOH activation followed by hydrothermal growth of BiOCl, [...] Read more.
Chloride-induced corrosion is a major threat to excavated bronze artifacts, yet conventional alkaline desalination requires repeated solution replacement and generates secondary chemical waste. Herein, a series of BiOCl-loaded carbon nanofiber composites (CNFs@BiOCl-X) were prepared by KOH activation followed by hydrothermal growth of BiOCl, aiming to develop regenerable electrodes for chloride removal in capacitive deionization systems. Alkali activation regulated the surface roughness, oxygen-containing functional groups, hydrophilicity, and BiOCl loading of CNFs, while the three-dimensional conductive network helped immobilize BiOCl nanostructures and buffer the volume variation associated with reversible Bi/BiOCl conversion. Electrochemical analyses confirmed the pseudocapacitive chloride-storage behavior of the composites, with ion removal governed by the coupled effects of BiOCl redox activity, charge transfer, and interfacial ion transport. In a fixed-electrode membrane capacitive deionization system, CNFs@BiOCl-2 exhibited the best overall performance, delivering a salt adsorption capacity of 100.44 mg g−1 at 1.4 V and retaining 93.17% of its desalination capacity after 35 cycles at 1.2 V. For flow-electrode capacitive deionization, the higher BiOCl-loading CNFs@BiOCl-5 showed superior utilization of active sites and achieved 94.75% NaCl removal from a 1000 mg L−1 solution within 3 h, with an average desalination rate of 15.48 μg cm−2 min−1 and an energy consumption of 0.88 kWh kg−1-NaCl. These findings demonstrate that rationally matching BiOCl loading with electrode configuration enables efficient and sustainable chloride management, offering a promising electrochemical strategy for conservation electrolytes and related desalination applications. Full article
(This article belongs to the Section Environmental Nanoscience and Nanotechnology)
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26 pages, 11003 KB  
Article
Assessing Seawater Intrusion in a Multilayer Gulf Coast Aquifer System Using Hydrogeochemical–Isotopic Evidence and SEAWAT
by Olaoluwa Oluwaniyi, Bailing Li, Jonathan Riddle, Geoffrey R. Tick, Alain Plattner and Yong Zhang
Water 2026, 18(15), 1784; https://doi.org/10.3390/w18151784 - 23 Jul 2026
Viewed by 221
Abstract
Seawater intrusion (SWI) increasingly threatens coastal aquifers that serve growing communities, emphasizing the need for generalizable, process-based diagnostics. We evaluate SWI in a multilayer coastal aquifer system in southern Alabama, USA, by integrating three groundwater sampling campaigns during spring–early summer 2025 (March, April, [...] Read more.
Seawater intrusion (SWI) increasingly threatens coastal aquifers that serve growing communities, emphasizing the need for generalizable, process-based diagnostics. We evaluate SWI in a multilayer coastal aquifer system in southern Alabama, USA, by integrating three groundwater sampling campaigns during spring–early summer 2025 (March, April, and June), hydrogeochemical–isotopic analyses, and variable-density SEAWAT modeling. This study couples HFE–Gibbs–isotope diagnostics with hydraulic-head-constrained SEAWAT modeling to characterize seawater intrusion extent and process state in a multilayer coastal setting. Groundwater major ions and δ18O/δ2H indicate dominantly meteoric, rock-weathering waters (Ca–HCO3 inland) with localized Na–Cl near the coast; most samples plot in the rock dominance field, and stable isotope values cluster near the meteoric water line. A 3-D SEAWAT model (seven layers, 150 × 150 m cells), calibrated to available groundwater head observations using PEST, indicates that modeled intrusion is concentrated at depth in confined Miocene units, whereas shallow groundwater sampled from the unconfined zone remains largely fresh based on hydrogeochemical and isotopic evidence. Because chloride observations were used primarily for interpretation rather than direct transport calibration, the modeled deep salinity distribution is treated as a process-based estimate rather than a uniquely calibrated chloride field. To quantify exposure and process state, we introduce two indicators: a Depth-Weighted Intrusion Index (DWII) integrating the extent and intensity of the transition zone across layers, and an Ion-Exchange Departure Index (IEDI) capturing normalized Na–Cl departures from conservative mixing due to cation exchange. Predominantly negative IEDI values indicate reverse exchange with weaker intensity during spring freshening and only localized forward exchange episodes. Beyond the site-specific findings, the DWII and IEDI introduced in this study provide practical tools for detecting and quantifying subtle seawater intrusion in low-salinity coastal aquifers and may be applicable to other coastal aquifer systems with similar hydrogeological settings. Full article
(This article belongs to the Section Hydrology)
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20 pages, 10183 KB  
Article
Separation of Taurine and Sodium Sulfate from Simulated Mother Liquor by Electrodialysis and Process Optimization
by Huiting Zhu, Douyan Cao and Jigang Zhao
Membranes 2026, 16(8), 253; https://doi.org/10.3390/membranes16080253 - 23 Jul 2026
Viewed by 185
Abstract
To address the high energy demand and product losses associated with separating taurine from sodium sulfate (Na2SO4) in the ethylene oxide route to taurine, electrodialytic desalination of a simulated taurine/Na2SO4 mother liquor was investigated. The effects [...] Read more.
To address the high energy demand and product losses associated with separating taurine from sodium sulfate (Na2SO4) in the ethylene oxide route to taurine, electrodialytic desalination of a simulated taurine/Na2SO4 mother liquor was investigated. The effects of applied voltage, circulation flow rate, and initial feed concentration on the desalination rate, product purity, taurine recovery, current efficiency, specific energy consumption, and membrane productivity were evaluated. Ion-transport behavior was further examined using COMSOL Multiphysics® 6.3. At 14 V, a circulation flow rate of 200 L/h, and initial taurine and Na2SO4 concentrations of 100 and 68 g/L, respectively, the process achieved a taurine purity of 99.8% and a recovery of 98.9%. The specific electrical energy consumption of the electrodialysis unit was 0.56 kWh/kg Na2SO4, and the membrane productivity was 0.49 kg Na2SO4/(m2·h). One of the key findings of this work is that the low-salt stage plays a dominant role in process economics. This observation led to a simple endpoint-control strategy. The ED operation is stopped when the Na2SO4 concentration in the dilute compartment drops to about 2 g/L. This avoids prolonged operation under inefficient conditions and reduces ED energy consumption by 16.5%. Within the binary simulated system and the defined cost boundary, the proposed process provided a higher taurine recovery and a lower estimated separation cost than the conventional crystallization route. These results demonstrate the laboratory-scale feasibility of electrodialysis for desalting simulated taurine mother liquor. Full article
(This article belongs to the Special Issue Electrodialysis and Novel Electro-Membrane Processes)
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14 pages, 5918 KB  
Article
CFTR Deficiency Disrupts Bladder Function Through Ion Imbalance and Inflammatory–Apoptotic Signaling
by Kuo-Chiang Chen, Huei-Jiun Tzeng, Meng-Lin Chang, Chellappan Praveen Rajneesh, Han-Sun Chiang, Wen-Chun Hsu, Hung-Chune Maa and Yi-No Wu
Int. J. Mol. Sci. 2026, 27(14), 6448; https://doi.org/10.3390/ijms27146448 - 20 Jul 2026
Viewed by 199
Abstract
The cystic fibrosis transmembrane conductance regulator (CFTR) is a key determinant of epithelial ion transport; however, its role in lower urinary tract physiology remains unclear. This study investigated whether CFTR deficiency disrupts bladder function by altering ionic homeostasis and downstream cellular signaling. Bladder [...] Read more.
The cystic fibrosis transmembrane conductance regulator (CFTR) is a key determinant of epithelial ion transport; however, its role in lower urinary tract physiology remains unclear. This study investigated whether CFTR deficiency disrupts bladder function by altering ionic homeostasis and downstream cellular signaling. Bladder function was evaluated in 12-month-old CFTR knockout (Cftr/) and wild-type mice (n = 8/group) using in vivo cystometry and ex vivo detrusor contractility assays, in addition to histological, immunofluorescence, electrolyte, and Western blot analyses. Cftr/ mice exhibited unstable cystometric profiles with irregular voiding cycles and significantly increased peak voiding pressure, indicating impaired bladder coordination. In contrast, depolarization-induced detrusor contractility was markedly reduced (0.3855 g vs. 1.908 g in wild type), despite preserved bladder morphology and unchanged α-SMA expression. CFTR deficiency was further associated with selective electrolyte imbalance (decreased Na+ and Cl, increased K+). At the molecular level, reduced cytokeratin 20 expression (p < 0.01) suggested urothelial impairment, whereas increased COX-2 (p < 0.05) and caspase-9 (p < 0.01) indicated activation of inflammatory and apoptotic pathways. Collectively, these findings demonstrate that CFTR deficiency disrupts bladder functional homeostasis through integrated effects on ion balance, detrusor excitability and cellular signaling. Full article
(This article belongs to the Section Molecular Pathology, Diagnostics, and Therapeutics)
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26 pages, 14547 KB  
Article
Chloride-Induced Corrosion and Mixed-Potential Control of BiHCF Electrodes in Saline Electrolytes
by Sebastian Salazar-Avalos, Luis Cáceres, Alvaro Soliz, Pedro Pablo Zamora, Klaus Bieger, Douglas Olivares, Atul Sagade, Maritza Páez, Víctor M. Jiménez-Arévalo, Norman Toro and Felipe M. Galleguillos-Madrid
Int. J. Mol. Sci. 2026, 27(14), 6389; https://doi.org/10.3390/ijms27146389 - 18 Jul 2026
Viewed by 234
Abstract
Bismuth hexacyanoferrate (BiHCF), a Prussian blue analogue containing redox-active Fe–CN–Bi coordination motifs, was investigated as a model electrode for cathodic processes in chloride-rich saline and hypersaline electrolytes. Rather than evaluating BiHCF solely as a hydrogen evolution catalyst, this work focuses on the coupled [...] Read more.
Bismuth hexacyanoferrate (BiHCF), a Prussian blue analogue containing redox-active Fe–CN–Bi coordination motifs, was investigated as a model electrode for cathodic processes in chloride-rich saline and hypersaline electrolytes. Rather than evaluating BiHCF solely as a hydrogen evolution catalyst, this work focuses on the coupled electrochemical and interfacial processes that govern its response in NaCl solutions and natural brines from seawater, reverse osmosis (RO) reject, and high-altitude brine environments. Structural characterization by SEM–EDS, XRD and FTIR confirmed the formation of crystalline BiHCF with rod-like micrometric morphology and preserved cyanide coordination. Linear sweep voltammetry under controlled hydrodynamic conditions revealed a progressive cathodic displacement of the mixed potential with increasing NaCl concentration, together with a marked suppression of oxygen reduction kinetics at high chloride activity. Mixed-potential analysis showed that HER kinetics remain comparatively less sensitive to salinity than ORR, whereas the anodic contribution associated with BiHCF oxidation becomes strongly affected by chloride-induced surface transformation. Post-electrochemical characterization indicates the formation of a BiOCl-rich surface layer when the BiHCF is in contact with a hypersaline electrolyte during the cathodic subprocess (close to 0 mVSHE), which accounts for the transition from active mixed-control behaviour to a passivated interfacial regime. Density functional theory calculations suggest that elementary water activation and hydrogen-forming steps at Bi sites are intrinsically feasible, implying that the experimentally observed overpotentials originate primarily from transport, interfacial resistance and chloride-driven passivation rather than from an unfavourable molecular reaction pathway. These findings provide a mechanistic framework for understanding Bi-based Prussian blue analogue electrodes in non-purified saline electrochemical systems and highlight the dual role of chloride as both a charge-compensating electrolyte species and a passivating reactant. Full article
(This article belongs to the Special Issue Molecular Mechanism in Corrosion)
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43 pages, 9179 KB  
Article
Precursor-Dependent Performance of FA-, GBFS-, MK- and WBP-Based Geopolymer Mortars: Effects of NaOH Molarity and Thermal Curing on Strength, Transport Properties and Cost Efficiency
by Damla Nur Çelik, Rüya Kılıç Demircan, Güneş Mutlu Avinç and Gökhan Kaplan
Polymers 2026, 18(14), 1723; https://doi.org/10.3390/polym18141723 - 13 Jul 2026
Viewed by 292
Abstract
This study investigated the effects of precursor type, NaOH molarity, and thermal curing temperature on the performance of geopolymer mortars produced using fly ash (FA), ground granulated blast-furnace slag (GBFS), metakaolin (MK), and waste brick powder (WBP). Mortars were activated using 12 M [...] Read more.
This study investigated the effects of precursor type, NaOH molarity, and thermal curing temperature on the performance of geopolymer mortars produced using fly ash (FA), ground granulated blast-furnace slag (GBFS), metakaolin (MK), and waste brick powder (WBP). Mortars were activated using 12 M and 16 M NaOH solutions at a constant Na2SiO3/NaOH ratio and thermally cured at 60 and 90 °C for 24 h. Physical, mechanical, transport, microstructural, and cost-performance properties were evaluated. The results demonstrated that the optimum activation conditions strongly depended on precursor type. MK-based mortars cured at 16 M–90 °C exhibited the best overall performance, achieving the lowest apparent porosity (6.1%) and water absorption (5.4%), and the highest oven-dry density (2194 kg/m3), compressive strength (25.8 MPa), and flexural strength (3.43 MPa). These mortars also exhibited the lowest capillary water absorption (1.88 kg/m2), the highest electrical resistivity (248.00 kΩ·cm), and the lowest charge passed (177 C), indicating enhanced pore refinement and chloride-ion penetrability. In contrast, GBFS performed better under milder activation conditions, whereas WBP showed lower performance due to its coarser, more crystalline structure. SEM/EDS analyses confirmed that the formation of dense aluminosilicate gel governed matrix quality and overall performance. Overall, MK activated at 16 M and cured at 90 °C provided the most favorable balance between technical performance and cost efficiency. Full article
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19 pages, 3327 KB  
Article
Effect of Ti Content on Passive Film Formation and Growth Kinetics in Ni50Nb50−xTix Metallic Glasses
by A. G. Soriano Carranza, L. A. Sánchez, P. Roncagliolo, A. Espinoza Vázquez, C. Ramos, G. A. Lara, G. González, F. J. Rodríguez Gómez and I. A. Figueroa
Metals 2026, 16(7), 768; https://doi.org/10.3390/met16070768 - 10 Jul 2026
Viewed by 299
Abstract
In this study, the effect of Ti content on the electrochemical behavior and passive film growth mechanism of Ni50Nb50−xTix (x = 10, 15, and 20 at.%) metallic glasses produced via melt spinning was investigated. Structural characterization via X-ray [...] Read more.
In this study, the effect of Ti content on the electrochemical behavior and passive film growth mechanism of Ni50Nb50−xTix (x = 10, 15, and 20 at.%) metallic glasses produced via melt spinning was investigated. Structural characterization via X-ray diffraction (XRD) and transmission electron microscopy (TEM) confirmed the fully glassy nature and chemical homogeneity of all alloys. Electrochemical performance was evaluated in a 3.5 wt.% NaCl solution using potentiodynamic and potentiostatic polarization, as well as electrochemical impedance spectroscopy (EIS). The results showed that increasing Ti content improves corrosion resistance by reducing corrosion and passive current densities and increasing charge-transfer resistance. The Ni50Nb30Ti20 alloy exhibited the best electrochemical performance, associated with the formation of a more stable and protective passive film. The passive film growth mechanism was analyzed using the High-Field Model (HFM). A linear relationship between inverse capacitance and anodic potential confirmed that ionic transport through the oxide layer governs passive film growth. The calculated electric field strength decreased systematically with increasing Ti content, suggesting the formation of passive films with lower defect density and enhanced barrier properties. These results demonstrate that adding Ti significantly enhances the passivation behavior of Ni-Nb metallic glasses and promotes the formation of stable oxide films with improved corrosion resistance in chloride-containing environments. Full article
(This article belongs to the Special Issue Feature Papers in Entropic Alloys and Meta-Metals (2nd Edition))
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21 pages, 3200 KB  
Article
Sustainable Valorization of Coal Gasification Slag via Low-Temperature Alkaline Activation for Efficient Cd2+ Removal: Performance, Mechanism, and Life Cycle Assessment
by Haicheng Zhao, Lihui Gao, Xinmeng Jiang and Yijing Zhang
Separations 2026, 13(7), 198; https://doi.org/10.3390/separations13070198 - 8 Jul 2026
Viewed by 307
Abstract
Coal gasification slag (CGS), a massive industrial solid waste, possesses inherent adsorptive potential that remains underutilized due to pore blockage by amorphous siliceous phases. Conventional modification strategies typically rely on energy-intensive high-temperature processes. Herein, we report a facile, low-temperature alkaline activation approach to [...] Read more.
Coal gasification slag (CGS), a massive industrial solid waste, possesses inherent adsorptive potential that remains underutilized due to pore blockage by amorphous siliceous phases. Conventional modification strategies typically rely on energy-intensive high-temperature processes. Herein, we report a facile, low-temperature alkaline activation approach to transform CGS into a high-efficiency adsorbent (denoted NCGS) for Cd2+ removal. Sodium hydroxide (NaOH) solution was employed under mild conditions (90 °C) to selectively etch siliceous species, thereby generating a porous architecture and enriching surface oxygen-containing functionalities. Orthogonal experimental design identified optimal synthesis parameters (1 mol/L NaOH, solid–liquid ratio of 1:30 g/mL, 12 h), yielding NCGS with significantly enhanced textural properties. The adsorption isotherm was well described by the Langmuir model, with a maximum capacity of 87.06 mg/g at pH 6.0, while kinetic studies indicated the adsorption process could be described by pseudo-second-order kinetic model. Comprehensive characterization via SEM-EDS, FTIR, and XPS elucidated a multi-mechanistic adsorption pathway mainly involving ion exchange (Na+/Cd2+) and coordination complexation. Life cycle assessment analysis revealed that NCGS production generates 11.23 kg CO2 eq emissions, with transportation accounting for 88%. This study presents an energy-saving and environmentally friendly strategy to unlock the adsorptive potential of CGS, providing a highly promising waste-based adsorption material for the remediation of Cd2+-contaminated water. Full article
(This article belongs to the Special Issue Solid Waste Recycling and Strategic Metal Extraction)
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13 pages, 10920 KB  
Article
High-Value Utilization of Residue After Ammonia-Extraction Aluminum from Coal Fly Ash: A Novel Strategy for Preparation of Lithium-Ion Battery Anodes
by Yingjiao Fang, Yusheng Wu and Laishi Li
Appl. Sci. 2026, 16(13), 6804; https://doi.org/10.3390/app16136804 - 7 Jul 2026
Viewed by 186
Abstract
Silicon suboxide (SiOx) has been extensively investigated as an anode material for lithium-ion batteries. However, its low electrical conductivity and significant volume expansion during cycling have hindered its practical application. Although compounding SiOx with carbon can effectively alleviate these issues, [...] Read more.
Silicon suboxide (SiOx) has been extensively investigated as an anode material for lithium-ion batteries. However, its low electrical conductivity and significant volume expansion during cycling have hindered its practical application. Although compounding SiOx with carbon can effectively alleviate these issues, practical challenges such as complex preparation processes and high production costs still remain. In this study, porous SiOx/C anode materials were synthesized in a single step using residue after acid-extraction aluminum from coal fly ash (high silica slag) as the silicon source and calcium carbide as both the reducing agent and carbon source, in a NaCl-CaCl2 molten salt medium. The intimate interface between SiOx and carbon not only enhances the electrical conductivity of the electrode but also buffers volume expansion, while the porous structure inside the SiOx/C particles facilitates rapid ion transport. The SiOx/C anode fabricated from this material exhibits excellent electrochemical performance and cycling stability: the anode material synthesized at 700 °C for 3 h (denoted as SiOx/C-700-3) retains a reversible specific capacity of 1093.58 mAh g−1 after 1000 cycles at a current density of 0.4 A g−1. Moreover, the optimized SiOx/C-700-3 electrode achieves robust long-cycle stability under a high current density of 2 A g−1, sustaining a reversible capacity of 486.22 mAh g−1 after 800 cycles with an average Coulombic efficiency approaching 99.6%. The method proposed in this work provides a new strategy for the preparation of SiOx/C anode materials and holds great significance for the high-value comprehensive utilization of coal fly ash and the protection of the ecological environment. Full article
(This article belongs to the Special Issue Advanced Functional Materials and Their Applications)
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16 pages, 12956 KB  
Article
Astrocyte Subtype-Specific Expression of the Sodium-Coupled Citrate Transporter SLC13A5 and Citrate Metabolism Genes Across Alzheimer’s Disease Pseudoprogression: A Single-Nucleus RNA Sequencing Analysis of the Human Middle Temporal Gyrus
by Patricia Fernanda Schuck, Gustavo da Costa Ferreira and Hércules Rezende Freitas
Curr. Issues Mol. Biol. 2026, 48(7), 691; https://doi.org/10.3390/cimb48070691 - 5 Jul 2026
Viewed by 235
Abstract
The sodium-coupled citrate transporter NaCT (SLC13A5) imports extracellular citrate into cells. In the CNS, SLC13A5 is described to be expressed predominantly in neurons. Cytosolic citrate levels rely on citrate generated in mitochondria and imported from other CNS cells, regulating intermediary metabolism [...] Read more.
The sodium-coupled citrate transporter NaCT (SLC13A5) imports extracellular citrate into cells. In the CNS, SLC13A5 is described to be expressed predominantly in neurons. Cytosolic citrate levels rely on citrate generated in mitochondria and imported from other CNS cells, regulating intermediary metabolism and supplying acetyl-CoA for lipid synthesis and histone acetylation. Despite evidence for NaCT’s role in neurometabolic homeostasis, its transcriptional behavior across Alzheimer’s disease (AD) progression and across astrocyte subtypes remains uncharacterized at single-cell resolution. We analyzed single-nucleus RNA sequencing data from 1,378,211 nuclei across 84 donors in the Seattle Alzheimer’s Disease Brain Cell Atlas (SEA-AD) Middle Temporal Gyrus dataset to profile SLC13A5 and seven citrate metabolism genes across a continuous AD pseudoprogression score. SLC13A5 expression was restricted to astrocytes (~20% prevalence) and concentrated in the Astro 2 supertype (24.0%), a homeostatic subtype characterized by low C3 (1.6%) and CD44 (5.5%), which expanded with pseudoprogression (Spearman rho = +0.345, FDR < 0.001). The A1-reactive Astro 3 supertype, where SLC13A5 prevalence was 0.87%, declined concordantly (rho = −0.393). Opposing compositional and transcriptional forces produced apparent stability in overall SLC13A5 prevalence. SLC13A3 and ACO1 showed progressive donor-level declines correlating with Braak stage and Thal phase (rho range: −0.307 to −0.349, FDR < 0.01). APOE4 carriers exhibited lower SLC13A5 prevalence specifically within Astro 2 nuclei (median 17.6% vs. 25.9%; Wilcoxon p = 0.025), though this association did not survive multivariate regression. No difference in Astro 2 SLC13A5 expression was detected between cognitively resilient and expected-AD donors with equivalent high Braak burden (p = 0.888). Contrary to the prevailing description of NaCT as a neuronal transporter, SLC13A5 transcript in the SEA-AD MTG dataset was detected almost exclusively in astrocyte nuclei, concentrated in the homeostatic Astro 2 subtype, and maintained as this subtype expanded with advancing AD pathology. Because these are nuclear transcript measurements, they delimit where SLC13A5 mRNA is detectable rather than establishing the cellular site of NaCT protein or activity, which requires in situ validation. Full article
(This article belongs to the Special Issue Molecular Dialogues: Signaling Networks of the Aging Nervous System)
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23 pages, 4355 KB  
Article
A Compound Feed Additive Improves Saline–Alkaline Stress Tolerance in Nile Tilapia (Oreochromis niloticus) Through Regulation of Hepatic Metabolism, Osmoregulation, and Intestinal Health
by Jinquan Fan, Yuxi Yan, Yuxing Huang, Liqiao Chen and Xiaodan Wang
Animals 2026, 16(13), 2073; https://doi.org/10.3390/ani16132073 - 5 Jul 2026
Viewed by 346
Abstract
Saline–alkaline aquaculture is a promising strategy to alleviate freshwater shortages; however, such environments severely impair fish growth and physiological homeostasis. Nutritional regulation has been proposed to improve stress tolerance, yet the benefits of single additives are often limited under the multifactorial challenges imposed [...] Read more.
Saline–alkaline aquaculture is a promising strategy to alleviate freshwater shortages; however, such environments severely impair fish growth and physiological homeostasis. Nutritional regulation has been proposed to improve stress tolerance, yet the benefits of single additives are often limited under the multifactorial challenges imposed by saline–alkaline conditions. Therefore, a compound feed additive (CFA) consisting of glutamate, cholesterol, β-glucan, myo-inositol, zinc methionine, and curcumin was developed and evaluated in Nile tilapia (Oreochromis niloticus). To assess the robustness and practical applicability of this nutritional strategy, three independent feeding trials were conducted using different commercial basal diets as validation systems. Within each dietary system, fish were reared under freshwater (FW), saline–alkaline water (SAW), or saline–alkaline water supplemented with CFA (SAW+CFA). Saline–alkaline stress significantly reduced WG and SR, increased FCR, and elevated VSI and HSI, indicating impaired growth performance and metabolic burden. These changes were accompanied by increased serum glucose and ion concentrations (Na+, K+, Cl), elevated ammonia levels, and reduced crude protein content. Dietary CFA improved growth and feed utilization under saline–alkaline conditions. It enhanced hepatic glycogen content and reduced serum glucose levels. Meanwhile, it downregulated glycolysis-related genes (hk, pfk1, pk) and upregulated genes involved in gluconeogenesis and the pentose phosphate pathway (g6pase, pc, g6pdh), indicating altered glucose metabolism and improved energy homeostasis. Saline–alkaline stress induced oxidative stress, apoptosis, and histological damage in the liver, whereas CFA alleviated these alterations by reducing MDA levels, enhancing antioxidant enzyme activities (CAT, GSH-Px, T-SOD) and suppressing apoptosis-related genes (caspases, p53, c-myc). In addition, CFA alleviated saline–alkaline stress-induced gill structural damage and reduced serum ion concentrations while modulating ion transport-related gene expression, suggesting improved osmoregulatory capacity. It also enhanced ammonia metabolism and transport, as reflected by reduced serum ammonia levels and altered expression of related genes. Furthermore, Saline–alkaline stress impaired intestinal structure and function, whereas CFA improved intestinal villus structure, increased digestive enzyme activities (amylase, trypsin, lipase), and suppressed pro-inflammatory genes (il-1β, il-8). Importantly, similar beneficial response patterns were observed across the three independently analyzed dietary systems. Overall, CFA improved saline–alkaline adaptability of Nile tilapia and was associated with improvements in energy metabolism, oxidative homeostasis, osmoregulation, ammonia detoxification, and intestinal function, providing a practical nutritional strategy for saline–alkaline aquaculture. Full article
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Article
Feather RNA: A Non-Invasive Approach for Transcriptomic Profiling in Live Chickens
by Nadia Stoppani, Federica Raspa, Edoardo Fiorilla, Sandra Maione, Achille Schiavone, Cecilia Mugnai and Dominga Soglia
Vet. Sci. 2026, 13(7), 653; https://doi.org/10.3390/vetsci13070653 - 5 Jul 2026
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Abstract
In this study, an exploratory transcriptomic investigation was conducted to evaluate the feasibility of using feather transcriptomics to detect sex differences and gene responses to physiological changes in chickens. Feathers represent a promising non-invasive biological source of RNA, as the feather pulp of [...] Read more.
In this study, an exploratory transcriptomic investigation was conducted to evaluate the feasibility of using feather transcriptomics to detect sex differences and gene responses to physiological changes in chickens. Feathers represent a promising non-invasive biological source of RNA, as the feather pulp of growing feathers contains living cells capable of active transcription. Growing feathers were collected from 150-day-old male and female chickens (Bionda Piemontese, a slow-growing breed) raised under a free-range system and fed two finisher diets differing in lipid content: low-lipid (LL, ether extract 3.6%) and high-lipid (HL, ether extract 9.3%) diets. RNA was extracted from feather pulp, and 12 pools were subjected to whole RNA-Seq analysis. The study was designed as 2 × 2 factorial experiments investigating the effects of diet and sex on gene expression. A total of 17,360 transcripts were detected and used for downstream analyses. Differential gene expression and functional enrichment analyses were performed. The main effects of diet and sex were estimated with an additive design using the DEseq2 package, while for the sex-specific diet analyses, subgroup comparisons were conducted on the RaNA-Seq platform. The analysis of the main effect of diet reveals that three genes associated with ether lipid metabolism (PLA2G10, PLA2G4F, and ENPP6) were upregulated in chickens fed the HL diet. In roosters, HL feeding significantly altered the expression of APOA1 and SLC27A4, suggesting an effect on lipid transport and metabolic regulation within the PPAR signaling pathway. In contrast, hens showed differential expression primarily in pathways related to apelin signaling, extracellular matrix remodeling, and cardiovascular function, rather than classical lipid metabolism pathways; additionally, gene set enrichment analysis indicated a limited enrichment of linoleic acid metabolism, suggesting secondary involvement of lipid metabolic processes. These findings are consistent with those in the literature reporting sex-related differences between males and females. The results further suggest that transcriptomic responses to dietary lipid supplementation can be investigated through the expression of selected candidate genes in feather pulp. Among the genes identified, PLA2G10, PLA2G4F, ENPP6, APOA1, and SLC27A4 emerged as potential molecular markers associated with dietary treatment, and the importance of sex-dependent transcriptional responses was highlighted. In conclusion, this study demonstrates the potential of feather pulp as a viable source of RNA for transcriptomic analyses in live chickens, providing a minimally invasive alternative to conventional tissue sampling. These preliminary results also support the hypothesis that feathers represent a practical and ethically favorable tissue for future nutrigenomic and genetic improvement studies, ultimately supporting more sustainable poultry production. Full article
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