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16 pages, 8737 KB  
Article
Ti0.87O2 Nanosheet-Associated Aramid Nanofiber Ordering in Ultrathin Membranes for Proton Gradient Energy Conversion
by Xinyue Qu, Zhongxi Long and Ling Qiu
Nanomaterials 2026, 16(18), 1149; https://doi.org/10.3390/nano16181149 - 14 Sep 2026
Viewed by 109
Abstract
In membrane-based reverse electrodialysis (RED), ion-selective membranes convert ionic concentration gradients directly into electrical output. Protons are often treated within the general framework of cation selectivity, while how membrane structure specifically regulates proton transport beyond conventional cation transport remains insufficiently understood. Here, freestanding [...] Read more.
In membrane-based reverse electrodialysis (RED), ion-selective membranes convert ionic concentration gradients directly into electrical output. Protons are often treated within the general framework of cation selectivity, while how membrane structure specifically regulates proton transport beyond conventional cation transport remains insufficiently understood. Here, freestanding aramid nanofiber (ANF)/Ti0.87O2 membranes approximately 3 μm thick are prepared by co-dispersion in trifluoromethanesulfonic acid (TfOH), spin coating, aqueous regeneration, and confined drying. X-ray diffraction and two-dimensional wide-angle X-ray scattering show that Ti0.87O2 incorporation is accompanied by enhanced ANF ordering and preferential orientation. After normalization to the bulk HCl/KCl conductivity ratio, the proton preference factor increases from approximately 1.0 for ANF to 1.67 at a Ti0.87O2 mass fraction of 0.5, while the apparent activation energy is lower for HCl than for KCl transport (0.18 versus 0.24 eV). Under a 1000-fold HCl concentration gradient (1 M/0.001 M), the membrane delivers 51.52 W m−2 and retains 88.1% of its short-circuit current over approximately 33 h. Further integration into a 10-unit stack yields an open-circuit voltage of 1.77 V, demonstrating modular voltage scaling. Together, these results suggest that Ti0.87O2 nanosheets promote ANF ordering and contribute to proton-favorable transport behavior. Full article
(This article belongs to the Special Issue Wet Assembly and Processing of Nanomaterials)
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34 pages, 908 KB  
Review
Fermentation as a Lever to Enhance Legume Proteins: From Antinutritional Factors to Improved Quality
by Slim Smaoui, Abeera Moin, Haifa Chtourou, Olfa Ben Braïek, Mariam Fourati and Theodoros Varzakas
Molecules 2026, 31(17), 3104; https://doi.org/10.3390/molecules31173104 - 4 Sep 2026
Viewed by 291
Abstract
Owing to their high nutritional value, functional proteins, and low environmental impact, legume proteins have emerged as sustainable alternatives to animal proteins. However, their broader utilization is constrained by antinutritional factors (ANFs), which can adversely affect protein digestibility, mineral bioavailability, and techno-functional features. [...] Read more.
Owing to their high nutritional value, functional proteins, and low environmental impact, legume proteins have emerged as sustainable alternatives to animal proteins. However, their broader utilization is constrained by antinutritional factors (ANFs), which can adversely affect protein digestibility, mineral bioavailability, and techno-functional features. Fermentation has appeared as a promising approach to overcoming these limitations. Through microbial and enzymatic activities, fermentation can reduce ANFs, modify protein structures, and promote proteolysis, generating peptides and free amino acids that may improve digestibility, bioavailability, and functional properties. This review critically explores the effects of fermentation on legume proteins, concentrating on ANF reduction, protein degradation and structural modification, proteolysis, and their consequences for nutritional and techno-functional properties. Particular attention is given to protein hydrolysis and peptide generation, as well as the limitations and potential trade-offs of fermentation, including extreme proteolysis, loss of desirable functional properties, unwanted sensory changes, variability among strains and substrates, and prolonged processing. The review also discusses the incorporation of fermented legume proteins into relevant food systems, with emphasis on their functional performance and application potential. Finally, current knowledge gaps and future research priorities are highlighted to support the development of controlled fermentation strategies for nutritionally improved, functionally tailored, and industrially feasible legume protein ingredients. Full article
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17 pages, 6824 KB  
Article
Targeted Reduction of Specific Antinutritional and Allergen-Associated Proteins to Advance Soybean Seed Quality
by Hari B. Krishnan, Wonseok Kim, Sunhyung Kim and Thi Thao Nguyen
Int. J. Mol. Sci. 2026, 27(15), 6910; https://doi.org/10.3390/ijms27156910 - 1 Aug 2026
Viewed by 335
Abstract
Soybean (Glycine max L.) is a major global source of protein and oil, yet its use in food and feed is constrained by antinutritional factors (ANFs) and allergenic seed proteins. To improve seed nutritional quality, we developed double mutant soybean lines (HBK-WF [...] Read more.
Soybean (Glycine max L.) is a major global source of protein and oil, yet its use in food and feed is constrained by antinutritional factors (ANFs) and allergenic seed proteins. To improve seed nutritional quality, we developed double mutant soybean lines (HBK-WF and HBK-PF) by crossing E16, which lacks the Kunitz trypsin inhibitors KTI-1 and KTI-3, with Lee 2, which is deficient in the α subunit of β conglycinin, a prominent allergen-associated storage protein. One- and two-dimensional gel electrophoresis and immunoblot analyses confirmed the complete absence of these target proteins in both experimental lines. The double mutants exhibited ~50% lower trypsin inhibitor activity relative to wild-type soybean. Tandem mass tag (TMT)-based proteomic analysis quantified 1034 proteins across parental and derived genotypes and revealed extensive proteomic remodeling. Seed composition profiling demonstrated substantial genotypic variation. Lee 2 displayed the highest total protein concentration (44%), while the double mutants exhibited intermediate to elevated levels (39–40%). Oil content in the double mutants (18.4–18.5%) was comparable to E16 and slightly lower than the reference cultivar Maverick. Amino acid profiling further showed that Lee 2 accumulated the highest levels of all measured amino acids, particularly sulfur-containing amino acids, whereas the double mutants displayed intermediate concentrations consistent with additive inheritance. Collectively, these results demonstrate that targeted removal of specific ANFs and an allergen-associated storage protein can improve soybean nutritional quality without compromising seed composition, providing promising germplasm for enhancing the value of soybean-derived food and feed products. Full article
(This article belongs to the Collection Feature Papers Collection in Biochemistry)
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14 pages, 12696 KB  
Article
One-Pot Reprotonation–Compounding Strategy Toward High-Performance Aramid Nanofiber-Reinforced Poly(vinyl alcohol) Films
by Yeling Xie, Changhua Yang and Min Nie
Colloids Interfaces 2026, 10(4), 57; https://doi.org/10.3390/colloids10040057 - 29 Jul 2026
Viewed by 403
Abstract
Aramid nanofibers (ANFs) inherit the exceptional properties of the bulk counterparts, while introducing a large specific surface area and excellent processability. However, the strong inter-fibrillar interactions and tendency to agglomerate hinder their high-content incorporation into polymer matrices. Here, we report a one-pot reprotonation–compounding [...] Read more.
Aramid nanofibers (ANFs) inherit the exceptional properties of the bulk counterparts, while introducing a large specific surface area and excellent processability. However, the strong inter-fibrillar interactions and tendency to agglomerate hinder their high-content incorporation into polymer matrices. Here, we report a one-pot reprotonation–compounding strategy for fabricating aramid nanofiber-reinforced poly(vinyl alcohol) (ANF–PVA) composite films, where the ANF dispersion was mixed with polymers during the protonation process to form a continuous 3D network in the ANF-PVA film. The optimized film with a loading of 20 wt% ANFs exhibited a tensile strength of 122.2 MPa and a toughness of 28.36 J m−3. Furthermore, the high ANF loading enabled versatile applications. A robust ANF-PVA hydrogel, prepared via salt-induced gelation, delivered 132% enhancement in tear strength and 38.2% increase in cyclic compressive strength compared with the PVA hydrogel. Moreover, inspired by the “brick-and-mortar” architecture of natural nacre, the fully organic ANF-PVA film was incorporated into carbon fiber/epoxy laminates, with a configuration of one nacre-inspired film per five prepreg plies, achieving a 36.5% improvement in impact toughness and minimal loss in flexural strength. This scalable reprotonation–compounding approach provides a general route for producing high-loading ANF-based composites, paving the way for the broader utilization in advanced materials. Full article
(This article belongs to the Topic New Research on Thin Films and Nanostructures)
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18 pages, 19618 KB  
Article
Study of the Impact of Breakers on Nanomodified Guar Gels for Hydraulic Fracturing
by Andrey Minakov, Vladimir Zhigarev, Aleksandr Neverov, Maxim Pryazhnikov and Vladimir Prigozhikh
Polysaccharides 2026, 7(3), 83; https://doi.org/10.3390/polysaccharides7030083 - 11 Jul 2026
Viewed by 408
Abstract
Hydraulic fracturing enhances productivity in low-permeability reservoirs. The introduction of nanomodified gels for hydraulic fracturing has raised the need to revise traditional approaches to their breakdown, as nanoparticles significantly change the kinetics and mechanisms of degradation. In this paper, for the first time, [...] Read more.
Hydraulic fracturing enhances productivity in low-permeability reservoirs. The introduction of nanomodified gels for hydraulic fracturing has raised the need to revise traditional approaches to their breakdown, as nanoparticles significantly change the kinetics and mechanisms of degradation. In this paper, for the first time, a systematic experimental study of the effects of chemical breakers on the rheological properties of nanomodified guar gels has been conducted. Two commercial oxidative breakers were used, which generate free radicals and cleave the guar polymer backbone, reducing viscosity. The effect of breaker concentration (0–1.82 wt%), as well as the concentration, size, and morphology of nanoparticles on gel breaking, has been studied. Guar gum was used as a gelling agent, and spherical SiO2 and Al2O3 nanoparticles, as well as aluminum oxide nanofibers (ANFs), were used as additives. An increase in breaker concentration accelerates gel breaking. For instance, at 0.68 wt% breaker, complete degradation occurs in about 3 h, whereas at 1.82 wt% it takes only about half an hour, with the viscosity dropping to 30 mPa·s. While nano-additives can either slow down or accelerate degradation depending on their type, size, and concentration, the addition of 0.4 wt% ANFs prolong the degradation time to more than two hours even at the highest breaker concentration. These effects are attributed to the competition between polymer chain scission by free radicals and the formation of physical crosslinks mediated by nanoparticles. The results demonstrate the possibility of purposefully controlling the kinetics of breaking of nanomodified gels for hydraulic fracturing by optimally selecting the breaker composition and nano-additive parameters. Full article
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26 pages, 11907 KB  
Review
Managing Anti-Nutritional Factors in Plant-Based Feeds: Implications for Herbivore Nutrition and Production
by Mingxia Han, Xiaoyu Liu, Yi Guo, Qingyu Xu, Lin Wei, Jinjin Wei, Muhammad Zahoor Khan, Changfa Wang and Zhenwei Zhang
Metabolites 2026, 16(7), 456; https://doi.org/10.3390/metabo16070456 - 29 Jun 2026
Viewed by 807
Abstract
Anti-nutritional factors (ANFs) in terrestrial plant feeds constrain efficient herbivore production, an issue intensified by rising feed costs and growing demand for animal products. Unlike previous reviews that focus on single ANFs or feed types, this review provides an integrated, cross-species framework linking [...] Read more.
Anti-nutritional factors (ANFs) in terrestrial plant feeds constrain efficient herbivore production, an issue intensified by rising feed costs and growing demand for animal products. Unlike previous reviews that focus on single ANFs or feed types, this review provides an integrated, cross-species framework linking ANF chemistry, rumen microbial interactions, and mitigation strategies. It examines major ANF classes—tannins, phytates, saponins, oxalates, protease inhibitors, lectins, glucosinolates, and gossypol—and their distribution and biochemical modes of action. Mechanistic pathways are grouped into digestive effects (reduced palatability and enzyme inhibition), microbial effects (altered rumen microbiota and fermentation), metabolic effects (impaired absorption), and mineral interactions (nutrient complexation and chelation). Species-specific responses are evaluated, emphasizing the partial detoxification capacity of the rumen microbiome and the dose-dependent nature of ANF effects. Mitigation strategies—physical, chemical, microbial, enzymatic, probiotic, and genetic—are critically assessed for efficacy, scalability, and sustainability. Emerging metabolomic and metagenomic evidence shows that certain ANFs confer functional benefits at controlled doses; for example, tannins improve nitrogen retention, saponins reduce methane, and phytic acid scavenges free radicals. This synthesis supports strategic management rather than complete elimination, informing safe and sustainable use of terrestrial feeds under evolving food-security and environmental challenges. Full article
(This article belongs to the Special Issue Metabolic Responses to Feed and Nutrition in Livestock)
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32 pages, 702 KB  
Article
S-NODE-ANF-RRC: Stochastic Neural ODE for Financial Regime Forecasting and False Alarm Control on JSE Equities
by Ntebogang Dinah Moroke
Forecasting 2026, 8(4), 54; https://doi.org/10.3390/forecast8040054 - 24 Jun 2026
Viewed by 564
Abstract
Emerging-market equity exchanges require regime forecasting systems that are continuous in time, robust to heavy-tailed distributions, and optimised against false alarms. No existing method addresses all three simultaneously, and no prior study has reported a crisis false-alarm rate on JSE equities. We propose [...] Read more.
Emerging-market equity exchanges require regime forecasting systems that are continuous in time, robust to heavy-tailed distributions, and optimised against false alarms. No existing method addresses all three simultaneously, and no prior study has reported a crisis false-alarm rate on JSE equities. We propose S-NODE-ANF-RRC: a stochastic neural ODE within an Adaptive Neuro-Fuzzy Risk-Regime Clustering architecture, integrated by a Milstein scheme with Lyapunov-regularised dual-loss training. The system is evaluated as a one-step-ahead probabilistic forecaster (h=1 trading day) on 2696 daily observations across 17 JSE securities (March 2015–March 2026). Gaussian mixture clustering on raw features (kurtosis 54.8) inflates ARI by 1.3×; log-transformation corrects this artefact. Two operational profiles emerge: the N-ODE-ANF-RRC achieves the lowest cost (10,350 bp, 65.1% below GMM) and longest lead time (0.71 days); the S-NODE-ANF-RRC achieves the lowest false alarm rate among probabilistic architectures (FAR = 0.051), with a 42.0% cost reduction versus GMM (McNemar p=0.027, power 1β=0.73; bootstrap CI [5250, 19,600] bp excludes zero). Ablation confirms drift, diffusion, and dual-loss as the minimum viable daily-frequency configuration. Full article
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14 pages, 2449 KB  
Article
Functionalized Graphene and Aramid Fiber Synergistically Enhanced Anti-Corrosion and Toughened Epoxy Coating
by Zipeng Yin, Zhensheng Yang, Hansheng Liu, Zhiying Wang and Zhongyu Duan
Coatings 2026, 16(6), 684; https://doi.org/10.3390/coatings16060684 - 7 Jun 2026
Viewed by 878
Abstract
The corrosion of metal components leads to substantial economic losses and poses serious safety hazards. While organic coatings are regarded as an effective countermeasure, conventional epoxy resins (EPs) often exhibit high brittleness and insufficient corrosion resistance after curing. To overcome these limitations, this [...] Read more.
The corrosion of metal components leads to substantial economic losses and poses serious safety hazards. While organic coatings are regarded as an effective countermeasure, conventional epoxy resins (EPs) often exhibit high brittleness and insufficient corrosion resistance after curing. To overcome these limitations, this study proposes a novel modification strategy. A multilayer graphene-reinforced epoxy composite coating was fabricated via a layer-by-layer spraying process, employing uniformly dispersed modified aramid nanofibers (ANFs) and low-defect graphene as functional fillers. Polydopamine (PDA) was utilized to improve the dispersion of graphene oxide (GO), mitigate defect-associated permeation pathways, and enhance the interfacial bonding between the graphene layer and the epoxy matrix, thereby ensuring coating integrity. Tannic acid (TA) effectively improves the dispersion of ANF within the epoxy, preventing stress concentration. The corrosion resistance and mechanical properties of the composite coating were systematically evaluated. Results demonstrate that the coating achieves a low-frequency impedance of 1.98 × 1010 Ω·cm2. With the incorporation of 0.05% TA-modified ANFs, the elongation at break increases to 68.79%, and the impact resistance is significantly enhanced, with the impact height reaching 50 cm. The composite coating preparation strategy in this work offers a novel approach for constructing multifunctional composite coatings, demonstrating broad application prospects. Full article
(This article belongs to the Section Corrosion, Wear and Erosion)
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15 pages, 4285 KB  
Article
Structure-Dependent Resistance to Plasma Impact and Terahertz Shielding Stability of MXene/Aramid Nanofiber Composite Films
by Yizhou Luo, Jingyu Wang, Xing Luo, Hengpei Su, Zelin Zhao and Wanxia Huang
Materials 2026, 19(11), 2195; https://doi.org/10.3390/ma19112195 - 22 May 2026
Viewed by 447
Abstract
To improve the durability of terahertz (THz) electromagnetic shielding materials in atomic oxygen environments relevant to low Earth orbit (LEO), two MXene/para-aramid nanofiber (ANF) composite architectures were designed, including a uniformly blended structure and a sandwich configuration. Ti3C2Tx [...] Read more.
To improve the durability of terahertz (THz) electromagnetic shielding materials in atomic oxygen environments relevant to low Earth orbit (LEO), two MXene/para-aramid nanofiber (ANF) composite architectures were designed, including a uniformly blended structure and a sandwich configuration. Ti3C2Tx MXene was used as the conductive phase, while ANF served as a protective matrix. Oxygen plasma treatment was employed to simulate atomic oxygen exposure. The results show that the plasma resistance of blended films strongly depends on MXene content. Increasing the MXene fraction enhances conductive network redundancy and reduces conductivity degradation. In contrast, the sandwich-structured film exhibits superior structural stability. The outer ANF layers effectively limit direct plasma–MXene interaction and undergo surface carbonization during plasma exposure, forming an additional diffusion barrier. As a result, the sandwich film maintains stable THz shielding performance, with the average shielding effectiveness increasing from 42.6 dB to 44.9 dB after plasma treatment. These results indicate that structural regulation of the internal conductive network, which limits plasma penetration, is essential for maintaining stable MXene-based THz shielding performance under oxidative plasma conditions. Full article
(This article belongs to the Section Thin Films and Interfaces)
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18 pages, 3332 KB  
Article
Preparation, Properties and Application Research of PVA/ANF/NaCl Composite Organic Hydrogel
by Guofan Zeng, Jiaqi Zhu, Zehong Wu, Yihan Qiu and Mingcen Weng
Gels 2026, 12(5), 442; https://doi.org/10.3390/gels12050442 - 19 May 2026
Viewed by 917
Abstract
Polyvinyl alcohol (PVA)-based hydrogels suffer from insufficient mechanical strength, while aramid nanofibers (ANF) have intrinsic insulation that limits their sensing applications, and the synergistic effect of composite fillers remains underexplored. This study aims to develop a multifunctional PVA/ANF/NaCl composite organohydrogel for high-performance flexible [...] Read more.
Polyvinyl alcohol (PVA)-based hydrogels suffer from insufficient mechanical strength, while aramid nanofibers (ANF) have intrinsic insulation that limits their sensing applications, and the synergistic effect of composite fillers remains underexplored. This study aims to develop a multifunctional PVA/ANF/NaCl composite organohydrogel for high-performance flexible sensors. The gel was fabricated via freeze–thaw crosslinking, solvent exchange and NaCl impregnation, with systematic investigations of its microstructure, mechanical, electrical and multifunctional sensing properties, and a corresponding triboelectric nanogenerator (TENG) and self-powered handwriting recognition system were constructed. Results show that 2% ANF significantly enhances the gel’s mechanical performance, 0.5 M NaCl achieves optimal mechanical-electrical balance, the gel-based sensor exhibits excellent distance, pressure and strain sensing with high cyclic stability, the TENG delivers stable electrical output, and the recognition system achieves 95% accuracy on the test set. This work provides a new material and design strategy for advanced flexible electronic devices. Full article
(This article belongs to the Special Issue Gel-Based Scaffolds for Tissue Engineering)
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15 pages, 7652 KB  
Article
Type-1 Ryanodine Receptor Plays an Important Role in Cardiac Hypertrophy and Heart Failure by Increasing Type-2 Ryanodine Receptor-Mediated Calcium Release
by Yong-Xiao Wang, Ed Wilson Santos, Sarahann Mistretta, Yuexing Yuan, Harold A. Singer, Shey-Shing Sheu and Yun-Min Zheng
Int. J. Mol. Sci. 2026, 27(10), 4291; https://doi.org/10.3390/ijms27104291 - 12 May 2026
Viewed by 1190
Abstract
Type-1 ryanodine receptor (RyR1) is essential for skeletal muscle contraction. This Ca2+ release channel is expressed in cardiac myocytes; however, its function remains elusive. Cardiac-specific RyR1 overexpression (OE) mice were generated under the cardiac-specific Myh6 promoter. Cardiac hypertrophy (CH), cardiac functions, and [...] Read more.
Type-1 ryanodine receptor (RyR1) is essential for skeletal muscle contraction. This Ca2+ release channel is expressed in cardiac myocytes; however, its function remains elusive. Cardiac-specific RyR1 overexpression (OE) mice were generated under the cardiac-specific Myh6 promoter. Cardiac hypertrophy (CH), cardiac functions, and mechanistic changes in RyR1 OE and control (wildtype, WT) mice were assessed using hematoxylin and eosin staining, echocardiography, electrocardiogram, quantitative RT-PCR, Western blotting, [3H]-ryanodine binding assay, confocal microscope, ROS dye Amplex Red and 2′,7′-dichlorofluorescein diacetate. RyR1 OE mice had increased whole heart, left ventricular weight, and left ventricular wall thickness, but decreased cardiac output and stroke volume, thereby presenting CH and heart failure (HF). CH markers like ANF, BNF, and aSKA mRNAs were increased in RyR1 OE heart. RyR1, but not RyR2 or RyR3, expression was increased in the RyR1 OE mouse heart. Similar results were found in mice with TAC-induced CH. RyR1, but not RyR2 mRNA, was increased in cardiac muscle from dogs and humans with CH and/or HF. Maximum [3H]-ryanodine binding was increased, whereas the binding dissociation constant decreased in left ventricular cardiomyocytes from RyR1 OE mice. RyR2-dependent Ca2+ sparks were increased, which was blocked by riluzole, a small molecule known to inhibit RyR2. Consistently, ROS was remarkably increased in RyR1 OE cardiac cells. We first generated cardiac-specific RyR1 OE mice; these mice had CH, HF, and increased RyR1 expression with no RyR2 or RyR3 alteration. Similar changes were observed in mice, dogs, and humans with CH and HF. Increased mitochondrial ROS-dependent RyR2 Ca2+ release was essential for RyR1-induced CH and HF. Full article
(This article belongs to the Special Issue Molecular Mechanism and Pathogenesis of Cardiac Disease)
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20 pages, 4898 KB  
Article
Highly Robust and Multimodal PVA/Aramid Nanofiber/MXene Organogel Sensors for Advanced Human–Machine Interfaces
by Guofan Zeng, Leiting Liao, Zehong Wu, Jinye Chen, Peidi Zhou, Yihan Qiu and Mingcen Weng
Biosensors 2026, 16(4), 229; https://doi.org/10.3390/bios16040229 - 20 Apr 2026
Cited by 1 | Viewed by 945
Abstract
Flexible and wearable electronics require soft sensing materials that balance mechanical compliance, stable signal transduction, and durability for human–machine interfaces (HMIs). To address the limitations of single-filler systems, we propose a poly(vinyl alcohol) (PVA)/aramid nanofiber (ANF)/MXene organogel (PAM) as a multifunctional soft platform. [...] Read more.
Flexible and wearable electronics require soft sensing materials that balance mechanical compliance, stable signal transduction, and durability for human–machine interfaces (HMIs). To address the limitations of single-filler systems, we propose a poly(vinyl alcohol) (PVA)/aramid nanofiber (ANF)/MXene organogel (PAM) as a multifunctional soft platform. This design integrates a PVA physically crosslinked network with ANF for mechanical reinforcement and MXene for electrical functionality. The optimized PAM composite exhibits outstanding mechanical properties, including a fracture stress of 2931 kPa, a fracture strain of 676%, and a fracture toughness of 9.04 MJ m−3. Importantly, PAM serves as a single material platform configurable into three sensing modalities. The resistive strain sensor achieves a gauge factor of 3.1 over 10–100% strain and enables the reliable recognition of human joint movements and gestures. The capacitive pressure sensor delivers a sensitivity of 0.298 kPa−1, rapid response/recovery times of 30/10 ms, and is integrated with a wireless module to control a smart car. Furthermore, the PAM-based triboelectric nanogenerator (TENG) delivers excellent electrical outputs (Voc = 123 V, Isc = 0.52 μA, Qsc = 58 nC) and functions as a self-powered smart handwriting pad, achieving a machine-learning-based recognition accuracy of 97.6%. This work demonstrates the immense potential of the PAM organogel for advanced, self-powered HMIs. Full article
(This article belongs to the Special Issue Flexible and Stretchable Biosensors)
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19 pages, 5581 KB  
Article
Effect of Bacterial-Enzymatic Synergistic Liquid Fermented Rapeseed Meal on Growth Performance, Intestinal Health, and Muscle Development of Growing Pigs
by Jingchao Liu, Ting Zhang, Yunkai Li, Jingyi Zhang, Xiaolei Zhao, Meng Li, Guoqing Cao, Bugao Li, Xiaohong Guo and Yang Yang
Animals 2026, 16(7), 1092; https://doi.org/10.3390/ani16071092 - 2 Apr 2026
Viewed by 1251
Abstract
This study investigated the synergistic effects of liquid fermentation of rapeseed meal (RSM) on feed microbiota, growth performance, and muscle development in growing pigs. RSM was fermented using four compound probiotics and eleven enzyme preparations, and microbial changes were analyzed using 16S rRNA [...] Read more.
This study investigated the synergistic effects of liquid fermentation of rapeseed meal (RSM) on feed microbiota, growth performance, and muscle development in growing pigs. RSM was fermented using four compound probiotics and eleven enzyme preparations, and microbial changes were analyzed using 16S rRNA sequencing. Seventy-two Duroc × Jingfen White pigs were randomly assigned to three groups: soybean meal (Ctrl), RSM, and fermented RSM (FRSM). FRSM showed higher trichloroacetic acid-soluble protein (TCA-sp) content and significantly lower neutral detergent fiber (NDF), acid detergent fiber (ADF), anti-nutritional factors (ANFs), and toxins (TS) (p < 0.01). Fermentation increased microbial diversity, with higher abundances of Lactobacillus and Pediococcus. Compared with Ctrl and RSM, the feed-to-gain ratio (F/G) decreased in the FRSM group (p < 0.01). FRSM also improved serum antioxidant capacity, enhanced intestinal villus height (VH)and villus height/crypt depth ratio (VH/CD), and upregulated the expression of tight junction proteins (ZO-1, occludin) and the anti-inflammatory factor IL-10 (p < 0.01). FRSM group also increased myofiber diameter and cross-sectional area in the longissimus dorsi and elevated MyoD, MyoG and Myf5 expression (p < 0.01). RNA-seq revealed 2094 differentially expressed genes enriched in metabolic pathways. Overall, FRSM improved growth performance, intestinal health, and muscle development in growing pigs, which may guide the development of protein resource utilization technologies. Full article
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27 pages, 966 KB  
Review
Unravelling the Impact of Diverse Fermentation Techniques on Key Nutrient Absorption in Bambara Groundnut and African Yam Bean: A Review
by James Elegbeleye and Dharini Sivakumar
Foods 2026, 15(6), 1109; https://doi.org/10.3390/foods15061109 - 23 Mar 2026
Viewed by 1280
Abstract
Amid growing concerns about climate change and its potential impacts on food security and malnutrition, there is a need for climate-smart crops to help mitigate these challenges. African yam bean (Sphenostylis stenocarpa) and Bambara groundnut (Vigna subterranea) are considered [...] Read more.
Amid growing concerns about climate change and its potential impacts on food security and malnutrition, there is a need for climate-smart crops to help mitigate these challenges. African yam bean (Sphenostylis stenocarpa) and Bambara groundnut (Vigna subterranea) are considered climate-smart neglected or underutilised species (NUS) in sub-Saharan Africa (SSA). These legumes are rich in nutrients, comprising fats, carbohydrates, and protein, as well as essential micronutrients. However, their use is constrained by the presence of antinutritive factors (ANFs) such as oxalates, tannins, and phytates, which reduces mineral bioaccessibility and protein digestibility. Fermentation provides a cost-effective means of effectively reducing these antinutrients, thereby making these crops more mainstream due to their enhanced bioavailability and bioactivity. This review summarises the impact of diverse microbes and fermentation techniques on the bioavailability of essential nutrients in Bambara groundnut and African yam bean. The importance of pre-treatment steps such as soaking, germination, dehulling, and thermal treatment will also be discussed. By synthesising recent studies, the review explores the mechanisms by which fermentation degrades the ANFs, enhances nutrient bioavailability and improves protein digestibility from these crops. This review explores the pivotal roles of fermenting microbes, such as species of Lactobacillus and Bacillus, during the process of biotransformation. Full article
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29 pages, 2352 KB  
Review
Fermented Soybean Meal and Its Application in Animal Husbandry: A Review
by Lina Tokuna Mulalapele, Lei Xu, Dongxu Ming, Yanpin Li, Wenjuan Sun, Xilong Li and Yu Pi
Microorganisms 2026, 14(3), 691; https://doi.org/10.3390/microorganisms14030691 - 19 Mar 2026
Cited by 4 | Viewed by 2806
Abstract
Soybean meal (SBM) is a foundational protein source, but its industrial application is constrained by a complex matrix of anti-nutritional factors (ANFs). This review provides a critical synthesis of the biochemical transition from raw SBM to fermented SBM (FSBM), focusing on the synergistic [...] Read more.
Soybean meal (SBM) is a foundational protein source, but its industrial application is constrained by a complex matrix of anti-nutritional factors (ANFs). This review provides a critical synthesis of the biochemical transition from raw SBM to fermented SBM (FSBM), focusing on the synergistic mechanisms of fungal and bacterial co-fermentation. We identify that the efficacy of FSBM is primarily driven by the microbial proteolysis of glycinin into low-molecular-weight bioactive peptides (<1000 Da). These peptides serve as the primary drivers for improved intestinal morphology (increased villus height) and the modulation of the gut microbiota, providing a mechanistic basis for reported probiotic effects. Furthermore, we establish that the 5–10% improvement in the feed conversion ratio (FCR) documented for swines mathematically offsets the processing premium of fermentation. However, critical gaps remain in the standardization of solid-state fermentation (SSF) protocols, specifically regarding the selection of fungal (Aspergillus) and bacterial (Bacillus or Lactobacillus) strains, whose distinct metabolic pathways significantly diversify the functional profile of the resulting FSBM. Full article
(This article belongs to the Special Issue Dietary and Animal Gut Microbiota)
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