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19 pages, 6379 KB  
Article
Engineering Pore Accessibility in PVA/Cellulose Nanocrystal/Ca2+ Composite Aerogels for Enhanced Drug Adsorption and Sustained Release
by Zixuan Zhang, Qianqian Wu and Hua Jiang
Gels 2026, 12(9), 791; https://doi.org/10.3390/gels12090791 - 1 Sep 2026
Viewed by 136
Abstract
While poly (vinyl alcohol) (PVA)-based aerogels are promising porous carriers for controlled drug delivery, drying-induced pore collapse generally limits their internal pore accessibility, drug-loading capacity, and release regulation. In this study, duration-controlled tert-butanol (TBA) solvent exchange was developed as a pore-engineering strategy to [...] Read more.
While poly (vinyl alcohol) (PVA)-based aerogels are promising porous carriers for controlled drug delivery, drying-induced pore collapse generally limits their internal pore accessibility, drug-loading capacity, and release regulation. In this study, duration-controlled tert-butanol (TBA) solvent exchange was developed as a pore-engineering strategy to regulate the structure-performance relationship of PVA/cellulose nanocrystal/Ca2+ composite aerogels. This strategy focuses on balancing pore preservation, liquid-accessible pore connectivity, and network densification, instead of simply increasing the total surface area. With an optimized exchange duration, the TBA6 aerogel exhibited a well-preserved porous network. Moreover, its specific surface area and porosity increased from 33.11 to 96.02 m2·g−1 and from 93.93% to 96.03%, respectively. This optimized structure enhanced salicylic acid (SA) loading, elevating the equilibrium adsorption capacity from 40.91 to 61.18 mg·g−1. Release kinetic analysis revealed that the Higuchi constant and the Korsmeyer-Peppas release constant decreased from 18.148 to 12.751 and from 25.070 to 17.283%·h−1/2, respectively, indicating a slower diffusion-regulated release process. Confocal Raman mapping further confirmed that TBA6 promoted a more homogeneous SA distribution within the aerogel matrix and enabled gradual release from the internal porous network. To sum up, controlling solvent-exchange duration is an effective strategy for tuning pore accessibility and diffusion resistance. This study provides new insight into the design of PVA-based composite aerogels for drug-loading and sustained-release applications. Full article
(This article belongs to the Special Issue Advanced Aerogels: From Design to Application (2nd Edition))
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14 pages, 3338 KB  
Article
Dual-Network Poly(vinyl alcohol)/Sodium Alginate Hydrogel Photonic Crystals Films for Visual Sensing
by Shaoqian Zhang, Xuanjun Ning, Zhangyi Qian, Yuting Zhang, Yunyan Zhang, Zixuan Zhang, Xiaoxu Zhang, Shuwen Zhang, Lishi Zhang, Cheng Chen and Donghai Lin
Gels 2026, 12(9), 790; https://doi.org/10.3390/gels12090790 - 1 Sep 2026
Viewed by 149
Abstract
Poly(vinyl alcohol) (PVA)/sodium alginate (SA) dual-network hydrogels were prepared via the freeze–thaw method. Tensile testing, electrochemical impedance spectroscopy (EIS), scanning electron microscopy (SEM), and fiber-optic spectroscopy were employed for material characterization, and multiple metal ions were screened to optimize mechanical properties and ionic [...] Read more.
Poly(vinyl alcohol) (PVA)/sodium alginate (SA) dual-network hydrogels were prepared via the freeze–thaw method. Tensile testing, electrochemical impedance spectroscopy (EIS), scanning electron microscopy (SEM), and fiber-optic spectroscopy were employed for material characterization, and multiple metal ions were screened to optimize mechanical properties and ionic conductivity. The results showed that, at PVA:SA mass ratio of 2:1, the hydrogel achieved 163% elongation and 0.18 MPa tensile strength. Ca2+ crosslinking formed an enhanced structure with mechanical properties of 170% elongation and 0.21 MPa strength, and ionic conductivity (0.69 S/m). Combined with colloidal photonic crystal (PC) templates, the PVA/SA-PC film exhibited an inverted opal structure, showing sensitive color response (green to red) and diffraction red-shift toward Ca2+. The conductive film could power a small bulb, demonstrating potential for portable visual sensing applications. Full article
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16 pages, 2044 KB  
Article
Simulation-Guided Design and Synthesis of Functionalized Lactose-Crosslinked Degradable Molecularly Imprinted Polymer Nanoparticles for Sialic Acid Recognition
by Yining Li, Siqi Wang, Peifeng Li, Yinghan Zhao, Jin Chen, Ziyi Lin, Xintong Xu and Yi Ge
Polymers 2026, 18(17), 2068; https://doi.org/10.3390/polym18172068 - 26 Aug 2026
Viewed by 239
Abstract
Aberrant cell-surface sialylation is widely associated with cancer progression and provides an accessible molecular feature for biosensing and targeted delivery. However, engineering molecularly imprinted polymer nanoparticles (nanoMIPs) that combine selective sialic acid (SA) recognition with controlled degradability and cytocompatibility remains challenging. In this [...] Read more.
Aberrant cell-surface sialylation is widely associated with cancer progression and provides an accessible molecular feature for biosensing and targeted delivery. However, engineering molecularly imprinted polymer nanoparticles (nanoMIPs) that combine selective sialic acid (SA) recognition with controlled degradability and cytocompatibility remains challenging. In this study, a simulation-guided strategy was used to develop hydrolytically degradable SA-imprinted nanoMIPs incorporating a functionalized lactose-based crosslinker with cleavable ester linkages. Molecular docking and quantum-chemical calculations identified N-isopropylacrylamide (NIPAM), acrylamide (AAm), and N-hydroxyethyl acrylamide (HEAA) as complementary functional monomers and established an optimized SA:NIPAM:AAm:HEAA molar ratio of 1:1:2:1. The resulting nanoMIPs were spherical and nanoscale and exhibited pH-dependent hydrolytic mass loss that was more pronounced under mildly acidic conditions than at physiological pH. Compared with non-imprinted nanoparticles, the nanoMIPs displayed substantially enhanced SA binding, with a maximum binding capacity of 89.38 μmol g−1 and an imprinting factor of approximately 4.2, together with preferential recognition of SA over the selected competing molecules. MTT assays using MCF-7, HeLa, and HaCaT cells showed cell viability above 80% after 24 h exposure to 500 μg mL−1, indicating favorable short-term cytocompatibility. By integrating computationally optimized, multicomponent SA recognition with a carbohydrate-derived, hydrolytically degradable crosslinking strategy, this work addresses the coupled requirements of binding-site fidelity and material degradability within a single nanoMIP platform. These findings establish a materials-level foundation for future SA-directed biosensing and targeted delivery systems in cancer-relevant applications. Full article
(This article belongs to the Section Smart and Functional Polymers)
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31 pages, 38537 KB  
Article
Microstructural and Surface Energy Evaluation of Concrete Coatings Modified with Methyl Ester and Stearic Acid
by Robert Hunek, Martyna Janek and Wojciech Franus
Materials 2026, 19(16), 3493; https://doi.org/10.3390/ma19163493 - 18 Aug 2026
Viewed by 239
Abstract
The purpose of this paper is to determine the influence of the stearic acid and methyl esters on the properties of protective coatings applied to reinforced concrete objects. The evaluation of protective effectiveness included compositional analysis (XRD, XRF), surface properties (contact angle, surface [...] Read more.
The purpose of this paper is to determine the influence of the stearic acid and methyl esters on the properties of protective coatings applied to reinforced concrete objects. The evaluation of protective effectiveness included compositional analysis (XRD, XRF), surface properties (contact angle, surface energy, UV resistance), soiling resistance, roughness, and surface morphology (SEM). The scanning microscopy SEM images showed a relatively uniform distribution of resin on the concrete surface. The lateral dimensions of the epoxy-rich surface domains ranged from 8 μm to 40 μm. All analysed samples exhibited a very similar chemical composition, in which SiO2 was the dominant component. In situ tests were conducted on an operating reinforced-concrete cooling tower. Among the investigated coating systems, ER1 + SA exhibited the highest observed mean apparent static water contact angle (CA) of 131°. A strong inverse empirical relationship was observed between the apparent contact angle and average surface roughness. UV ageing caused small numerical decreases in contact angle for most systems. After one year of operation, the ER2 epoxy coating modified with methyl esters was the best-preserved of the analysed variants. Full article
(This article belongs to the Section Construction and Building Materials)
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18 pages, 6798 KB  
Article
Nanoscale Calcium Fertilizer Modulates Pathogenicity of Bacterial Soft Rot Pathogen (Pectobacterium aroidearum) in Konjac (Amorphophallus konjac) Through Suppressing of Virulence Factors and Enhancing Plant Defense
by Yan Huang, Huan Yang, Xianan Guo, Qiang Xiao, Dengguo Tang, Zhijian Long, Boya Wang, Xin Zhao, Shanglian Hu, Xuegang Luo, Yu Zhang and Ying Cao
Horticulturae 2026, 12(8), 1032; https://doi.org/10.3390/horticulturae12081032 - 18 Aug 2026
Viewed by 386
Abstract
Amorphophallus spp., valued as both crops and medicinal plants, are highly susceptible to soft rot disease, causing substantial yield and economic losses during cultivation and storage. Calcium nanoparticle (CaNP) fertilizer not only has the potential to enhance crop yields but also plays a [...] Read more.
Amorphophallus spp., valued as both crops and medicinal plants, are highly susceptible to soft rot disease, causing substantial yield and economic losses during cultivation and storage. Calcium nanoparticle (CaNP) fertilizer not only has the potential to enhance crop yields but also plays a crucial role in the control of crop pests and diseases. However, its application in the control of soft rot disease in konjac has not yet been investigated. In this study, the antibacterial efficacy of CaNP fertilizer against the typical soft rot pathogen P. aroidearum MY11 in Amorphophallus konjac (A. konjac) was investigated. It was found that CaNP fertilizer significantly inhibited the growth, motility ability and the activity of cell wall-degrading exoenzymes of P. aroidearum MY11. Transmission electron microscopy revealed that the morphology of bacterial cells treated with CaNPs did not change significantly, but significant particle deposition was observed within the cells. Furthermore, CaNPs pretreatment could reduce the reactive oxygen species (ROS) content, activate the antioxidant enzyme system, and enhance the photosynthetic capacity of A. konjac plants. qRT-PCR analysis revealed that CaNPs pretreatment might enhance the resistance of A. konjac plants to the soft rot pathogen MY11 by activating the jasmonic acid (JA), salicylic acid (SA) signaling pathway and the cell wall stress response pathway. This research provides a new candidate for nanopesticides that can be used to control the bacterial soft rot disease of konjac. Full article
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17 pages, 1099 KB  
Article
Optimizing RNA Delivery Strategies for Gilthead Seabream (Sparus aurata) SaB-1 Cells
by Sara Veiga-Rúa, Álvaro J. Arana, Alba Salgado-Roo, Catarina Allegue, Alberto Cuesta, Paulino Martínez, Laura Sánchez and Diego Robledo
Fishes 2026, 11(8), 466; https://doi.org/10.3390/fishes11080466 - 10 Aug 2026
Viewed by 258
Abstract
Aquaculture is the world’s fastest-growing food production sector, yet it faces major challenges, including limited understanding of the biology of farmed species. In this context, cell lines are becoming increasingly relevant for studying complex traits and their underlying genetic basis. The in vitro [...] Read more.
Aquaculture is the world’s fastest-growing food production sector, yet it faces major challenges, including limited understanding of the biology of farmed species. In this context, cell lines are becoming increasingly relevant for studying complex traits and their underlying genetic basis. The in vitro application of molecular tools—such as RNA interference and genome editing—can help disentangle the molecular basis of target traits. However, the lack of protocols for in vitro manipulation is limiting progress in the field. Here, we optimized RNA transfection protocols in SaB-1 cells derived from gilthead seabream, one of the most important farmed species in Mediterranean aquaculture. Despite its importance, in vitro research on this species has been scarce to date. Our results show that RNA delivery in this cell line can be achieved using either electroporation or FUGENE®-SI-based chemical transfection, although electroporation resulted in lower survival (around 35% versus 76% for chemical transfection). Finally, as a proof-of-concept, both delivery strategies were tested for CRISPR/Cas9-mediated gfap gene editing, which was achieved with efficiencies of around 10%. This study provides useful methodological advances for functional genomics in aquaculture, offering RNA delivery that enables genome-editing strategies and can accelerate molecular research and trait improvement in gilthead seabream. Full article
(This article belongs to the Special Issue Functional Gene Analysis and Genomic Technologies in Aquatic Animals)
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23 pages, 13460 KB  
Article
Genome-Wide Identification of the Ca2+-ATPase Gene Family and Functional Analysis of MdACA39 in Resistance to Alternaria alternata in Malus domestica
by Yingjun Hou, Mingzhi Guan, Wenhui Wang, Wenfang Li, Zonghuan Ma, Xin Li, Cunwu Zuo, Juan Mao and Baihong Chen
Plants 2026, 15(16), 2421; https://doi.org/10.3390/plants15162421 - 8 Aug 2026
Viewed by 317
Abstract
The calcium ion-transporting ATPase (Ca2+-ATPase) gene family maintains plant intracellular Ca2+ homeostasis and regulates growth, development and stress immunity; however, its functions remain poorly characterized in Malus domestica. Here, we performed a genome-wide identification of apple Ca2+-ATPase [...] Read more.
The calcium ion-transporting ATPase (Ca2+-ATPase) gene family maintains plant intracellular Ca2+ homeostasis and regulates growth, development and stress immunity; however, its functions remain poorly characterized in Malus domestica. Here, we performed a genome-wide identification of apple Ca2+-ATPase genes and obtained 45 members, which were classified into MdACA (39) and MdECA (6) subfamilies and unevenly distributed on 14 chromosomes. Phylogenetic analysis of Ca2+-ATPase genes from Malus domestica, Arabidopsis thaliana, and Oryza sativa classified these proteins into five subgroups. The ACA and ECA subfamilies were highly conserved across species, whereas Group D was apple-specific. Collinearity and Ka/Ks analyses indicated that segmental duplication and purifying selection dominated the evolution of apple Ca2+-ATPase genes. Promoter cis-element prediction uncovered numerous regulatory elements related to phytohormone signaling, growth, development and stress defense. Codon usage bias analysis indicated that AUG (methionine) was the dominant codon. Tissue expression profiles showed differential expression of apple Ca2+-ATPase genes in various organs. Quantitative real-time PCR (qRT-PCR) assays demonstrated widespread responses of Ca2+-ATPase genes to Alternaria alternata infection, exogenous CaCl2, salicylic acid (SA) and methyl jasmonate (MeJA), among which MdACA39 was strongly induced under all treatments. Subcellular localization verified that MdACA39 resides on the plasma membrane. Moreover, transient overexpression of MdACA39 significantly enhanced apple resistance to A. alternata, likely due to the activation of SA, MeJA and Ca2+ signaling-mediated immune pathways, the induction of disease resistance-related genes, and elevated antioxidant enzyme activity. Collectively, this study systematically characterizes the apple Ca2+-ATPase family and identifies MdACA39 as a key regulator of fungal resistance, providing valuable gene resources for dissecting Ca2+ signaling-mediated disease resistance in apple. Full article
(This article belongs to the Section Plant Genetics, Genomics and Biotechnology)
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11 pages, 10416 KB  
Article
TEM Analysis of Orientational Domain Evolution Triggered by Structural Phase Transition in Bi0.25Ca0.75MnO3 Ceramics
by Changjiang Nie, Hengxue Wang, Zhihong Chen, Junyan Wang, Huaqing Xiao and Yang Liu
Crystals 2026, 16(8), 520; https://doi.org/10.3390/cryst16080520 - 7 Aug 2026
Viewed by 221
Abstract
The structural phase transition and associated orientational domain configurations in perovskite-type BixCa1−xMnO3 ceramics were investigated in this work. A series of BixCa1−xMnO3 solid solutions with x = 0.05, 0.25, 0.33 were [...] Read more.
The structural phase transition and associated orientational domain configurations in perovskite-type BixCa1−xMnO3 ceramics were investigated in this work. A series of BixCa1−xMnO3 solid solutions with x = 0.05, 0.25, 0.33 were synthesized, and Bi0.25Ca0.75MnO3 with moderate orthorhombic lattice distortion was selected as the representative sample for systematic TEM characterization. Upon cooling from high temperature, the material undergoes a symmetry-lowering transition from the cubic phase with Pm3¯m space group to the orthorhombic phase with Pnma space group. Selected-area electron diffraction (SAED) and bright-field TEM observations reveal the formation of multiple orientational domains, including both 90° and 120° configurations, within individual grains. High-resolution TEM (HRTEM) further confirms the coexistence of three distinct domain orientations at the atomic scale, with well-defined lattice fringes and domain boundaries. The reciprocal-space orientational relationships derived from SAED patterns demonstrate that these domains originate from the symmetry breaking of the parent cubic lattice during the phase transition. These findings provide direct crystallographic insight into the domain structures of BCMO, and such microstructural features are essential for revealing the structural stability and intrinsic functional behaviors of BCMO manganites. Full article
(This article belongs to the Section Polycrystalline Ceramics)
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16 pages, 5705 KB  
Article
Sodium Alginate Microencapsulation of an Umami Peptide Fraction (F2) from Goose Bone Paste: Preparation and Reduced Apparent Gastric-Phase Release
by Binghan Chen, Yaguang Xu, Xiuwen Zhang, Feng Lü, Daoying Wang, Ningning Xie, Jingjun Li and Zongyuan Zhen
Foods 2026, 15(15), 2763; https://doi.org/10.3390/foods15152763 - 6 Aug 2026
Viewed by 294
Abstract
Goose bone paste is an underutilised poultry-processing by-product and a potential source of taste-active peptides. A nominal 1–3 kDa peptide fraction (F2), operationally designated an umami peptide fraction by analogy with comparable bone-hydrolysate fractions reported in the literature, was isolated from a neutral-protease [...] Read more.
Goose bone paste is an underutilised poultry-processing by-product and a potential source of taste-active peptides. A nominal 1–3 kDa peptide fraction (F2), operationally designated an umami peptide fraction by analogy with comparable bone-hydrolysate fractions reported in the literature, was isolated from a neutral-protease hydrolysate by sequential ultrafiltration and encapsulated in sodium alginate (SA) microcapsules using extrusion–dripping ionic gelation. Single-factor screening identified the following formulation conditions: 2.0% (w/v) SA, 2.5% (w/v) CaCl2, 0.3% (w/v) SE-15, a core-to-wall mass ratio of 0.3, and a preparation temperature of 50 °C. A verification batch prepared under these conditions gave an encapsulation efficiency of 75.44%, with the ±1.07% denoting the SD of three technical determinations from that batch. The dried microcapsules had a moisture content of 2.98 ± 0.21% and passable flowability. The mean particle diameter was 856 ± 52 μm, with a within-batch coefficient of variation of 5.56 ± 0.28%; a complete particle-size distribution was not recorded. In pepsin-free simplified simulated gastric fluid, the apparent release from the microcapsules rose from about 6% at 1 h to about 13% at 5 h, whereas the apparent detection ratio of free F2 rose from about 56% to about 99%. The calculated concentrations fell at or below the validated limit of quantification, the microcapsule-group absorbances lay near the photometric floor of the instrument, and only three sampling times were used. These percentages and the kinetic fits are therefore qualitative to semi-quantitative. The data support only the relative statement that alginate encapsulation lowered the apparent release of F2 under the tested acidic conditions. They do not establish an exact release rate, an error estimate for the microcapsule group, or a specific release mechanism. Full article
(This article belongs to the Section Meat)
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21 pages, 12576 KB  
Article
Preparation, Characterization, and pH-Responsive Intestinal Release Properties of Gel Beads Encapsulating Sea Cucumber Mouthpart Peptides
by Yige Wu, Lijun Hu, Yue Li, Tiantian Hao, Zhidong Song, Gongming Wang, Chunna Jiao and Jian Zhang
Mar. Drugs 2026, 24(8), 261; https://doi.org/10.3390/md24080261 - 28 Jul 2026
Viewed by 402
Abstract
Sea cucumber mouthpart peptides (SCPs) are marine bioactive peptides with considerable application potential. However, their oral delivery remains challenging because of their poor stability and low intestinal bioavailability. To develop a delivery system for SCPs with gastric protection and pH-responsive intestinal sustained-release properties, [...] Read more.
Sea cucumber mouthpart peptides (SCPs) are marine bioactive peptides with considerable application potential. However, their oral delivery remains challenging because of their poor stability and low intestinal bioavailability. To develop a delivery system for SCPs with gastric protection and pH-responsive intestinal sustained-release properties, double-layer gel beads (SCP-BMs) were fabricated through ionic gelation, with SCPs as the core material and sodium alginate (SA) and chitosan (CS) as the wall materials. The preparation conditions of the gel beads were optimized using single-factor experiments and response surface methodology (RSM). The optimized gel beads were then characterized for their morphology, thermal stability, in vitro gastrointestinal release behavior, and antioxidant activity. The results showed that the optimal preparation conditions were 1.67% (w/v) sodium alginate, 0.96% (w/v) chitosan, and 2.16% (w/v) CaCl2. Under the optimized conditions, the encapsulation efficiency (EE) reached 94.33%, significantly higher than that of the single-layer gel beads (SCP-SMs, 58.61%). Structural characterization showed that SCP-BMs exhibited a more compact structure than SCP-SMs, along with improved thermal stability. In vitro release and antioxidant assays demonstrated that SCP-BMs exhibited better gastric protection, pH-responsive intestinal release, and higher 2,2-diphenyl-1-picrylhydrazyl (DPPH) and 2,2′-azino-bis-3-ethylbenzothiazoline-6-sulphonic acid (ABTS) radical scavenging activity compared with SCP-SMs. This study demonstrated that the SA/CS double-layer wall material system effectively improved the encapsulation efficiency, structural stability, and intestinal release behavior of SCP gel beads. These findings provide a feasible strategy for the development of SCP delivery systems and offer a theoretical basis for the high-value utilization of sea cucumber byproducts. Full article
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22 pages, 26396 KB  
Article
Effect of High-P Iron Ores on the Phases Developed During Sintering
by Isis R. Ignacio, Natalie A. Ware, Mark I. Pownceby, Nathan A. S. Webster and Aaron Torpy
Minerals 2026, 16(8), 770; https://doi.org/10.3390/min16080770 - 24 Jul 2026
Viewed by 430
Abstract
This study investigates the effects of phosphorus (P) on the phases developed during sintering and their impact on the stability of key phases in iron ore sinter, particularly the silico-ferrite of calcium and aluminum (‘SFCA’) series of phases. Two complementary systems were studied: [...] Read more.
This study investigates the effects of phosphorus (P) on the phases developed during sintering and their impact on the stability of key phases in iron ore sinter, particularly the silico-ferrite of calcium and aluminum (‘SFCA’) series of phases. Two complementary systems were studied: an industrially representative blend of natural iron ores (JSM) and a synthetic high-purity SFCA analogue (SA) system designed to promote controlled SFCA formation. Phosphorus was added as hydroxyapatite (HA) at levels of 0.5, 1.0, 1.5 and 5 wt.%. To simulate a standard sintering profile, experiments were conducted over a range of temperatures for 3 min in a controlled low-oxygen-potential atmosphere of pO2 = 5 × 10−3 atm. A modified Bond Abrasion test was used to evaluate the tumble index (TI) strength of the samples, and the chemistry, mineralogy and microstructure of all sintered products were analyzed. Results indicated that all P-doped JSM samples fired within the temperature range of 1300 to 1330 °C met the minimum strength requirement (TI = 80%) for producing high-quality sinters. Adding small to medium amounts of HA (≤1.5 wt.%) to both compositions had a limited impact on the overall mineral phases. Conversely, adding a high amount of HA (5 wt.%) encouraged the creation of Ca–Si–P phases. Analysis of the microstructure, minerals, and microchemistry indicated that P tended to segregate phases rich in phosphorus by interacting with calcium oxide and silica. The findings from the study highlight that at the low levels of P typically found in iron ores, there is no significant impact on the strength, mineralogy and phases formed during sintering. Full article
(This article belongs to the Section Mineral Processing and Extractive Metallurgy)
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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 742
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, 1508 KB  
Article
Priming Broad Bean Seeds with Ascorbic, Citric, Nitric, and Salicylic Acids Improves Seedling Tolerance and Alleviates Cr (VI) Toxicity
by Mohammed Bouhadi, M’hammed El Kouali, Fatima-Zahra Falah, Ayoub Lahmidi, Nora Baouahi, Siham Elmachrafi, Marija Polić Pasković, Igor Pasković, Laila Bennani and Hassan Fougrach
Crops 2026, 6(4), 69; https://doi.org/10.3390/crops6040069 - 17 Jul 2026
Viewed by 854
Abstract
Heavy metal stress severely impairs global agricultural productivity, a challenge exacerbated by rising industrial activities. To mitigate chromium (Cr) toxicity in crops, this study evaluated the potential of seed priming with four distinct acids, ascorbic acid (AA), citric acid (CA), nitric acid (NA), [...] Read more.
Heavy metal stress severely impairs global agricultural productivity, a challenge exacerbated by rising industrial activities. To mitigate chromium (Cr) toxicity in crops, this study evaluated the potential of seed priming with four distinct acids, ascorbic acid (AA), citric acid (CA), nitric acid (NA), and salicylic acid (SA), on broad bean (Vicia faba L.) seedlings exposed to 50 ppm Cr(VI). Cr(VI) exposure alone severely compromised development, reducing root and shoot fresh biomass by 47% and 52.3% and lengths by 60.8% and 62.19%, respectively. This growth inhibition was mirrored by a massive drop in total soluble sugars (over twofold in shoots and threefold in roots) and a twofold spike in toxic hydrogen peroxide (H2O2) accumulation. However, acidic priming agents effectively protected the seedlings from this oxidative crisis. The co-application of these effectors limited the inhibitory effects of Cr(VI), increasing biomass up to twofold and reducing H2O2 levels by around 32% in roots and 26% in shoots. This reduction in oxidative damage subsequently alleviated cellular stress, restoring protein content (by up to 70.72% in shoots under AA) and bringing catalase (CAT) and ascorbate peroxidase (APX) activities back toward baseline levels, reducing them by more than 50% compared to the unprimed Cr(VI) control. Notably, regarding bioaccumulation, only AA priming significantly limited heavy metal uptake, reducing chromium accumulation by 36.5% in roots and 26.5% in shoots. This unique protection is likely linked to a potential chemical reduction of mobile Cr(VI) near the root boundaries and the regulation of internal osmoprotectant systems. These findings suggest that seed priming with these effectors, especially AA, offers a highly scalable, low-cost, and sustainable strategy for enhancing crop tolerance in heavy-metal-polluted soils. Full article
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21 pages, 1748 KB  
Article
Discursive Power, Social Sustainability, and Ageing in Place in a Coastal Queensland Suburb: An Exploratory Citizen Science Case Study
by Na Xiao, Bo Xia, Qing Chen, Kristy Volz and Laurie Buys
Sustainability 2026, 18(13), 6889; https://doi.org/10.3390/su18136889 - 7 Jul 2026
Viewed by 379
Abstract
Background: Contemporary older adults, especially the baby boomer generation, expect to actively shape their communities rather than passively receive services. Supporting ageing in place is a key issue for social sustainability, as communities need to remain inclusive, accessible, and liveable for ageing populations. [...] Read more.
Background: Contemporary older adults, especially the baby boomer generation, expect to actively shape their communities rather than passively receive services. Supporting ageing in place is a key issue for social sustainability, as communities need to remain inclusive, accessible, and liveable for ageing populations. While participatory approaches are increasingly promoted, implementation remains top–down and expert-driven. Older adults often express their experiences of the built environment through everyday language rich in emotion, memory, and sensory details, yet these forms of knowledge are typically dismissed as informal or subjective. As a result, their lived spatial experiences remain institutionally invisible in age-friendly planning and design. Methods: This exploratory case study analysed textual comments submitted by older adults in a coastal suburb in Queensland through a participatory Citizen Science initiative. An integrative framework combining GIS mapping, content analysis (CA), sentiment analysis (SA), and critical discourse analysis (CDA) was used to examine how older adults describe, evaluate, and negotiate their built environments. Results: GIS mapping showed that older adults chose to document familiar, accessible public spaces, such as parks, civic precincts, and transport corridors, reflecting routine-based patterns of use. Content analysis revealed a focus on modest but essential built environment features, including shaded seating, footpaths, signage, and pedestrian crossings, which supported comfort, safety, and social engagement. Sentiment analysis found that 67% of comments were positive and 18% neutral, indicating broad satisfaction but also strategic emotional framing. CDA identified three exploratory interpretive patterns, Affective Evaluation, Narrative Anchoring, and Modal Negotiation, through which older adults expressed emotion, belonging, and concern within this limited corpus. Conclusions: Ageing in place depends not only on physical infrastructure but also on discursive inclusion, that is, whether older adults’ everyday ways of speaking are heard and recognised in participatory planning. This study shows that older adults actively shape spatial meaning through emotion, memory, and caution, and that their language carries both experiential insight and civic intention. Recognising these discursive signals may help inform more responsive, age-inclusive, and socially sustainable participatory planning. Full article
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43 pages, 23995 KB  
Review
Redox Regulation of Plant–Root-Knot Nematode Interactions: From ROS-Mediated Immunity to Sustainable Resistance
by Jung-Wook Yang, Ho Soo Kim and Yun-Hee Kim
Antioxidants 2026, 15(7), 853; https://doi.org/10.3390/antiox15070853 - 6 Jul 2026
Cited by 1 | Viewed by 739
Abstract
Root-knot nematodes (RKNs; Meloidogyne spp.) are among the most destructive plant parasites, causing severe yield losses in diverse crops. Reactive oxygen species (ROS), particularly superoxide radicals (O2) and hydrogen peroxide (H2O2), are central regulators of [...] Read more.
Root-knot nematodes (RKNs; Meloidogyne spp.) are among the most destructive plant parasites, causing severe yield losses in diverse crops. Reactive oxygen species (ROS), particularly superoxide radicals (O2) and hydrogen peroxide (H2O2), are central regulators of plant–RKN interactions. This review synthesizes current molecular, biochemical, genetic, transcriptomic, and translational evidence showing that the outcome of infection is determined by the spatiotemporal regulation of H2O2 rather than by ROS abundance alone. In resistant interactions, nematode perception activates PTI-associated signaling through selected cell-surface receptor complexes, including some BAK1/SERK3-associated pathways, together with BIK1, Ca2+ signaling, and RBOHD/F, generating a sustained oxidative activity associated with salicylic acid-dependent immune signaling and reduced H2O2-scavenging capacity and coupled to hypersensitive response, lignin and callose deposition, and feeding site restriction. In susceptible interactions, RKNs deploy ROS-targeting effectors such as Mi-CRT, MjTTL5, CATLe, Mj-NEROSs, and CMII to suppress ROS production, enhance antioxidant scavenging, or weaken SA-dependent defense. Evidence from a cyst-nematode system suggests that RBOH-derived ROS can restrict excessive cell death around syncytia; whether an analogous lower-redox requirement exists in RKN-induced giant cells remains unresolved. Finally, redox-based strategies, including CRISPR/Cas editing, host-induced gene silencing, chemical priming, and biocontrol, are discussed as promising approaches for durable and sustainable nematode resistance. Full article
(This article belongs to the Special Issue Advances in Plant Redox Biology Research)
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