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18 pages, 11966 KB  
Article
Towards Sustainable Flood Management: Diagnosing River–Lake Interactions and Proposing a Separation Scheme for the Huaihe River–Hongze Lake System
by Chenguang Xiao and Zengyuan Chai
Sustainability 2026, 18(14), 7338; https://doi.org/10.3390/su18147338 - 17 Jul 2026
Viewed by 262
Abstract
The middle–lower Huaihe River Basin faces persistent flood and waterlogging threats, with river–lake interactions being a critical yet underexplored factor constraining flood discharge capacity. This study investigates the flood discharge capacity and erosion–deposition dynamics in the Bengbu–Hongze Lake reach and proposes sustainable management [...] Read more.
The middle–lower Huaihe River Basin faces persistent flood and waterlogging threats, with river–lake interactions being a critical yet underexplored factor constraining flood discharge capacity. This study investigates the flood discharge capacity and erosion–deposition dynamics in the Bengbu–Hongze Lake reach and proposes sustainable management solutions. By analyzing long-term hydrological data (1954–2020) and cross-sectional measurements (1971–2025), we quantified changes in channel morphology and flood behavior. The results reveal that while upstream inflow has remained stable (annual runoff 20.5–33.3 billion m3), sediment concentration has continuously declined by approximately 80%—from 0.474 kg/m3 in the 1950s to 0.094 kg/m3 in the 2020s. The main channel exhibits persistent incision totaling 135.7 × 106 m3, while floodplains have undergone progressive aggradation of 35.1 × 106 m3, reflecting a sediment-starved river system in geomorphic disequilibrium. Critically, the riverbed leading to Hongze Lake exhibits an adverse slope, rising from –10 m at Fushan to over +9 m at Laozishan, while the lake’s sedimentation has reduced its storage capacity by 29% since the 1980s (from 31.27 × 108 m3 to 22.15 × 108 m3). Despite extensive engineering interventions, significant issues persist—including the backwater effect of Hongze Lake, prolonged high water levels during moderate floods (in 2020, water level at Fushan reached 18.34 m at only 61% of the design discharge), and exacerbated waterlogging in riparian lowlands. Therefore, we advocate for a paradigm shift towards a river–lake separation scheme, specifically, an inner-lake embankment approach. This nature-based solution aims to restore the river’s physical structure and harness its self-shaping morphological function for long-term flood management and ecological sustainability. Our findings provide a quantitative basis for re-evaluating the river–lake relationship and offer a strategic direction for sustainable flood management in highly altered alluvial river systems. Full article
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19 pages, 2874 KB  
Article
Optimizing Ni-N Thin Films: Effects of r.f. Power on Mechanical and Electrochemical Performance
by Andrés González-Hernández, Eugenio Rodríguez, Edgar Onofre-Bustamante, Willian Aperador, Rodolfo Barragán-Ramírez and Martín Flores-Martínez
Solids 2026, 7(4), 36; https://doi.org/10.3390/solids7040036 - 8 Jul 2026
Viewed by 275
Abstract
Corrosion of carbon steel components represents a major economic and safety challenge in industrial applications, motivating the development of protective thin film coatings with optimized deposition parameters. This study investigates the deposition of nickel nitride (Ni-N) thin films on AISI 1016 carbon steel [...] Read more.
Corrosion of carbon steel components represents a major economic and safety challenge in industrial applications, motivating the development of protective thin film coatings with optimized deposition parameters. This study investigates the deposition of nickel nitride (Ni-N) thin films on AISI 1016 carbon steel and silicon (111) wafers by reactive radio-frequency (r.f.) magnetron sputtering at three power levels: 150, 175, and 200 W. Surface color, film thickness, roughness, crystal structure, mechanical properties, and electrochemical behavior were evaluated using optical microscopy, stylus profilometry, atomic force microscopy (AFM), X-ray diffraction (XRD), nanoindentation, and potentiodynamic polarization combined with electrochemical impedance spectroscopy (EIS). Increasing r.f.-power produced systematic surface color changes consistent with variations in film thickness, which ranged from approximately 25.0 to 50.7 nm. Higher deposition power promoted smoother surfaces, with average roughness (Ra) decreasing from 64.28 nm at 150 W to 20.62 nm at 200 W. XRD analysis revealed a monocrystalline Ni3N hexagonal close-packed (HCP) phase at 150 W, transitioning to a dual-phase Ni3N (HCP) and Ni4N face-centered cubic (FCC) microstructure at 175 and 200 W. The highest hardness (11.80 ± 3.34 GPa) was recorded at 150 W, accompanied by pop-in events attributed to dislocation nucleation in the HCP lattice. Electrochemical evaluation in 3.5 wt.% NaCl solution demonstrated that films deposited at 150 and 175 W exhibited corrosion current densities and rates exceeding those of bare steel, confirming that these conditions accelerate rather than inhibit corrosion. Only the film deposited at 200 W achieved superior corrosion protection, with a corrosion current density and rate approximately 50% lower than bare steel, attributed to its denser microstructure and smoother surface morphology. These findings demonstrate that r.f. power is a critical parameter governing the properties of Ni-N thin films, and that careful optimization of deposition conditions is essential before recommending such coatings for industrial corrosion-protective applications. Full article
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16 pages, 5619 KB  
Article
Preparation of Platycodin D Microspheres and Their Protective Effects on Type 2 Diabetes Mellitus
by Jingjing Huang, Xiong Han, Lixia Yang, Qiong Shen, Yuxin Pang and Yanfei Li
Molecules 2026, 31(13), 2305; https://doi.org/10.3390/molecules31132305 - 1 Jul 2026
Viewed by 296
Abstract
The treatment of type 2 diabetes (T2DM) faces numerous challenges. Oral insulin (Ins) and other short-acting compounds still encounter significant obstacles in the hostile gastrointestinal environment, including low bioavailability and rapid metabolic clearance. Platycodin D (PD) is a natural compound with demonstrated hypoglycemic [...] Read more.
The treatment of type 2 diabetes (T2DM) faces numerous challenges. Oral insulin (Ins) and other short-acting compounds still encounter significant obstacles in the hostile gastrointestinal environment, including low bioavailability and rapid metabolic clearance. Platycodin D (PD) is a natural compound with demonstrated hypoglycemic and lipid-lowering effects. In this study, PD was encapsulated using alginate to prepare orally administrable, pH-responsive, gut-targeted gel microspheres (PD@MPs), and their efficacy in improving T2DM prognosis was investigated. In vitro release studies demonstrated that PD@MPs avoided degradation by gastric acid and were released in the intestine. Cell experiments indicated that PD possessed significant antioxidant and anti-apoptotic properties. Masson, immunohistochemistry, and immunofluorescence staining revealed that PD@MPs alleviated inflammation in key metabolic organs and maintained normal pancreatic tissue function and morphology. Western blot analysis assessed the expression of proteins related to hepatic glycogen synthesis, including IRS-1, GLUT2, GSK-3β, and AKT. The research results indicate that the assembly strategy using sodium alginate (SA) as the coating layer has enabled the oral administration of PD and has demonstrated its potential in the treatment of diabetes. Full article
(This article belongs to the Special Issue 30th Anniversary of Molecules—Recent Advances in Food Chemistry)
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17 pages, 8330 KB  
Article
Morphometric and Biochemical Parameters of Apis mellifera Workers Fed on Protein Supplement
by Rasha S. Sakla, Aida A. Abd El-Wahed, Wael Mahmoud Aboulthana and Sobhia S. Sayed
Vet. Sci. 2026, 13(7), 629; https://doi.org/10.3390/vetsci13070629 - 27 Jun 2026
Viewed by 293
Abstract
Nutrition is one of the main challenges facing honey bees, especially during autumn and winter. This work aimed to evaluate the effects of feeding Apis mellifera with a protein-enriched diet (YCPC) compared to a control diet. Development of the hypopharyngeal glands (HPGs), dimensions [...] Read more.
Nutrition is one of the main challenges facing honey bees, especially during autumn and winter. This work aimed to evaluate the effects of feeding Apis mellifera with a protein-enriched diet (YCPC) compared to a control diet. Development of the hypopharyngeal glands (HPGs), dimensions of the second wax mirror, and the stinging apparatus were measured in the two groups. Additionally, key biochemical parameters were assessed in homogenized worker honey bees. No significant differences were observed in hypopharyngeal gland (HPG), acini diameters or surface area, or in the measurement of the stinging apparatus and poison sac, except for a slight decrease in the newly emerged bees. YCPC supplementation significantly elevated total soluble protein content in newly emerged and nurse bees. Lower lipid levels were observed in newly emerged and nurse bees from the supplemented group and higher lipid reserves in were observed in supplemented foragers. No significant variation was observed in total carbohydrate content, except for a significant reduction in supplemented newly emerged bees. Acetyl cholinesterase activity was higher in younger bees and lower in foragers. A slight elevation in α and β-esterase expression was detected in the supplemented group, supporting enhanced detoxification capacity. YCPC enhances the biochemical capacity of honey bees, particularly in the early adult stages. However, glandular and morphological development were not affected. Full article
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16 pages, 2130 KB  
Communication
Milkability in Dairy Species: A Comparative Field Study on Milk Flow Dynamics in Cattle, Buffaloes, Sheep, Goats, and Donkeys Using an Electronic Milk Meter
by Carlo Boselli, Antonella Chiariotti, Valentina D’Onofrio, Maria Concetta Campagna, Giuliano Palocci, Vittoria Lucia Barile and Antonio Borghese
Dairy 2026, 7(3), 42; https://doi.org/10.3390/dairy7030042 - 15 Jun 2026
Viewed by 541
Abstract
Milk flow dynamics during mechanical milking are strongly influenced by species-specific mammary anatomy, milk partitioning between cisternal and alveolar compartments, and milking management. The present study aimed to compare milkability traits across the main dairy species reared in central Italy using a large [...] Read more.
Milk flow dynamics during mechanical milking are strongly influenced by species-specific mammary anatomy, milk partitioning between cisternal and alveolar compartments, and milking management. The present study aimed to compare milkability traits across the main dairy species reared in central Italy using a large dataset collected over 20 years. A total of 7315 animals were included: dairy cows (1103), buffaloes (2870), goats (2399), sheep (754), and donkeys (189). Milk flow curves were recorded using a portable Lactocorder® device. The following traits were analyzed: milk yield (MY), lag time (LT), milk ejection time (MET), total milking time (TMT), peak flow rate (PFR), average flow rate (AFR), plateau phase (PL), bimodal phase (BM), and bimodality incidence (Bimo). Marked interspecific differences emerged. Dairy cows showed the highest MY and PFR, with bimodality occurring in 23.7% of curves. Buffaloes exhibited lower flow rates, prolonged LT, and extended TMT, reflecting their strong dependence on oxytocin-mediated alveolar milk ejection. Sheep demonstrated short milking times and low bimodality (13.5%), consistent with their large cisternal milk fraction. Goats displayed breed-dependent variability, with specialized dairy breeds showing higher PFR and longer TMT. Donkeys produced low milk volumes but exhibited rapid and efficient milk flow, with the lowest incidence of bimodality (7.4%). Overall, milk flow patterns reflected species-specific udder morphology and physiological mechanisms of milk ejection. Although this field-based study faces inherent limitations in environmental and protocol standardization across farms, the resulting long-term dataset remains highly representative. These findings highlight the importance of tailoring milking machine settings and prestimulation protocols to species and breed characteristics to optimize milking efficiency, labor management, and animal welfare. Full article
(This article belongs to the Section Milk Processing)
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28 pages, 9857 KB  
Article
Tamarindus indica Shells Powder Enhances Growth Performance, Hemato-Biochemical Parameters, Nutrient Utilization, and Gut Health in Broiler Chickens
by Thanyarat Somsu, Wandee Udomuksorn, Kasemsiri Chandarajoti, Sathianpong Phoopha, Jiraporn Khanansuk, Suthinee Sangkanu, Chatchai Wattanapiromsakul, Michael Wink and Sukanya Dej-adisai
Vet. Sci. 2026, 13(6), 566; https://doi.org/10.3390/vetsci13060566 - 8 Jun 2026
Viewed by 353
Abstract
Broiler production has frequently faced economic losses due to infectious diseases caused by pathogenic microorganisms. These problems are commonly resolved using antibiotics, but doing so could lead to antibiotic resistance and impair food safety. This study evaluated the effects of a tamarind ( [...] Read more.
Broiler production has frequently faced economic losses due to infectious diseases caused by pathogenic microorganisms. These problems are commonly resolved using antibiotics, but doing so could lead to antibiotic resistance and impair food safety. This study evaluated the effects of a tamarind (Tamarindus indica L.) shell powder (TSP) supplementation on the growth performance and overall health status in broiler chickens. A total of 375 one-day-old male Ross 308 broilers were randomly assigned to five dietary treatment groups in a completely randomized design. Broilers received either a basal diet; antibiotic-supplemented diet; or diet supplemented with TSP at 1 × MIC, 16 × MIC, or 32 × MIC daily for 42 days. The results showed that treatment 4 (TSP 16 × MIC—64 mg per bird) had the best growth performance in broilers. Intestinal permeability measurements assessed using 4 kDa fluorescein isothiocyanate-conjugated dextran (FITC–dextran) showed that broilers fed the treatment 5 (TSP 32 × MIC—128 mg per bird) diet had significantly lower FITC–dextran concentrations in all intestinal segments (p < 0.05) and were determined to have higher serum FITC–dextran than the control group. The hematological parameters can significantly reduce serum cholesterol and triglycerides. Finally, the application of tamarind shell powder promoted probiotic proliferation within the broilers’ gastrointestinal tract and mitigated Enterobacteriaceae infections, demonstrating comparable efficacy to the antibiotic-treated control group. This research suggests that tamarind shell powder supplementation, especially at a medium dosage (treatment 4), may beneficially influence gut morphology, modulate the gut microbiota, and enhance intestinal health in broiler chickens. Full article
(This article belongs to the Special Issue Nutritional Strategies to Improve Animal Health and Immunity)
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15 pages, 9796 KB  
Article
Magnetic Field Induced Spin State Optimization in Fe-Co Dual-Active Centers for Superior Trifunctional Water Splitting
by Yi Zheng, Xin Luo, Sizhe Li, Zhengxian Shen and Hui Su
Coatings 2026, 16(6), 659; https://doi.org/10.3390/coatings16060659 - 30 May 2026
Viewed by 699
Abstract
Faced with a global energy crisis and ecological degradation, overall water splitting (OWS) is a pivotal approach for renewable energy conversion and storage. However, its industrial application is hindered by the high energy barriers/sluggish kinetics of the anodic oxygen evolution reaction (OER), as [...] Read more.
Faced with a global energy crisis and ecological degradation, overall water splitting (OWS) is a pivotal approach for renewable energy conversion and storage. However, its industrial application is hindered by the high energy barriers/sluggish kinetics of the anodic oxygen evolution reaction (OER), as well as the scarcity of precious metal catalysts limiting large-scale deployment. Herein, a cobalt-based layered double hydroxide (Co-LDH) was used as the precursor, and a multi-strategy synergistic modification (hydrothermal synthesis, Fe doping, sulfurization, and external magnetic field magnetization) was applied to fabricate the Fe-Co3S4-MS-20 min electrocatalyst. This strategy establishes Fe-Co bimetallic synergistic active centers, and magnetic treatment modulates the electron configuration of Fe 3d orbitals without changing the material’s lattice spacing or morphology. Structural characterizations and electrochemical measurements were used to investigate the effects of combined modifications on the catalyst’s phase structure, morphology, electronic structure, and trifunctional catalytic performance toward the hydrogen evolution reaction (HER), OER, and urea oxidation reaction (UOR). The Fe-Co3S4-MS-20 min catalyst exhibits a larger electrochemical active surface area, lower charge transfer resistance, and smaller Tafel slope in 1 M KOH, it achieves overpotentials of 165 mV for HER (10 mA·cm−2) and 310 mV for OER (100 mA·cm−2), along with superior UOR performance and long-term stability. In situ impedance and Raman spectroscopy confirm that magnetization accelerates charge transfer and promotes in situ reconstruction. Synergistic multi-strategy regulation optimizes the electronic structure of active centers, reducing electrocatalytic energy barriers. This work provides new insights into designing high-performance non-precious metal electrocatalysts and offers experimental support for external magnetic field regulation in electrocatalyst modification. Full article
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21 pages, 5976 KB  
Article
Dissolution Processes of PFSA Polymers via Mixed Solvents and Their Effects on Structural, Morphological and Electrochemical Activity
by Mveliso Ester Hlwele, Opeoluwa O. Oyedeji, Edson L. Meyer, Nicholas Rono and Mojeed A. Agoro
Molecules 2026, 31(11), 1856; https://doi.org/10.3390/molecules31111856 - 28 May 2026
Viewed by 438
Abstract
Proton exchange membrane fuel cells (PEMFCs) exhibit high energy efficiency and rapid load response, but challenges are faced in membrane fabrication, including the need for renewable resources and cost-effective, non-toxic solvents. This study analyzes the morphological and structural properties of perfluorosulfonic acid (PFSA) [...] Read more.
Proton exchange membrane fuel cells (PEMFCs) exhibit high energy efficiency and rapid load response, but challenges are faced in membrane fabrication, including the need for renewable resources and cost-effective, non-toxic solvents. This study analyzes the morphological and structural properties of perfluorosulfonic acid (PFSA) ionomer membranes, FS-930 and F-14100, after the dissolution of membranes via ratios of 50:50, 80:20, and 20:80 by volume of dimethyl sulfoxide (DMSO) and water. Bode plot analysis indicates that membranes rich in DMSO show lower frequency phase angle peaks, suggesting better segmental motion and ionic conductivity. Additionally, higher DMSO content correlates with broader FTIR peaks, reflecting enhanced solute–solvent interactions. The untreated FS-930 membrane demonstrates significant intensity peaks linked to semi-crystalline domains, indicating strong baseline conductivity. SEM analysis revealed surface roughness variations in FS-930 linked to different water-to-DMSO volume ratios. DMSO-rich mixtures produced dense, hydrophobic PFSA membrane structures, whereas water-rich mixtures increased water uptake and ionic conductivity. Fumapem F-14100 showed superior hydration and proton conductivity compared to FS-930 because it contains more sulfonic acid groups. These findings are critical to understanding how membrane properties relate to solvent composition, aiding in the optimization of membrane fabrication for better performance and durability in fuel cells. Full article
(This article belongs to the Special Issue Metal Recycling: From Waste to Valuable Resources)
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27 pages, 19255 KB  
Article
Numerical Investigation of Local Scour Around Double Triangular Prisms Using a DBM–LBM Coupled Model
by Keyao Li, Aojie Sun and Yong Peng
J. Mar. Sci. Eng. 2026, 14(10), 941; https://doi.org/10.3390/jmse14100941 - 19 May 2026
Viewed by 290
Abstract
Local scour is a typical hydro-sediment coupled process around near-bed obstacles. Its intensity and spatial distribution are jointly controlled by the surrounding-flow structure, sediment transport, and bed-feedback deformation. To address the relative lack of studies on local scour around non-circular double-obstacle systems, this [...] Read more.
Local scour is a typical hydro-sediment coupled process around near-bed obstacles. Its intensity and spatial distribution are jointly controlled by the surrounding-flow structure, sediment transport, and bed-feedback deformation. To address the relative lack of studies on local scour around non-circular double-obstacle systems, this study conducts a two-dimensional parametric numerical investigation of local scour around double triangular prisms based on an existing DBM-LBM hydro-morphodynamic framework that couples the D2Q16 discrete Boltzmann method with the D2Q9 lattice Boltzmann method. First, a single circular cylinder local-scour experiment is selected as the benchmark case, and a square-pier local-scour case is further introduced as a supplementary validation case to examine the applicability of the adopted framework in reproducing the magnitude of typical local scour and the main bed morphology. Then, three arrangement patterns (tandem, side-by-side, and staggered), two prism orientations (vertex-facing and face-facing), and nine spacing ratios, S/Bp = 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, and 6, are considered for the double triangular prism cases. The local scour responses under different geometric configurations are systematically compared. The results show that, under the present two-dimensional numerical setting, the side-by-side arrangement produces the strongest local-scour amplification, with the peak occurring near S/Bp = 2.5. The tandem arrangement is mainly governed by sheltering suppression, and its group amplification factor is generally lower than 1. The scour intensity of the staggered arrangement lies between those of the side-by-side and tandem arrangements, and asymmetric scour is more likely to occur. Face-facing flow produces a larger scour depth in most cases, but its influence varies with the arrangement pattern and spacing ratio. Therefore, the double triangular-prism cases are interpreted as parametric numerical results within the adopted two-dimensional DBM–LBM framework. The reported effects of arrangement pattern, prism orientation, and spacing ratio should be understood as relative numerical trends rather than direct experimental predictions for this specific geometry. The results can provide a reference for subsequent physical-model experiments, three-dimensional numerical simulations, and scour-protection analysis for non-circular double-obstacle systems. Full article
(This article belongs to the Section Coastal Engineering)
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18 pages, 13329 KB  
Article
In Situ Fabrication of FexNiyCrzCoaTibMoc High-Entropy Alloy Coating by Rotating Arc Cladding
by Xueping Guo, Jian Liu, Xian Du, Shaofu Huang, Jun Liu, Jing Li, Zhihai Cai and Binggong Yan
J. Manuf. Mater. Process. 2026, 10(5), 177; https://doi.org/10.3390/jmmp10050177 - 18 May 2026
Viewed by 460
Abstract
This study utilized a twisted wire rotating arc cladding method to in situ fabricate a Fe-containing multi-principal element alloy (HPEA) coating derived from NiCrCoTiMo stranded wire on 45 steel (equivalent to AISI 1045 steel). The macroscopic morphology, microstructure, mechanical properties, and electrochemical corrosion [...] Read more.
This study utilized a twisted wire rotating arc cladding method to in situ fabricate a Fe-containing multi-principal element alloy (HPEA) coating derived from NiCrCoTiMo stranded wire on 45 steel (equivalent to AISI 1045 steel). The macroscopic morphology, microstructure, mechanical properties, and electrochemical corrosion behavior of the prepared coatings were examined. The coating exhibited no visible cracks or pores and displayed a dual-phase face-centered cubic (FCC) + body-centered cubic (BCC) structure, with an average grain size of 78 μm for the FCC phase and 1 μm for the BCC phase. The microhardness of the coating is approximately 381.3 HV0.1. Compared to 45 steel, the coating’s coefficient of friction (COF) decreased from 0.6265 to 0.5125, representing an 18.2% reduction. The calculated wear rate of the coating was 1.47 × 10−5 mm3/N·m, approximately six times lower than that of 45 steel (8.93 × 10−5 mm3/N·m). Electrochemical testing revealed that the coating’s open-circuit potential (OCP) was −0.405 V vs. the saturated calomel electrode (SCE), with a corrosion potential (Ecorr) of −0.556 V vs. SCE and a corrosion current density (Icorr) of 4.458 × 10−6 A/cm2. In comparison, 45 steel exhibited an OCP of −0.582 V vs. SCE, with corrosion parameters of Ecorr = −0.840 V vs. SCE and Icorr = 1.302 × 10−5 A/cm2. These results demonstrate the superior corrosion resistance and wear performance of the coating, underscoring its potential for applications in challenging environments that demand enhanced material durability. Full article
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26 pages, 51184 KB  
Article
Coupling Optimization of Urban Spatial Morphology and Wind Environment Based on a Complex Network Model
by Peng Cao, Caiyuan Zhao and Shaobo Jiang
Buildings 2026, 16(10), 1912; https://doi.org/10.3390/buildings16101912 - 12 May 2026
Viewed by 355
Abstract
Against the backdrop of global warming and rapid urbanization, high-density central urban areas in valley cities face exacerbated ventilation deterioration and reduced pedestrian-level wind comfort due to topographic constraints and intensive development. This study investigates the coupling mechanism between spatial morphology and wind [...] Read more.
Against the backdrop of global warming and rapid urbanization, high-density central urban areas in valley cities face exacerbated ventilation deterioration and reduced pedestrian-level wind comfort due to topographic constraints and intensive development. This study investigates the coupling mechanism between spatial morphology and wind environment in Lanzhou’s Xiguan Cross area using a complex network model, CFD numerical simulation, and statistical analysis. A ventilation resistance surface was constructed using circuit theory and ArcGIS 10.8 to identify ventilation corridors. PHOENICS was used to simulate summer pedestrian-level (1.5 m) wind fields, while SPSS 2025 was employed for regression analysis of building density, enclosure degree, and dispersion degree against the mean wind velocity ratio. Results indicate: (1) wind velocities are higher at the periphery and lower in the interior; (2) building density and enclosure degree have a highly significant negative impact on the wind velocity ratio, whereas dispersion degree has a significant positive impact, with influence intensity ranked as enclosure degree > building density > dispersion degree. Based on these findings, three differentiated morphological optimization strategies are proposed and validated through simulation, effectively increasing the proportion of comfortable wind zones. This study provides a scientific basis for improving urban microclimate and pedestrian comfort through urban design. Full article
(This article belongs to the Special Issue Climate-Responsive Architectural and Urban Design)
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23 pages, 36098 KB  
Article
Nano-Enabled Potentiation of a Lead Mono-Carbonyl Curcumin Analogue via PEGylated Graphene Oxide for Enhanced Glycemic Control
by Babar Ayub, Haya Hussain, Farman Ali Khan, Nasir Mehmood Khan, Abid Ullah, Kifayat Ullah, Syed Wadood Ali Shah, Jian Wang and Shujaat Ahmad
Pharmaceutics 2026, 18(5), 568; https://doi.org/10.3390/pharmaceutics18050568 - 2 May 2026
Viewed by 1604
Abstract
Background: The global healthcare system faces a significant challenge due to the escalating prevalence of type 2 diabetes, affecting over 10% of the world’s population. Suppression of postprandial hyperglycemia through inhibition of carbohydrate-hydrolyzing enzymes is an effective therapeutic strategy. Although curcumin effectively inhibits [...] Read more.
Background: The global healthcare system faces a significant challenge due to the escalating prevalence of type 2 diabetes, affecting over 10% of the world’s population. Suppression of postprandial hyperglycemia through inhibition of carbohydrate-hydrolyzing enzymes is an effective therapeutic strategy. Although curcumin effectively inhibits α-amylase and α-glucosidase activities, its lower solubility and bioavailability restrict its clinical application. In this study, five mono-carbonyl curcumin analogues (CA1–CA5) were synthesized and evaluated for their antidiabetic potential following selective experimental methods both in vitro, and in vivo. Enhanced delivery for the most potent analogue was achieved through PEGylated graphene oxide (PEG-GO) to overcome the shortcomings of curcumin compounds. Methods: In silico ADME profiling was conducted using SwissADME, and molecular docking studies were performed with AutoDock Vina (v1.5.7) to assess enzyme binding interaction. The synthesized compounds were further evaluated using in vitro α-amylase and α-glucosidase inhibition assays, followed by in vivo blood profile analysis. The most active analogue CA3 (chloro derivative) was loaded onto PEG-GO and characterized using UV–visible spectroscopy, Fourier-transform infrared spectroscopy, and scanning electron microscopy. Results: Among all of the compounds, CA3 exhibits the strongest binding affinity and highest enzyme inhibitory activity, followed by CA2 and CA4. PEG-GO-CA3 demonstrated significantly enhanced biological activity compared to its free form. In vivo studies showed marked improvements in body weight and lipid profile, along with significant reductions in blood glucose, glycated hemoglobin, urea, creatinine, alanine aminotransferase, and aspartate aminotransferase levels over a 28-day treatment period as compared to a diabetic control. Spectroscopic and morphological analyses confirmed successful loading of CA3 onto PEG-GO (27.7–31.5%) with a release profile of 38–57% after 12 and 36 h in a controlled environment at pH 7. Conclusions: These findings suggest that PEG-GO-loaded mono-carbonyl curcumin analogues represent promising therapeutic candidates for the management of T2DM. Full article
(This article belongs to the Section Nanomedicine and Nanotechnology)
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15 pages, 819 KB  
Article
Multidimensional Severity Phenotypes in Dentofacial Deformities: Cross-Sectional Associations with Quality of Life, Function, and Psychosocial Burden
by Serban Talpos Niculescu, Bogdan Andrei Bumbu, Roxana Talpos Niculescu, Robert Avramut, Florin Urtila, Felicia Streian and Malina Popa
J. Clin. Med. 2026, 15(9), 3366; https://doi.org/10.3390/jcm15093366 - 28 Apr 2026
Viewed by 448
Abstract
Background: Dentofacial deformities (DFDs) comprise heterogeneous sagittal, vertical, transverse, and asymmetry components, yet clinical severity is often summarized using isolated measurements. Objectives: To operationalize a reproducible composite DFD severity score and evaluate its cross-sectional associations with quality of life, function, airway-related [...] Read more.
Background: Dentofacial deformities (DFDs) comprise heterogeneous sagittal, vertical, transverse, and asymmetry components, yet clinical severity is often summarized using isolated measurements. Objectives: To operationalize a reproducible composite DFD severity score and evaluate its cross-sectional associations with quality of life, function, airway-related screening indicators, and psychosocial burden. Methods: In this single-center cross-sectional study, consecutive adults assessed in an orthognathic surgery pathway underwent a prespecified 0–100 severity scoring framework integrating sagittal discrepancy (|Wits| and |ANB deviation|), vertical pattern (SN-MP angle), and asymmetry/transverse variables (chin deviation, asymmetry index, transverse discrepancy, and absolute overjet). Outcomes included the Oral Health Impact Profile-14 (OHIP-14), Orthognathic Quality of Life Questionnaire (OQLQ), FACE-Q facial appearance satisfaction scale, PHQ-9, GAD-7, STOP-Bang, functional testing, and CBCT-derived upper-airway metrics. Results: Severe DFDs had higher composite severity (62.9 ± 12.8 vs. 25.3 ± 10.9), larger sagittal discrepancy (|Wits| 6.3 ± 2.8 vs. 3.1 ± 1.8), and higher SN-MP angles (39.8 ± 7.4 vs. 34.7 ± 7.2) (all p < 0.001). Severe DFDs also had worse OQLQ (36.2 ± 6.2 vs. 24.1 ± 7.2), OHIP-14 (18.3 ± 4.2 vs. 12.4 ± 4.1), FACE-Q satisfaction (45.7 ± 10.3 vs. 67.6 ± 9.6), masticatory performance (59.4 ± 8.5 vs. 75.1 ± 7.5), and smaller airway area (126.7 ± 29.6 vs. 161.4 ± 27.7) (all p < 0.001). In multivariable logistic regression, |Wits|, SN-MP angle, asymmetry index, and lower airway area independently predicted severe status; PHQ-9 was associated with severity in unadjusted analyses but did not retain independent significance after multivariable adjustment. Model discrimination was high (AUC 0.91). Conclusions: This multidimensional severity framework captures clinically meaningful cross-sectional differences across morphologic, functional, airway-related, and psychosocial domains. Its interpretability remained stable in sensitivity analyses, but external and longitudinal validation is still required before broader implementation. Full article
(This article belongs to the Section Dentistry, Oral Surgery and Oral Medicine)
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19 pages, 1712 KB  
Article
A Sulfur-Crosslinked Biopolymeric Matrix for Controlled Urea Release Enhances Maize Growth and Reduces Nitrogen Losses
by Ana Farioli, Pablo Cavallo, Diego Acevedo and Edith Yslas
Int. J. Mol. Sci. 2026, 27(9), 3863; https://doi.org/10.3390/ijms27093863 - 27 Apr 2026
Cited by 1 | Viewed by 504
Abstract
Modern agriculture faces major challenges due to rapid population growth, climate change, and environmental constraints. Advanced polymeric systems for controlled-release fertilizers (CRFs) are essential to address these challenges. Urea is one of the most widely used nitrogen fertilizers; however, its agronomic efficiency is [...] Read more.
Modern agriculture faces major challenges due to rapid population growth, climate change, and environmental constraints. Advanced polymeric systems for controlled-release fertilizers (CRFs) are essential to address these challenges. Urea is one of the most widely used nitrogen fertilizers; however, its agronomic efficiency is limited by volatilization and losses. In this study, we report a sustainable strategy to encapsulate urea using a matrix derived from industrial sulfur waste and vegetable oil, improving agronomic efficiency while valorizing industrial residues and renewable resources. Through inverse vulcanization, a sponge-like polymer (Bp-SF) was synthesized. Two urea-loaded bio-composites (Bp-SF25U and Bp-SF32U) were also prepared. FT-IR analysis confirmed urea encapsulation and the formation of polymeric structures from sunflower oil. SEM revealed a porous morphology, while contact angle measurements confirmed the hydrophobic nature of the polymer matrix. Release kinetics showed sustained nitrogen release for more than 77 days, reaching approximately 60% cumulative release, governed by diffusion, with a fraction of urea retained within the matrix, potentially enabling prolonged nutrient availability. Pot experiments with maize showed that a lower dose of encapsulated urea (79 mg) produced similar plant growth responses to a higher dose of free urea (92 mg), indicating improved nitrogen use efficiency. These sulfur cross-linked biopolymers represent a promising strategy to enhance urea efficiency while supporting greener fertilization strategies aligned with circular economy principles. Full article
(This article belongs to the Special Issue Recent Advances in Polymeric Biomaterials)
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28 pages, 46303 KB  
Article
Volumetric Control vs. Pneumatic Pressure: A Comparative Analysis of Extrusion in 3D Bioprinting
by Doru-Daniel Cristea, Eduard Liciu, Andreea Trifan and Corneliu Bălan
Micromachines 2026, 17(5), 521; https://doi.org/10.3390/mi17050521 - 24 Apr 2026
Viewed by 673
Abstract
Extrusion-based bioprinting faces significant challenges in achieving the shape fidelity and internal porosity necessary for cell viability, often hindered by subjective assessment methods. This study investigated the relationship between rheological properties and print quality using a natural polymer biomaterial ink composed of 12% [...] Read more.
Extrusion-based bioprinting faces significant challenges in achieving the shape fidelity and internal porosity necessary for cell viability, often hindered by subjective assessment methods. This study investigated the relationship between rheological properties and print quality using a natural polymer biomaterial ink composed of 12% gelatin, 5% alginate, and 1% carboxymethylcellulose. We conducted a comparative analysis between traditional pneumatic systems and screw-driven volumetric extrusion, utilizing a suite of quantitative metrics: Spreading Ratio (SR), Printability Index (Pr), Uniformity Ratio (UF), Collapse Angle (θ), and evaluated porosity. Our results demonstrate that the screw-driven system’s positive displacement mechanism provides superior control over filament morphology by enabling precise volumetric modulation. While the pneumatic system exhibited a high SR of 1.82 and the lowest porosity at 59.92%, the screw-driven system allowed for “under-extrusion” to compensate for viscoelastic die swell. Reducing the flow rate to 50% in the screw system lowered the SR to 1.09, nearly matching the nozzle diameter, and increased porosity to 76.46%. Furthermore, the screw-driven system achieved an ideal Pr of 1.0, whereas the pneumatic system produced distorted, rounded pores with a Pr of 1.57. The findings indicate that screw-driven extruders can decouple line complex rheology from the printing process, allowing for finer spatial resolution and better pore interconnectivity. Full article
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