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15 pages, 9913 KB  
Article
Study on the Risk of Phosphorus Leaching in Dryland from Typical Purple-Soil Regions and Its Control Mechanisms
by Xiaosong Yang, Jingwen Yu, Yanfen Wang, Yiming Zhao, Kun Wang, Xiaofeng Lu and Lan Zhang
Biology 2026, 15(18), 1658; https://doi.org/10.3390/biology15181658 - 19 Sep 2026
Viewed by 214
Abstract
Phosphorus (P) leaching from dryland from purple soils poses a significant risk to water quality, yet effective mitigation strategies and their underlying microbial mechanisms remain poorly understood. This study aimed to evaluate the efficacy of biochar (B), a silicon-based conditioner (Si), and their [...] Read more.
Phosphorus (P) leaching from dryland from purple soils poses a significant risk to water quality, yet effective mitigation strategies and their underlying microbial mechanisms remain poorly understood. This study aimed to evaluate the efficacy of biochar (B), a silicon-based conditioner (Si), and their combination (BSi) in controlling P leaching, hypothesizing that B would immobilize P while Si would mobilize it. The indoor soil column leaching experiments were conducted with four treatments (CK, B, Si, BSi), measuring leachate P fractions and soil P forms, and employed metagenomic sequencing combined with partial least-squares path modeling (PLS-PM) and Bayesian structural equation modeling (BSEM) to explore microbial functional mechanisms. Results showed that B alone reduced cumulative leaching of inorganic P (IP), organic P (OP), and total P (TP) by a range of 5.4–6.3%, while increasing available phosphorus (Olsen-P) by 39.4% in the surface layer. Si and BSi promoted leaching, with BSi reducing available P sharply, despite raising TP. Metagenomic analysis revealed that B suppressed subsurface IP solubilization genes (e.g., gcd, ppx) and optimized OP mineralization, whereas Si inhibited mineralization via reducing key microbial taxa. BSEM further identified water-soluble P (Water-P) and total nitrogen (TN) as direct positive drivers of inorganic P dissolution. Collectively, the key biological mechanisms for leaching reduction involve inhibiting subsurface IP solubilization, optimizing surface OP mineralization, and enhancing P transport/starvation responses. Collectively, biochar applied alone offers the optimal balance between P retention and crop-available P supply in dryland purple soils, and provides mechanistic insights—through functional gene profiling—that can inform the design of more sustainable P fertilization and leaching control practices. Full article
(This article belongs to the Section Ecology)
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47 pages, 14942 KB  
Article
A Precambrian Rare-Metal Granite Dike as a Natural Experiment: Constraints on Extraction and Quenching at the Melt-Hydrothermal Transition (Salmi Batholith, Karelia, Russia)
by Artem A. Konyshev, Yana O. Alferyeva, Ekatherina N. Sokolova and Vasily D. Shcherbakov
Minerals 2026, 16(9), 923; https://doi.org/10.3390/min16090923 - 7 Sep 2026
Viewed by 294
Abstract
This work is devoted to the investigation of rare-metal granites associated with anorthosite–rapakivi granite rock complexes. This article evaluates the physicochemical conditions that governed the formation of a rare-metal granite dike. It also explores assumptions regarding the geological characteristics of the magmatic chamber, [...] Read more.
This work is devoted to the investigation of rare-metal granites associated with anorthosite–rapakivi granite rock complexes. This article evaluates the physicochemical conditions that governed the formation of a rare-metal granite dike. It also explores assumptions regarding the geological characteristics of the magmatic chamber, describes evidence for liquid immiscibility, and addresses the post-entrapment evolution of hydrosilicate liquids. In addition, new mineralogical data are presented. The methods employed include optical and electron microscopy, Raman spectroscopy, secondary ion mass spectrometry, laser ablation inductively coupled plasma mass spectrometry (LA–ICP–MS), melt inclusion homogenisation experiments, and fluid inclusion study. The investigated granitic dike formed under low pressure (60–110 MPa) and temperatures of about 580–600 °C, from a specific volatile-saturated magma rich in H2O (up to 16.76 wt% in quenched hydrosilicate liquid products) and in F (up to 4.16 wt%) and Li (up to 3804 ppm), as indicated by homogenised melt inclusions. At the time of emplacement, a silicate melt, a probable Ca-fluoride melt, an Mg-Fe Al-Si-rich hydrosilicate liquid (either mutually soluble with or mixed with the inferred Ca-fluoride melt), and an essentially aqueous fluid coexisted. Depolymerisation of the silicate melt and the presence of complex ions probably promoted the dissolution and transport of high field strength elements (HFSE) and large ion lithophile elements (LILE) elements by the Mg-Fe Al-Si-rich hydrosilicate liquid. During the final stage of evolution of the granitic magmatic system, Mg behaved incompatibly because of its negligible partitioning into mica; rather than accumulating in the silicate melt, it entered the hydrosilicate liquid as a major component. The residual silicate melt consequently attained even lower Zr/Hf, Nb/Ta, and Y/Ho ratios than the studied rock. Full article
(This article belongs to the Special Issue Critical Metal Minerals, 2nd Edition)
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26 pages, 2642 KB  
Article
Potassium Silicate Partially Alleviates Salt-Induced Inhibition of Growth, Photosynthetic Performance, PSII Energy Partitioning, and Oxidative Injury in Cucumber Seedlings
by Jun Dong, Jinbo Li, Jinlong Li, Zimo Zhang, Nan Xu, Haixiu Zhong and Lijun Zhou
Horticulturae 2026, 12(9), 1138; https://doi.org/10.3390/horticulturae12091138 - 7 Sep 2026
Viewed by 542
Abstract
Salt stress restricts cucumber seedling establishment by impairing root development, photosynthesis, ion homeostasis, and redox balance. This study examined whether potassium silicate (K2SiO3) could partially alleviate these responses under hydroponic sodium chloride (NaCl) stress. Cucumber seedlings were exposed to [...] Read more.
Salt stress restricts cucumber seedling establishment by impairing root development, photosynthesis, ion homeostasis, and redox balance. This study examined whether potassium silicate (K2SiO3) could partially alleviate these responses under hydroponic sodium chloride (NaCl) stress. Cucumber seedlings were exposed to six treatments: a nutrient-solution control, K2SiO3 alone supplying 1.0 mmol L−1 silicon (Si), 75 mmol L−1 NaCl, and NaCl combined with K2SiO3 supplying 0.5, 1.0, or 2.0 mmol L−1 Si. Growth, root morphology, photosynthetic pigments, gas exchange, chlorophyll fluorescence, photosystem II (PSII) energy partitioning, oxidative injury, antioxidant enzyme activities, osmotic adjustment, and ion status were evaluated at 7 and 14 d. NaCl markedly reduced seedling growth, root development, net photosynthetic rate, PSII photochemical performance, and electron transport, while increasing leaf sodium (Na+), malondialdehyde accumulation, non-photochemical quenching, non-regulated energy loss, proline, and soluble sugar. K2SiO3 partially alleviated these changes. The treatment supplying 1.0 mmol L−1 Si produced the strongest integrated recovery of growth, root activity, photosynthetic performance, PSII function, and oxidative status. The treatment supplying 2.0 mmol L−1 Si resulted in the lowest leaf Na+ concentration and the highest leaf potassium (K+)/Na+ ratio among salt-stressed seedlings but did not produce the greatest growth recovery. These findings suggest coordinated changes in photosynthesis, photochemical energy use, redox status, and ion balance. Because K2SiO3 supplied both Si and K+, the results represent responses to K2SiO3 supplementation rather than Si-specific effects. Full article
(This article belongs to the Special Issue Response of Horticultural Crops to Abiotic Stress)
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29 pages, 4156 KB  
Review
TiO2-Based Photocatalytic Self-Cleaning Coatings for Building Materials: Surface Mechanisms, Performance Metrics, and Outdoor Durability
by Yunzhang Li, Simeng Li, Zhenglin Han and Tao Ding
Coatings 2026, 16(9), 1061; https://doi.org/10.3390/coatings16091061 - 6 Sep 2026
Viewed by 320
Abstract
Building facades and construction materials are continuously exposed to airborne particulate matter, organic pollutants, and microbial colonization, which cause progressive soiling, aesthetic degradation, and structural deterioration while imposing high maintenance and energy burdens. Photocatalytic titanium dioxide (TiO2) has emerged as the [...] Read more.
Building facades and construction materials are continuously exposed to airborne particulate matter, organic pollutants, and microbial colonization, which cause progressive soiling, aesthetic degradation, and structural deterioration while imposing high maintenance and energy burdens. Photocatalytic titanium dioxide (TiO2) has emerged as the most widely studied material for imparting self-cleaning functionality to building surfaces, owing to its ability to mineralize adsorbed contaminants under solar irradiation and to modulate surface wettability. This narrative review provides a structured account of TiO2-based self-cleaning coatings for building materials, organized around three complementary themes: surface mechanisms, performance metrics, and outdoor durability. We first rationalize the two intertwined self-cleaning mechanisms—photocatalytic oxidative degradation and photoinduced superhydrophilicity—and their combination with physically repellent (superhydrophobic/superamphiphobic) wetting states. We then survey the principal coating-design strategies, including morphology and facet engineering, SiO2-TiO2 composites, metal/non-metal doping and heterojunction construction for visible-light activation, and dual-functional photocatalytic–superhydrophobic systems, and their integration into cementitious substrates, natural stone and cultural heritage, and transparent glass/photovoltaic surfaces. The quantitative metrics used to benchmark self-cleaning performance—water contact angle, dye photodegradation, NOx and VOC abatement, and antimicrobial activity—are critically discussed together with the limitations of standardized laboratory tests. Finally, we analyze the weathering-induced deactivation pathways (photocatalyst leaching, surface contamination by soluble salts, and UV aging of organic matrices) and the emerging strategies for durable coatings, including inorganic binders, light-driven hydration, and defect- and heterojunction-engineered photocatalysts. The review concludes with an outlook on the open challenges that must be addressed to translate these coatings from laboratory demonstrations to long-lived, large-scale building applications. Full article
(This article belongs to the Section Thin Films)
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14 pages, 4101 KB  
Article
Field Comparison of Annular and Straight Capillary Wick Irrigation with Drip Irrigation in an Arid Red Globe Vineyard
by Jingkun Zhang, Yongheng Wang, Taiyi Yuan, Yibo Sun and Qingtao Zhang
AgriEngineering 2026, 8(9), 371; https://doi.org/10.3390/agriengineering8090371 - 3 Sep 2026
Viewed by 294
Abstract
Capillary wick irrigation offers a passive means of gradual water delivery, but field evidence comparing wick configurations with conventional drip irrigation remains limited. This study compared annular capillary wick irrigation (AI), straight capillary wick irrigation (SI), drip irrigation (DI), and a non-irrigated rainfall-only [...] Read more.
Capillary wick irrigation offers a passive means of gradual water delivery, but field evidence comparing wick configurations with conventional drip irrigation remains limited. This study compared annular capillary wick irrigation (AI), straight capillary wick irrigation (SI), drip irrigation (DI), and a non-irrigated rainfall-only control (NI) in a Red Globe grapevine field experiment in Ningxia, northwest China. Each irrigated experimental unit consisted of one reservoir supplying three grapevines and received four 90 L irrigation events, corresponding to a seasonal applied irrigation amount of 360 L per experimental unit. The local soil moisture at a monitored 10 cm depth, vegetative growth, berry development, yield, fruit quality traits, physiological indicators, and irrigation water productivity were evaluated. The capillary wick treatments generally showed a more persistent local soil moisture response than the more rapid post-irrigation response under DI. AI had the highest-recorded treatment mean yield (11.97 kg experimental unit−1), irrigation water productivity among the irrigated treatments (0.033 kg L−1), final 100-berry weight (864.49 g), and soluble solids content (18.77%). A 13-indicator AHP–Entropy Weight evaluation ranked AI first (0.8765), followed by SI (0.5129), DI (0.4860), and NI (0.3502); the same treatment order was retained in a sensitivity analysis using mean SPAD readings. Because the archived dataset did not permit consistent reconstruction of experimental unit identity for all response variables, the treatment differences are interpreted descriptively rather than as inferential statistical effects. These results provide preliminary field evidence that annular capillary wick irrigation warrants further engineering evaluation as a delivery configuration, while direct measurements of hydraulic discharge, spatial wetting patterns, and long-term operational reliability are required before its broader application. Full article
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20 pages, 2784 KB  
Article
Genome-Wide Association Study Reveals Novel Loci and Candidate Genes of Vitamin E Content in Sesame (Sesamum indicum L.)
by Zishu Luo, Jianglong Zhou, Yijia Zhang, Huan Li, Rong Zhou, Ting Zhou, Yanxin Zhang, Jun You and Linhai Wang
Antioxidants 2026, 15(9), 1088; https://doi.org/10.3390/antiox15091088 - 29 Aug 2026
Viewed by 400
Abstract
Sesame is a significant oilseed crop whose exceptional oxidative stability is closely associated with its abundant endogenous antioxidants. As one of the most predominant lipid-soluble antioxidants in sesame, vitamin E (VE) plays a critical role in scavenging lipid peroxyl radicals, terminating lipid peroxidation [...] Read more.
Sesame is a significant oilseed crop whose exceptional oxidative stability is closely associated with its abundant endogenous antioxidants. As one of the most predominant lipid-soluble antioxidants in sesame, vitamin E (VE) plays a critical role in scavenging lipid peroxyl radicals, terminating lipid peroxidation chain reactions, and protecting cellular membranes from oxidative damage, thereby maintaining intracellular redox homeostasis and attenuating the development of oxidative stress-related disorders. Although VE is a potent natural antioxidant with significant pharmacological activities in mitigating oxidative stress-related disorders, the genetic mechanisms underlying the natural variation in VE content in sesame remain incompletely understood. Here, variation in VE content was evaluated across 400 sesame accessions grown in two environments. Ultra-high-performance liquid chromatography (UHPLC) analysis revealed that only γ-tocopherol was detected in sesame seeds, with concentrations between 169.33 and 463.31 mg/kg, averaging 316.28 mg/kg. The newly acquired SNP and InDel data from whole-genome resequencing were associated with the phenotypic data, leading to the identification of five significant loci associated with VE content. Comparative transcriptomic profiling of two sesame accessions with distinct VE contents revealed the differential expression of key biosynthetic enzyme genes (such as GGDR, PDS1, VTE2, and VTE4) between the two accessions. By integrating a genome-wide association study with transcriptomic data, two primary candidate effector genes, SINPZ1100015/SiNST1 and SINPZ0901927, were identified, with SiNST1 being particularly prominent. Functional validation further showed that overexpression of SiNST1 in the hairy root of sesame significantly decreased VE content. This investigation advances the comprehension of variations in VE content and the regulatory mechanisms governing its biosynthetic metabolism in sesame, supporting the development of functional sesame varieties for dietary antioxidant supplementation. Full article
(This article belongs to the Section Natural and Synthetic Antioxidants)
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19 pages, 3626 KB  
Article
Endocan Participates in TGF-β/Smad and AKT/ERK Signaling Coordination and lncRNA Modulation in Human Cardiac Fibroblasts
by Federica Aliquò, Alice Pantano, Giulia Giuffrè, Davide Labellarte, Angela Avenoso, Adele Campo, Giovanna Vermiglio, Giuseppe M. Campo, Angela D’Ascola and Michele Scuruchi
Int. J. Mol. Sci. 2026, 27(17), 7745; https://doi.org/10.3390/ijms27177745 - 29 Aug 2026
Viewed by 310
Abstract
Endocan, a soluble dermatan sulfate proteoglycan, is increasingly recognized as a regulator of key cellular pathways in both physiological and pathological contexts. While TGF-β is a central mediator of fibrotic remodeling, the role of endocan in this process remains elusive. By performing a [...] Read more.
Endocan, a soluble dermatan sulfate proteoglycan, is increasingly recognized as a regulator of key cellular pathways in both physiological and pathological contexts. While TGF-β is a central mediator of fibrotic remodeling, the role of endocan in this process remains elusive. By performing a transcriptomic dataset analysis [GSE116250], we found that endocan expression is upregulated and correlates with fibrotic markers in human failing hearts. We investigated the role of endocan in an in vitro model of cardiac fibroblasts stimulated with TGF-β. Our results identified endocan as a TGF-β-responsive gene in primary human cardiac fibroblasts. Indeed, by inhibiting endocan expression using a specific siRNA, we demonstrated that this proteoglycan is required for the full expression of key fibrosis-related genes (Col1a1, α-SMA, MMP-3, and MMP-9) and modulates the expression of long non-coding RNAs (MALAT1, H19 and HOTAIR), which are essential for the epigenetic control of the fibroblast phenotype. These effects depend on the modulation of both canonical (SMAD3) and non-canonical (AKT and ERK1/2) TGF-β pathways. Taken together, these findings indicate that endocan is required for the coordinated activation of canonical and non-canonical TGF-β signaling during fibroblast transdifferentiation and suggest its potential involvement in the molecular mechanisms underlying cardiac fibrosis. Full article
(This article belongs to the Special Issue Molecular and Cellular Research on Cardiac Repair and Regeneration)
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23 pages, 23919 KB  
Article
Effects of V, Nb, Si, Mn, Mo on Microstructural Evolution and Strength–Toughness Balance of P20 Plastic Mold Steel
by Luliang Zhao, Ziwen Li, Zhenguo Hou, Min Yang, Chunqiao Xing, Jie Yan and Zan Yao
Materials 2026, 19(17), 3649; https://doi.org/10.3390/ma19173649 - 27 Aug 2026
Viewed by 293
Abstract
With the continuous development of plastic products toward larger dimensions, higher precision, and extended service life, plastic mold steels are required to simultaneously possess superior wear resistance, strength, and toughness. The effects of five alloying elements (V, Nb, Si, Mo, and Mn) on [...] Read more.
With the continuous development of plastic products toward larger dimensions, higher precision, and extended service life, plastic mold steels are required to simultaneously possess superior wear resistance, strength, and toughness. The effects of five alloying elements (V, Nb, Si, Mo, and Mn) on the microstructural evolution and mechanical properties of P20 plastic mold steel were systematically investigated after air-cooling from 860 °C, followed by tempering at 525 °C, and the underlying strengthening and toughening mechanisms were elucidated. The results revealed that, in the 0.2 V steel, approximately 62.6% of V existed in the form of fine VC carbides after austenitization at 860 °C, effectively inhibiting austenite grain coarsening. The remaining dissolved V atoms subsequently precipitated as nanoscale V–Mo-rich MC-type carbides during tempering, with an average size of less than 50 nm. This precipitation strengthening contributed an estimated strengthening increment of approximately 760 MPa, corresponding to a measured tensile strength increase of 326 MPa relative to the P20. In contrast, in the 0.1 Nb specimen, solubility calculations indicate that over 99% of Nb remains in undissolved NbC particles; TEM observations show these particles range from coarse 1–3 μm to finer 100–200 nm in size. The contribution of coarse NbC particles to material strength improvement is limited. The addition of Mo promoted the formation of abundant nanoscale MoC-type carbides (2–10 nm), which also exhibit a notable precipitation strengthening effect. Meanwhile, Si mainly contributed to solid-solution strengthening, whereas Mn enhanced the strength through solid-solution strengthening and grain refinement. Charpy impact tests demonstrated that, despite the remarkable strengthening induced by nanoscale carbide precipitation in the 0.2 V steel (tensile strength: 1237 MPa), the impact toughness deteriorated severely, dropping to 21 J. This severe toughness loss is proposed to be associated with local stress concentration around the fine carbides, which promotes secondary crack propagation. Similarly, coarse micrometer-sized NbC particles acted as detrimental sites for crack initiation and impaired impact toughness. Comparative analysis indicated that the steels containing 0.75 wt.% Si, 0.7 wt.% Mo, and 1.5 wt.% Mn achieved a favorable balance between strength, ductility, and toughness. In particular, the 0.7 Mo steel exhibited the most outstanding combination of mechanical properties, attaining a tensile strength of 1207 MPa and an impact energy of 136 J. Full article
(This article belongs to the Section Metals and Alloys)
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21 pages, 644 KB  
Article
Diatomite and Fly Ash Enhance Silicon Availability, Nutrient Uptake, and Yield of Sweet Corn in Humid Tropical Sandy Loam
by Worawalun Pacharasirikul, Somchai Anusontpornperm, Suphicha Thanachit and Mutchima Sasirat
Soil Syst. 2026, 10(9), 100; https://doi.org/10.3390/soilsystems10090100 - 25 Aug 2026
Viewed by 430
Abstract
This study evaluated the effects of diatomite (DT) and fly ash (FA) on soil pH, silicon (Si) availability, nutrient partitioning, and sweet corn (Zea mays L. var. saccharata) productivity in sandy loam soil under greenhouse conditions in northeastern Thailand. A 12-week [...] Read more.
This study evaluated the effects of diatomite (DT) and fly ash (FA) on soil pH, silicon (Si) availability, nutrient partitioning, and sweet corn (Zea mays L. var. saccharata) productivity in sandy loam soil under greenhouse conditions in northeastern Thailand. A 12-week pot experiment was conducted using a completely randomized design with DT (6 and 12 g/pot), DT combined with FA (10 and 20% of DT), silicic acid (SA), and a control. Combined DT + FA treatments increased soil pH by up to 17.8% (6.57 to 7.74) and enhanced water-soluble Si by up to 53.6% (51.35 mg/kg), indicating sustained Si release. Sweet corn yield was improved, with the highest cob fresh and dry weights recorded under DT (12 g/pot) + FA (10%) (~30% increase over control). The highest total fresh biomass was observed under DT (6 g/pot) + FA (10%), suggesting enhanced vegetative growth at lower DT rates. Nutrient uptake increased markedly, particularly for N and Si, with Si accumulation mainly seen in straw. These responses reflect integrated effects of Si availability, pH improvement, and nutrient inputs rather than Si alone. Overall, DT + FA improved soil properties and plant performance; however, results from this short-term pot study should be interpreted cautiously. Long-term field studies are required to assess sustainability and environmental risks. Full article
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27 pages, 13533 KB  
Review
Characterization of Solid Electrolyte Interphases on Carbon-Based Negative Electrodes for Lithium-Ion Batteries: Methods, Artifacts, and Correlative Workflows
by Soon-Ki Jeong
Batteries 2026, 12(8), 302; https://doi.org/10.3390/batteries12080302 - 13 Aug 2026
Viewed by 467
Abstract
Solid electrolyte interphase (SEI) characterization is needed to interpret the performance, degradation, and lifetime of graphite and Si-containing carbon-based negative electrodes in lithium-ion batteries. However, SEI claims are often difficult to compare because measured signals, inferred assignments, sample history, and electrode architecture are [...] Read more.
Solid electrolyte interphase (SEI) characterization is needed to interpret the performance, degradation, and lifetime of graphite and Si-containing carbon-based negative electrodes in lithium-ion batteries. However, SEI claims are often difficult to compare because measured signals, inferred assignments, sample history, and electrode architecture are not always clearly separated. This review presents a claim-bounded framework for SEI characterization that distinguishes direct observables from inferred chemical, molecular, structural, morphological, and functional information. Photoelectron spectroscopy methods provide chemical-state and relative-depth-sensitivity constraints; secondary-ion mass spectrometry methods provide fragment and isotope distributions; vibrational spectroscopies support functional-group and local vibrational evidence; nuclear magnetic resonance and molecular mass spectrometry provide molecular or product-level constraints; and microscopy, tomography, and atomic force microscopy provide morphology, architecture, local thickness, topography, and mechanical response. Across these methods, rinsing, drying, sputtering, beam exposure, extraction, and limited sampling can alter the observable and therefore the defensible claim. The review emphasizes the distinction between native electrode-associated SEI features and extracted, soluble, or electrolyte-phase products, and between morphology-only evidence and chemically assigned morphology. It concludes by proposing claim-driven correlative workflows and reporting guidance for reproducible interpretation on graphite, Si/graphite, Si/C, and carbon-coated Si architectures where directly studied or present. Full article
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21 pages, 638 KB  
Review
The Biochemical and Genetic Architecture of Geographic Atrophy: The Role of the FHL-1/CFH Axis and the Paradigm of RNA Interference Therapeutics
by Victor Chong
Biomedicines 2026, 14(8), 1809; https://doi.org/10.3390/biomedicines14081809 - 12 Aug 2026
Viewed by 534
Abstract
Geographic atrophy (GA) represents the advanced, non-neovascular (dry) form of age-related macular degeneration (AMD), a chronic, progressive, and currently irreversible neurodegenerative disease of the retina. The clinical consequences of GA are severe; it is characterized by the insidious, expanding loss of the retinal [...] Read more.
Geographic atrophy (GA) represents the advanced, non-neovascular (dry) form of age-related macular degeneration (AMD), a chronic, progressive, and currently irreversible neurodegenerative disease of the retina. The clinical consequences of GA are severe; it is characterized by the insidious, expanding loss of the retinal pigment epithelium (RPE), the overlying photoreceptors, and the underlying choriocapillaris. This state of complete RPE and outer retinal atrophy (cRORA) permanently destroys the neural architecture required for high-acuity central vision. For decades, the pathophysiological etiology of geographic atrophy was framed principally in terms of cumulative oxidative stress, lipid peroxidation, and cellular senescence. However, the foundational understanding of AMD pathophysiology changed substantially following the landmark genomic discoveries published in 2005. Multiple independent genome-wide association studies (GWAS) linked specific single-nucleotide polymorphisms in the CFH gene to a substantially increased risk of developing AMD. The CFH gene encodes Complement Factor H (FH) and its alternative splice variant, Factor H-like protein 1 (FHL-1), which are the primary soluble regulators of the alternative complement pathway. This genetic discovery established GA not merely as a disease of metabolic wear-and-tear, but fundamentally as an immunologic disorder driven by the chronic dysregulation of the innate immune system. With the rapid emergence and clinical validation of targeted gene-silencing technologies, particularly small interfering RNA (siRNA) and antisense oligonucleotides, there is substantial scientific and pharmaceutical interest in modulating the complement cascade at the post-transcriptional level. This narrative review examines the structural biology, spatial partitioning, and pathophysiological roles of the FHL-1/CFH axis in GA focusing on the possibilities of using siRNA as a new potential therapy for GA. Full article
(This article belongs to the Section Drug Discovery, Development and Delivery)
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12 pages, 9659 KB  
Proceeding Paper
Solubility of Metals in Semiconductors: Insights from Iron Silicide
by Sopheap Sam and Hiroshi Nakatsugawa
Chem. Proc. 2026, 21(1), 1; https://doi.org/10.3390/chemproc2026021001 - 6 Aug 2026
Viewed by 610
Abstract
Metal doping is an effective strategy for tuning and improving the transport properties of semiconductors such as iron silicide. However, when the dopant concentration exceeds its solubility limit, secondary metallic phases can form, degrading the desired semiconductor properties and overall material performance. Therefore, [...] Read more.
Metal doping is an effective strategy for tuning and improving the transport properties of semiconductors such as iron silicide. However, when the dopant concentration exceeds its solubility limit, secondary metallic phases can form, degrading the desired semiconductor properties and overall material performance. Therefore, a clear understanding of dopant solubility limits and phase stability is important for optimizing material properties. Here, we investigate the solid solution behaviors of metals in polycrystalline Fe1−xMxSi2 (M = Mn, Co, and Ni) systems. The results show that increasing dopant concentration promotes the formation of metallic secondary phases and limits dopant incorporation into the β matrix. The estimated solubility limits are approximately 6.3% for Mn, 8.8% for Co, and 1.0% for Ni. Beyond the iron silicide system, the combined methodology provides a practical approach for determining dopant solubility in semiconductors, where local compositional saturation may occur before substantial changes in bulk phase fractions become apparent. Full article
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15 pages, 1528 KB  
Article
First-Principles Study on Silicon Stabilization of the Cubic α- and Hexagonal α’-FeAl Phases
by Changming Fang, Zhongping Que and Zhongyun Fan
Metals 2026, 16(8), 832; https://doi.org/10.3390/met16080832 - 30 Jul 2026
Viewed by 444
Abstract
Commercial aluminum (Al) metals contain unavoidable impurities, such as iron (Fe) and silicon (Si). Due to its low solubility and high chemical affinity to Al, Fe exists in the form of Fe-containing intermetallic compounds (Fe-IMCs), which are crucial in solidification processes, determining the [...] Read more.
Commercial aluminum (Al) metals contain unavoidable impurities, such as iron (Fe) and silicon (Si). Due to its low solubility and high chemical affinity to Al, Fe exists in the form of Fe-containing intermetallic compounds (Fe-IMCs), which are crucial in solidification processes, determining the micro-structure and consequently the mechanical performance of the cast parts. Meanwhile, Si, as an impurity or addition, may join the binary Fe-IMCs. Here, we investigate the Si stabilization effects on the frequently observed Al-rich Fe-IMCs in a comprehensive and systematic way using a first-principles density-functional theory (DFT) approach. The study reveals different Si stabilization effects on the cubic α- and hexagonal α’-phase, as well as other binaries: Al12Fe, η-Al6Fe, τ4-, β-, and θ-phases. The enhancement of stability for the α-phase is moderate, while it is strong for the α’-phase. For the stability series (from higher to lower) is θ-Al13Fe4 > η-Al6Fe > α-Al4.75Fe in the binary system, while it becomes τ4-(Al,Si)5Fe > β-Al4.5SiFe > α’-(Al,Si)4.174Fe for the ternary Fe-IMCs. The information obtained here helps understand the formation of Fe-IMCs particles during casting of Al-Si alloys, and the design of novel Al alloys of fine micro-structures and desired mechanical performances of the products from the primary Al and the scraps and wastes. Full article
(This article belongs to the Special Issue Advances in the Study of Metal Crystals)
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16 pages, 4804 KB  
Article
Metal Recovery from Lunar Regolith via Deep Eutectic Solvent Electrolysis for In Situ Resource Utilization
by Vesna S. Cvetković, Nataša M. Petrović, Ksenija Milicevic Neumann, Bernd Friedrich and Jovan N. Jovićević
Materials 2026, 19(14), 3120; https://doi.org/10.3390/ma19143120 - 21 Jul 2026
Viewed by 573
Abstract
Sustaining human presence on the Moon depends on access to strategic metals, which can be achieved by directly utilizing extraterrestrial resources through in situ resource utilization (ISRU). This study presents novel insights and preliminary results into a previously unexplored strategy for metals extraction [...] Read more.
Sustaining human presence on the Moon depends on access to strategic metals, which can be achieved by directly utilizing extraterrestrial resources through in situ resource utilization (ISRU). This study presents novel insights and preliminary results into a previously unexplored strategy for metals extraction from the lunar regolith simulant Lunar Mare Soil (LMS-1) using deep eutectic solvents (DESs). Based on inductively coupled plasma–optical emission spectrometry (ICP-OES) measurements, the solubility of major oxide components of the regolith, SiO2, Al2O3, TiO2, Cr2O3, MgO and FeOT, was investigated in ethaline (choline chloride:ethylene glycol, ChCl:EG) as well as reline (ChCl:Urea). Although both DESs enabled oxide dissolution, reline exhibited significantly higher dissolution efficiency, due to the additional hydrogen-bond donor sites, NH and CO groups from urea, as well as high chloride activity in the reline. Cyclic voltammetry (CV) and square wave voltammetry (SWV) revealed that dissolved metal species in the reline–regolith system undergo complex multivalent redox transitions. The equilibrium potentials of the metals were determined and correlated with the order in which the metals should be electrodeposited on the cathode from an electrolyte containing dissolved lunar regolith. Based on the data from electrochemical measurements, parameters for electrolysis were selected. At less negative overpotentials, the deposit consisted mainly of Si, while Al, Cr, and Fe, along with Si, were electrodeposited at more negative potentials. The results highlight the importance of considering the selective electrochemical extraction of metals from DESs using lunar regolith as the source. Full article
(This article belongs to the Special Issue Extraction and Recycling of Critical Metals)
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Article
A Case Study on the Mineralogical Origins of Zinc Misreporting to an Industrial Pyrite Concentrate and Its Mitigation by Regrinding-Assisted Flotation
by Shiqi Liu, Long Niu, Siyu Chen, Xiang Yao, Feiyu Wang, Kangji Zhao, Xinlei Zhao, Yanhong Wang and Xiaoxia Yang
Minerals 2026, 16(7), 732; https://doi.org/10.3390/min16070732 - 13 Jul 2026
Viewed by 1254
Abstract
The selective separation of sphalerite from Fe-bearing sulphides remains a persistent challenge in the flotation of complex sulphide ores and can lead to Zn misreporting to Fe-bearing concentrates. This study aimed to identify the origins of Zn misreporting to a pyrite concentrate and [...] Read more.
The selective separation of sphalerite from Fe-bearing sulphides remains a persistent challenge in the flotation of complex sulphide ores and can lead to Zn misreporting to Fe-bearing concentrates. This study aimed to identify the origins of Zn misreporting to a pyrite concentrate and to evaluate whether regrinding-assisted flotation could mitigate Zn misreporting. XRF, XRD, zinc phase analysis, flotation experiments, and process mineralogical characterisation were used to determine Zn deportment and evaluate the effect of regrinding on mitigating Zn misreporting to the pyrite concentrate. The results showed that the Zn was mainly associated with sphalerite rather than water-soluble Zn species. Reagent adjustment and additional cleaning stages reduced Zn misreporting moderately, but were insufficient to fully separate Zn-bearing phases from the pyrite concentrate. Process mineralogical characterisation further revealed that Zn was predominantly hosted in sphalerite, which commonly occurred as attached, locked, or disseminated particles associated with pyrite. Under the same Na2SiO3 dosage, regrinding-assisted flotation reduced the Zn grade in the final pyrite concentrate from 0.29% to 0.14%, indicating reduced Zn misreporting. These findings indicate that close sphalerite–pyrite association and incomplete sphalerite liberation were the principal mineralogical factors governing Zn misreporting, while regrinding-assisted flotation provides a practical approach for reducing Zn misreporting to pyrite concentrates. This study provides a process mineralogy-guided approach for diagnosing Zn misreporting and improving impurity control in pyrite-rich concentrate production. Full article
(This article belongs to the Section Mineral Processing and Extractive Metallurgy)
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