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Keywords = matrix synthesis

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22 pages, 2259 KB  
Article
Orientation-Aligned Rod-Shaped g-C3N4 Architectures as Fillers for Anti-Corrosion and Anti-Biofouling Hybrid Coating
by Keyi Chen, Junbao Shen, Feng Guo and Weilong Shi
Catalysts 2026, 16(8), 749; https://doi.org/10.3390/catal16080749 - 21 Aug 2026
Abstract
Metal corrosion and microbial contamination cause severe damage to marine facilities and result in immeasurable economic losses. Highly efficient and durable anti-corrosion and anti-fouling coatings represent the most effective solution strategy widely employed, whilst two-dimensional graphitic carbon nitride (g-C3N4), [...] Read more.
Metal corrosion and microbial contamination cause severe damage to marine facilities and result in immeasurable economic losses. Highly efficient and durable anti-corrosion and anti-fouling coatings represent the most effective solution strategy widely employed, whilst two-dimensional graphitic carbon nitride (g-C3N4), owing to its non-toxic and highly effective properties, is frequently utilized as a coating filler. Herein, this work innovatively engineered g-C3N4 into rod-like structures with layer-oriented alignment through a two-step simplified synthesis process, naturally achieving the self-assembly integration of ultrathin sheets. Subsequently, the special rod-like g-C3N4 (RCN) was blended with a polydimethylsiloxane (PDMS) matrix, ultimately yielding a multifunctional nanocomposite coating (RCN/PDMS) that combines mechanical reinforcement, long-term corrosion resistance, and microbial fouling protection. Notably, the compact lamellar structure within uniformly dispersed RCN particles in the polymer matrix effectively enhances the crosslinking density of the composite, significantly improving the coating’s adhesion and tensile strength (1.795 MPa). Furthermore, upon exposure to light, the modified RCN-2 releases substantial reactive oxygen species (ROS), exhibiting pronounced antibacterial activity (90.3% of E. coli and 95.1% of S. aureus) against surface-adhering microorganisms. Following a 60 d marine immersion simulation test, the impedance arc radius of the RCN-2/PDMS coating remained as high as 5.17 × 109 Ω·cm2, representing an improvement of nearly two orders of magnitude over pure PDMS coatings. This work expands the application of morphology-controlled g-C3N4-based fillers in marine anti-fouling and anticorrosion coatings. Full article
(This article belongs to the Special Issue g-C3N4-Based Photocatalysts: Innovations and Prospects)
13 pages, 3130 KB  
Review
Rehabilitation of Shoulder Disorders: An ICF-Oriented Lexical Network Analysis of the Literature
by Daniele Coraci, Gianluca Regazzo, Gianpaolo Ronconi, Gabriele Santilli, Cristina Razzano, Lucrezia Tognolo and Stefano Masiero
Appl. Sci. 2026, 16(16), 8321; https://doi.org/10.3390/app16168321 - 21 Aug 2026
Abstract
(1) Background: The continuous growth of rehabilitation literature makes evidence synthesis increasingly challenging. Lexical network analysis may provide quantitative information on the organization of scientific knowledge. This study aimed to characterize the shoulder rehabilitation literature through an International Classification of Functioning, Disability and [...] Read more.
(1) Background: The continuous growth of rehabilitation literature makes evidence synthesis increasingly challenging. Lexical network analysis may provide quantitative information on the organization of scientific knowledge. This study aimed to characterize the shoulder rehabilitation literature through an International Classification of Functioning, Disability and Health (ICF)-oriented lexical network approach. (2) Methods: PubMed was searched for papers on shoulder rehabilitation published from 2016 to 2025. ICF-related lexical terms associated with the shoulder were selected from the official ICF framework, and their frequency inside the titles and abstracts of the found papers was calculated. A binary text-term matrix was generated and converted into a bipartite network. Graph-theoretical analysis, including feature reduction, was performed to identify representative topological descriptors and relationships. (3) Results: The analysis identified 6424 paper-word connections. SHOULDER, PAIN, and FUNCTION represented the principal lexical hubs of the network. Feature reduction enabled the characterization of the network by eigencentrality and neighborhood connectivity. Participation- and environment-related terms showed comparatively limited representation. PARTICIPATION showed the highest neighborhood connectivity. (4) Conclusions: The proposed ICF-oriented lexical network approach provides a quantitative framework for exploring the lexical organization of rehabilitation literature, providing complementary information to conventional literature reviews and supporting future evidence synthesis and research planning. Full article
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28 pages, 7137 KB  
Article
Quantum Chemical Tailoring of Donor–Acceptor Organic Nanomedicines for Nonlinear Optical Performance and Theragnostic Applications: Molecular Descriptors, In Silico, and Ab Initio Investigations
by Sehar Nadeem, Muhammad Usman Khan, Łukasz Szeleszczuk, Dariusz Maciej Pisklak, Marcin Gackowski, Salah Knani and Nadia Ayari
Int. J. Mol. Sci. 2026, 27(16), 7468; https://doi.org/10.3390/ijms27167468 - 20 Aug 2026
Abstract
Nonlinear optical (NLO) active chromophores and their applications in photothermal therapy (PTT) demonstrate great potential in modern theragnostics, owing to their efficient light–matter interactions. A recognized D–π–A chromophore, FTC-3f, which is reported to exhibit a high photothermal conversion efficiency (~51.11%), was structurally modified [...] Read more.
Nonlinear optical (NLO) active chromophores and their applications in photothermal therapy (PTT) demonstrate great potential in modern theragnostics, owing to their efficient light–matter interactions. A recognized D–π–A chromophore, FTC-3f, which is reported to exhibit a high photothermal conversion efficiency (~51.11%), was structurally modified with various spacers and acceptors to elucidate enhanced PTT and NLO behavior through DFT and TD-DFT simulations. Molecular geometries were optimized at the B3LYP/6-31G (d, p) level. Their electronic properties, charge separation, and efficient transition pathways were analyzed using frontier molecular orbitals (FMOs), density of states (DOS), UV–visible spectroscopy, photon-induced electron transfer (PET), and transition density matrix (TDM) analysis. Among all the derivatives, D4 exhibited the smallest HOMO–LUMO energy gap (1.701 eV). The highest first-order hyperpolarizability (β) values are found for D4 (1.50 × 105 in the gas phase, 7.40 × 105 in water, 3.06 × 105 in benzene solvent). The βHRS is found to be in the range 5.11 × 104 to 2.97 × 104 and DR (3.65 × 105 to 4.53 × 104) supports the strong NLO response and strong synergistic donor–acceptor interactions. The designed chromophores exhibit much higher SHG and EOPE responses at 532, 1907.21, and 1064 nm than FTC-3F, indicating great potential for the synthesis of effective NLO nanomedicine. Molecular docking with bovine serum albumin (PDB ID: 4F5S) and Bcl-2 (PDB ID: 2W3L) suggested favorable binding conformations, consistent with a potential for transport and apoptotic-targeting behavior. All 3D molecular descriptor parameters indicate that the designed chromophores have potential for preferential targeting in PTT. This study investigates how structural modifications of donor–π–acceptor chromophores influence their electronic, optical, nonlinear optical, and theragnostic properties, providing insights into molecular design strategies for advanced NLO-based nanomedicine applications. Full article
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26 pages, 12185 KB  
Article
A Comparative Study on the Dune Vegetation of Turkish Coast with Particular Reference to Enez (Evros) Delta
by Yüksel Ünlükaplan, K. Tulühan Yılmaz, E. Dilan Karagöz and U. Erhan Kaya
Diversity 2026, 18(8), 499; https://doi.org/10.3390/d18080499 - 20 Aug 2026
Abstract
This study evaluates the unique ecological and floristic identity of the coastal dune vegetation in the Enez delta and adjacent dune coast of Saros Bay (southern Thrace) by comparing it with diverse dune systems across the Anatolian peninsula. A comprehensive data matrix of [...] Read more.
This study evaluates the unique ecological and floristic identity of the coastal dune vegetation in the Enez delta and adjacent dune coast of Saros Bay (southern Thrace) by comparing it with diverse dune systems across the Anatolian peninsula. A comprehensive data matrix of 97 phytosociological relevés across nine representative coastal dunes spanning the East Mediterranean, Aegean, Marmara, and Black Sea coasts was analyzed. Methodologically, univariate non-parametric approaches (Friedman variance analysis and Durbin–Conover tests) were integrated with multivariate techniques, including Hierarchical Cluster Analysis and Principal Coordinates Analysis (PCoA) based on a Bray–Curtis dissimilarity matrix. Ephedra distachya ssp. monostachya was found to be the most characteristic and differentiating taxa from the clustering. Friedman test results demonstrated highly heterogeneous species abundance across localities (χ2 = 27.2, p < 0.001). The multivariate synthesis revealed a profound ecological decoupling for Saros Bay dunes: while macroclimatic filtering forces a powerful functional convergence with arid Mediterranean models dominated by therophyte, strict composition-based metrics isolate Saros Bay coastal dunes into an entirely independent taxonomic clade. PCoA ordination confirmed this distinctiveness (p < 0.05 against six of the eight national localities), with the first two axes explaining 33.58% of the total variation (Axis 1: 19.66%, Axis 2: 13.92%). This isolation is driven by a high density of Irano-Turanian elements and specialized local lineages like Silene kotschyi. Conversely, a sharp latitudinal bio-climatic macro-gradient was mapped, showing a transition toward humid Black Sea systems strictly dictated by macroclimatic filtering rather than biotic competition (p > 0.05). To preserve these specialized niches, designating coastal dunes of Saros Bay as a Priority Conservation Unit and establishing international, transboundary catchment to coast monitoring frameworks are essential. Full article
(This article belongs to the Special Issue Plant Adaptation and Survival Under Global Environmental Change)
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24 pages, 8605 KB  
Review
Motion as Medicine: Physical Activity, Joint Sensitivity, and Pain Management—A Narrative Review
by Luminita Labusca, Bogdan Puha, Bianca-Ana Dmour, Ilie Onu, Mihaela Camelia Tirnovanu, Ștefan-Dragoș Tîrnovanu and Awad Dmour
Med. Sci. 2026, 14(4), 495; https://doi.org/10.3390/medsci14040495 - 19 Aug 2026
Viewed by 184
Abstract
Background: Physical activity is widely recommended for preserving musculoskeletal health and managing osteoarthritis-related pain, although its benefits are commonly framed in terms of muscle strengthening, weight control, and physical performance. This narrative review aimed to examine movement more broadly as a physiological regulator [...] Read more.
Background: Physical activity is widely recommended for preserving musculoskeletal health and managing osteoarthritis-related pain, although its benefits are commonly framed in terms of muscle strengthening, weight control, and physical performance. This narrative review aimed to examine movement more broadly as a physiological regulator of synovial joint homeostasis, sensory calibration, and functional adaptation. Methods: A structured literature search was performed in PubMed/MEDLINE, Scopus, and Web of Science from database inception to 1 February 2026. Experimental studies, observational studies, clinical trials, systematic reviews, meta-analyses, and selected narrative reviews addressing movement-responsive joint biology or pain regulation were considered. Evidence was synthesized across four interrelated domains: mechanical, fluidic, immune-metabolic, and sensory regulation. Results: The narrative synthesis indicates that the concept of the synovial joint as a dynamic mechano-fluidic organ in which cartilage, synovium, synovial fluid, capsule, subchondral bone, periarticular tissues, and sensory pathways interact continuously. Repeated physiological movement may promote synovial fluid exchange, lubrication, cartilage nutrition, hyaluronic acid and lubricin function, matrix turnover, anti-inflammatory signaling, proprioceptive control, and exercise-induced hypoalgesia. In contrast, inactivity and unloading may impair fluid dynamics, promote muscle inhibition, stiffness, inflammatory persistence, sensory deconditioning, and loss of function. Excessive or poorly distributed loading may also disrupt homeostasis through matrix injury, inflammation, fatigue, and nociceptive sensitization. These findings informed the proposed adaptive loading window, a hypothesis-generating conceptual framework rather than a clinically validated threshold, describing the dynamic range of movement within which joint function and pain regulation may be supported without sustained tissue or symptom aggravation. Conclusions: Movement should be viewed not only as a therapeutic intervention, but also as a continuous regulator of joint biology and perception. Its clinical value may depend on identifying an individualized loading range that supports adaptation, function, and confidence in movement while avoiding both underloading and overload. Full article
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36 pages, 3326 KB  
Review
Encapsulation of Plant Growth-Promoting and Biocontrol Microorganisms: Advances in Formulation Strategies and Future Perspectives for Multifunctional Microbial Consortia
by Marko Vinceković, Karla Gašparić, Nenad Jalšenjak and Nataša Hulak
Agronomy 2026, 16(16), 1597; https://doi.org/10.3390/agronomy16161597 - 18 Aug 2026
Viewed by 286
Abstract
Microorganism inoculants are becoming increasingly essential in sustainable agriculture because they improve nutrient availability, promote plant growth, inhibit disease, and increase crop tolerance to environmental stresses. Nonetheless, their field performance is frequently hampered by poor storage survival, low rhizosphere establishment, and susceptibility to [...] Read more.
Microorganism inoculants are becoming increasingly essential in sustainable agriculture because they improve nutrient availability, promote plant growth, inhibit disease, and increase crop tolerance to environmental stresses. Nonetheless, their field performance is frequently hampered by poor storage survival, low rhizosphere establishment, and susceptibility to harsh climatic conditions. Encapsulation technologies provide an effective solution by encapsulating microbial cells in a biodegradable matrix, extending shelf life, increasing vitality, and allowing for controlled release in the soil. This review focuses on four agriculturally significant microorganisms: Azotobacter chroococcum, Azospirillum brasilense, Pseudomonas brassicacearum, and Trichoderma harzianum. Their modes of action, including nitrogen fixation, phytohormone synthesis, pathogen inhibition, and stimulation of plant defense responses, are reviewed alongside recent advances in encapsulation strategies. Alginate-based formulations and proposed potential multi-species microbial consortia are discussed as promising strategies for improving inoculant performance. However, the successful development of multifunctional potential microbial formulations requires further investigation of microbial compatibility, formulation stability, synchronized release behaviour, and long-term storage performance before broad agricultural implementation can be achieved. Full article
(This article belongs to the Section Farming Sustainability)
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26 pages, 2010 KB  
Review
From Degeneration to Regeneration: The Evolving Landscape of Cell-Based Tendon Repair
by Ines Wang, Brett D. Owens and Jay Trivedi
Cells 2026, 15(16), 1483; https://doi.org/10.3390/cells15161483 - 18 Aug 2026
Viewed by 243
Abstract
Tendinopathies represent a major clinical challenge. Vasculature, neuromuscular junctions, low cellularity, and slow extracellular matrix (ECM) turnover restrict endogenous repair and predispose injured tendons to fibrosis, mechanical weakness, and reinjury. Current therapeutic strategies including rehabilitation protocols, anti-inflammatory medications, platelet-rich plasma (PRP) injections, and [...] Read more.
Tendinopathies represent a major clinical challenge. Vasculature, neuromuscular junctions, low cellularity, and slow extracellular matrix (ECM) turnover restrict endogenous repair and predispose injured tendons to fibrosis, mechanical weakness, and reinjury. Current therapeutic strategies including rehabilitation protocols, anti-inflammatory medications, platelet-rich plasma (PRP) injections, and surgical repair primarily address symptoms or structural deficits without correcting the underlying biological limitations of tendon healing. Cell-based therapies have emerged as a promising regenerative approach aimed at restoring tissue homeostasis through modulation of angiogenesis, collagen synthesis, immune responses, and tenogenic differentiation. Mesenchymal stem cells (MSCs), adipose-derived stem cells (ADSCs), tendon-derived stem cells (TDSCs), induced pluripotent stem cells (iPSCs), differentiated tenocytes, and extracellular vesicle (EV)-based products have demonstrated the ability to enhance vascularization, promote type I collagen remodeling, suppress excessive inflammation, and stimulate tenocyte lineage commitment. These effects are mediated through paracrine signaling, growth factor secretion, and activation of key pathways, including HIF-1α, TGF-β/SMAD, NF-κB, and PI3K/Akt signaling. Despite promising preclinical data, significant translational challenges remain, including limited cell survival at the injury site, variability in cell sources and dosing, immunogenicity, risk of misdifferentiation, and lack of standardization across clinical protocols. Emerging strategies such as genetic modification, hypoxic preconditioning, scaffold-based delivery systems, and extracellular vesicle engineering aim to enhance therapeutic efficacy and reproducibility. This review synthesizes current evidence on cell-based tendon repair, critically evaluates mechanistic insights, clinical trials, and translational barriers, and outlines future directions toward biologically informed regenerative therapies. Full article
(This article belongs to the Special Issue Gene and Cell Therapy in Regenerative Medicine—Third Edition)
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37 pages, 44150 KB  
Article
Structure–Property Relationships in Metakaolin Geopolymers Modified with Shell-Derived Calcium Particles for Multifunctional Wastewater Treatment
by Adriana-Gabriela Schiopu, Mihai Oproescu, Paul Mereuță, Sorin Georgian Moga, Ecaterina Magdalena Modan, Miruna-Adriana Ioța, Alexandru Berevoianu, Ștefan Mira, Marian-Cătălin Ducu, Elena Andreea Vijan, Daniela Istrate and Yasmin Loriana Teodora Grigore
Polymers 2026, 18(16), 2005; https://doi.org/10.3390/polym18162005 - 17 Aug 2026
Viewed by 235
Abstract
The sustainable valorization of marine shell waste as functional additives for geopolymer materials represents a promising strategy for developing multifunctional materials for environmental remediation. In this study, metakaolin-based geopolymers were modified with calcium-rich particles obtained by calcination of five marine shell species ( [...] Read more.
The sustainable valorization of marine shell waste as functional additives for geopolymer materials represents a promising strategy for developing multifunctional materials for environmental remediation. In this study, metakaolin-based geopolymers were modified with calcium-rich particles obtained by calcination of five marine shell species (Chamelea gallina, Mya arenaria, Mytilus edulis, Pecten maximus, and Rapana venosa) under identical synthesis conditions to evaluate the influence of shell mineralogy on the structural, textural, adsorption, and antibacterial properties of the resulting composites. The materials were comprehensively characterized by Fourier transform infrared spectroscopy in attenuated total reflectance (ATR-FTIR), X-ray diffraction (XRD), scanning electron microscopy (SEM), and nitrogen adsorption–desorption (BET/BJH) analyses. Functional performance was assessed through methylene blue (MB) adsorption experiments, adsorption kinetic modeling, and antibacterial tests against Escherichia coli (E. coli). ATR-FTIR and XRD analyses confirmed the formation of a stable amorphous geopolymer network containing residual crystalline phases together with shell-derived calcium carbonate, predominantly as calcite or aragonite depending on shell origin. The incorporation of shell-derived particles modified the pore architecture of the geopolymers. GP-SJ exhibited the highest BET specific surface area (94.30 m2 g−1) and the most developed mesoporous structure. Among the investigated formulations, GP-RP showed the most favorable overall combination of functional properties under the investigated conditions, exhibiting the highest methylene blue removal efficiency (63.97%) and experimental adsorption capacity at 160 min (9.60 mg g−1), together with a comparatively high reduction in recoverable E. coli colonies during preliminary antibacterial screening. The combined structural and functional analyses demonstrate that the environmental performance of shell-modified geopolymers cannot be predicted from a single parameter such as BET surface area or calcium content alone, but results from the synergistic interaction between mineralogical composition, particle dispersion, pore accessibility, and matrix compactness. Under the investigated conditions, these findings provide evidence for proposed structure–property correlations under the investigated conditions and suggests that shell-derived calcium particles act as microstructural regulators of geopolymer matrices, providing a basis for the further development of sustainable multifunctional materials for simultaneous dye removal and bacterial reduction in wastewater treatment. Full article
(This article belongs to the Special Issue Advanced Polymeric Materials for Water Purification)
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29 pages, 1248 KB  
Review
miR-29b as an Anti-Fibrotic Therapeutic: Mechanisms, Disease Biology and Translational Opportunities
by Lee Armstrong, Declan J. McKenna, Eva Mihalovova, Roise D. Gribben, Anton W. Roodnat, Bridgeen Callan and Colin E. Willoughby
Cells 2026, 15(16), 1472; https://doi.org/10.3390/cells15161472 - 17 Aug 2026
Viewed by 264
Abstract
Fibrosis emerges when normally self-limiting tissue repair fails to resolve and overlapping phases of injury, stromal activation, extracellular matrix (ECM) deposition and remodelling become sustained. MicroRNAs (miRNAs) shape this transition by coordinating signalling, cell-state and matrix programmes. Functionally, pro-fibrotic fibro-miRs amplify fibrogenic pathways, [...] Read more.
Fibrosis emerges when normally self-limiting tissue repair fails to resolve and overlapping phases of injury, stromal activation, extracellular matrix (ECM) deposition and remodelling become sustained. MicroRNAs (miRNAs) shape this transition by coordinating signalling, cell-state and matrix programmes. Functionally, pro-fibrotic fibro-miRs amplify fibrogenic pathways, whereas anti-fibrotic miRNAs restrain fibroblast activation and ECM production; the miR-29 family is a principal member of the latter group. This review examines miR-29 family organisation, the regulation of miR-29b by transforming growth factor-β (TGF-β)/Smad and additional transcriptional and inflammatory inputs, and the molecular targets through which miR-29b controls collagen synthesis, processing and crosslinking. Direct canonical targets are distinguished from experimentally supported, predicted and indirect pathway components. Evidence is evaluated across fibroblasts and myofibroblasts, epithelial and endothelial cells, and pulmonary, hepatic, renal, cardiac, dermal and ocular fibrosis models. Therapeutic translation is considered in relation to miR-29b mimics and agomirs, local and tissue-targeted delivery, pharmacokinetics, dose control, off-target repression, immune activation and long-term safety. Overall, miR-29b remains a credible network-level anti-fibrotic candidate, but successful translation requires cell- and disease-specific target validation, selective delivery and preservation of physiological wound repair. Full article
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30 pages, 3738 KB  
Article
Evolution of Mobile Communications in Turkey from Car Phones to 5G: A Technical Review of Base Station Antennas, Frequency Bands, Spectrum Allocation, and Network Infrastructure
by Mustafa Mutlu and Mustafa Kara
Electronics 2026, 15(16), 3632; https://doi.org/10.3390/electronics15163632 - 14 Aug 2026
Viewed by 259
Abstract
This review traces Turkey’s mobile communication evolution from car phones to the commercial 5G phase launched on 1 April 2026. It combines a generation-based engineering matrix with an auditable framework covering spectrum, antenna/radio integration, RAN and core architecture, transport, performance objectives, trade-offs, costs, [...] Read more.
This review traces Turkey’s mobile communication evolution from car phones to the commercial 5G phase launched on 1 April 2026. It combines a generation-based engineering matrix with an auditable framework covering spectrum, antenna/radio integration, RAN and core architecture, transport, performance objectives, trade-offs, costs, and evidence limits. Its quantitative synthesis uses 1990s ETSI standards, KPI targets, antenna parameters, regulatory comparisons, link budget illustrations, BTK 2026-Q1 indicators, and a deliberately limited single-point handset observation. At equal distance, free-space path loss at 3.5 GHz is 13.98 dB higher than at 700 MHz; for an illustrative path loss exponent of 3.5, the cell radius and coverage area ratios are about 0.40 and 0.159. The 2025 authorization comprises 60 MHz of paired 700 MHz spectrum and 340 MHz of 3.5 GHz TDD spectrum. The international comparison is limited to regulatory spectrum positioning and a common date fixed-broadband fiber proxy, not user-experienced performance or deployment maturity. BTK data demonstrate market and infrastructure scale, but nationwide province- and operator-level radio, latency, synchronization, energy, outage, and SA/NSA data remain unavailable. The evidence supports a pragmatic coverage-first low-/mid-band launch whose practical performance depends on site density, active antennas, fiber backhaul, synchronization, energy resilience, and legacy band refarming. Full article
(This article belongs to the Section Microwave and Wireless Communications)
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19 pages, 1846 KB  
Article
Study on the Anti-Melanogenesis and Anti-Photoaging Effects of Sargassum fusiforme Polyphenols Based on Zebrafish and Cell Models
by Jiamin Lu, Mo Chen, Chuner Cai, Peimin He, Denghui Shu, Ya Zhao and Rui Jia
Biology 2026, 15(16), 1388; https://doi.org/10.3390/biology15161388 - 13 Aug 2026
Viewed by 251
Abstract
Skin photoaging is primarily induced by ultraviolet (UV) radiation and is accompanied by extracellular matrix (ECM) degradation, abnormal pigmentation, and loss of skin elasticity. Excessive melanin synthesis represents a key cause of pigmentary skin disorders. Natural polyphenols with dual skin-whitening and anti-photoaging activities [...] Read more.
Skin photoaging is primarily induced by ultraviolet (UV) radiation and is accompanied by extracellular matrix (ECM) degradation, abnormal pigmentation, and loss of skin elasticity. Excessive melanin synthesis represents a key cause of pigmentary skin disorders. Natural polyphenols with dual skin-whitening and anti-photoaging activities have attracted increasing attention as cosmetic ingredients. This study examined the effects of polyphenol-enriched fraction from the brown alga Sargassum fusiforme (SFP). Zebrafish embryos and human melanoma A375 cells were used to evaluate the depigmenting efficacy of SFP, while UVA-induced human dermal fibroblasts (HDFs) were employed to assess its anti-photoaging activity. SFP significantly decreased melanin levels in both models in a dose-dependent and reversible manner by suppressing tyrosinase activity. In terms of anti-photoaging effects, SFP markedly suppressed UVA-induced matrix metalloproteinases (MMPs) expression and elevated key ECM components, including type I collagen, elastin, and hyaluronic acid. In conclusion, SFP exerts dual beneficial effects by attenuating melanogenesis via tyrosinase inhibition and alleviating photoaging damage by suppressing MMPs to protect ECM. These results provide a scientific foundation for the use of SFP as a dual-purpose natural cosmetic ingredient with significant potential in the cosmetics sector. Full article
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15 pages, 15063 KB  
Article
Silk Fibroin Peptides Promote Extracellular Matrix Homeostasis in Photoaging via Modulation of the ITGB1/FAK-TGF-β/Smad Signaling Axis
by Siyuan He, Yongqiu Yan, Feifei Xiong, Wenwen Diao, Fuhuai Jia, Xiaodong Yan and Jing Wang
Molecules 2026, 31(16), 2820; https://doi.org/10.3390/molecules31162820 - 13 Aug 2026
Viewed by 204
Abstract
Excessive ultraviolet A (UVA) irradiation disrupts extracellular matrix (ECM) homeostasis in skin photoaging by impairing the balance between synthesis and degradation, yet whether silk fibroin peptide (SF), a small bioactive peptide from Bombyx mori, can restore this balance through mechanotransduction pathways remains [...] Read more.
Excessive ultraviolet A (UVA) irradiation disrupts extracellular matrix (ECM) homeostasis in skin photoaging by impairing the balance between synthesis and degradation, yet whether silk fibroin peptide (SF), a small bioactive peptide from Bombyx mori, can restore this balance through mechanotransduction pathways remains unknown. Herein, we demonstrate that SF dose-dependently rescues human dermal fibroblasts (HDFs) from UVA-induced oxidative stress, senescence, and ECM disintegration. Notably, SF not only suppresses reactive oxygen species (ROS) and restores activities of antioxidant enzymes, but is also associated with the recovery of the ITGB1-FAK mechanotransduction axis, as evidenced by restored fibronectin levels and increased focal adhesion kinase (FAK) phosphorylation, whereas integrin β1 (ITGB1) expression itself was not significantly altered. This mechanosensory recovery is accompanied by restoration of downstream transforming growth factor-β (TGF-β)/Smad signaling, upregulation of COL1A1, COL3A1 and ELN transcription, and simultaneous suppression of MMP1, MMP3 and MMP9. Unlike conventional antioxidants or exogenous collagen supplements that merely counteract oxidative damage or provide structural substitutes, SF may facilitate recovery of the disrupted cell–matrix interface potentially through modulation of integrin-mediated mechanochemical signal conversion, which may contribute to ECM homeostasis restoration. Collectively, SF promotes mechanotransduction, offering a potential paradigm for anti-aging strategies that target ECM homeostasis through integrin signaling. Full article
(This article belongs to the Special Issue Natural Antioxidants: Applications in Foods, Medicine and Cosmetics)
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25 pages, 1335 KB  
Review
Quercetin: Mechanisms of Action, Clinical Evidence in Metabolic Syndrome, and Translational Opportunities in Food Preservation
by Daniel A. Jacobo-Velázquez
Molecules 2026, 31(16), 2810; https://doi.org/10.3390/molecules31162810 - 12 Aug 2026
Viewed by 289
Abstract
Quercetin is a plant-derived flavonol positioned at the interface of metabolic health and food preservation. This review integrates quercetin chemistry, plant biosynthesis and metabolism, production-relevant extraction and microbial synthesis, bioavailability, mechanisms of action, preclinical and clinical evidence in metabolic syndrome (MetS), and applications [...] Read more.
Quercetin is a plant-derived flavonol positioned at the interface of metabolic health and food preservation. This review integrates quercetin chemistry, plant biosynthesis and metabolism, production-relevant extraction and microbial synthesis, bioavailability, mechanisms of action, preclinical and clinical evidence in metabolic syndrome (MetS), and applications in clean-label food preservation. Experimental studies indicate that quercetin modulates obesity-associated inflammation, dyslipidemia, hepatic steatosis, insulin resistance, hypertension, endothelial dysfunction, and gut-barrier impairment through interconnected Nrf2/HO-1, NF-κB/NLRP3, AMPK/SIRT1, PI3K/Akt, eNOS/NO, lipid metabolism, and microbiota-related pathways. Human evidence is narrower and heterogeneous: modest reductions in systolic blood pressure constitute the most consistent signal, whereas effects on fasting glucose, lipids, inflammatory markers, endothelial function, liver fat, and body weight vary by population, formulation, dose, and duration. In food systems, quercetin has been investigated as an antioxidant, antimicrobial, antibiofilm agent, and photodynamic photosensitizer. It is incorporated into edible films, coatings, freshness indicators, and controlled-release packaging, although most evidence remains laboratory-scale. Key translational challenges include limited aqueous solubility, variable bioavailability, incomplete long-term safety evidence, matrix-dependent efficacy, sensory constraints, manufacturing scale-up, migration, and regulation. Overall, quercetin is promising, but clinical use and industrial deployment require formulation-specific, adequately powered human studies and validation in clinically relevant populations and under commercially realistic processing conditions. Full article
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41 pages, 3833 KB  
Review
Hydroxypropyl Cellulose Derived from Sugarcane Bagasse as a Tablet Binder and Drug Delivery Matrix: A Structured Narrative Review of Synthesis, Pharmaceutical Performance, and Sustainability Indicators Relative to Commercial Grades
by Yusdan Yulidan Aulia Nisa, Ida Musfiroh, Amirah Mohd Gazzali, Okta Nama Putra, Taufik Muhammad Fakih, Derina Paramitasari, Karjawan Pudjianto and Muchtaridi Muchtaridi
Polymers 2026, 18(16), 1963; https://doi.org/10.3390/polym18161963 - 11 Aug 2026
Viewed by 304
Abstract
Hydroxypropyl cellulose (HPC) is extensively utilized as a binder and in controlled-release matrices, yet its production predominantly relies on high-purity α-cellulose derived from wood or cotton, which subjects supply chains to sustainability issues and fluctuations in feedstock prices. Annually, sugarcane bagasse, estimated at [...] Read more.
Hydroxypropyl cellulose (HPC) is extensively utilized as a binder and in controlled-release matrices, yet its production predominantly relies on high-purity α-cellulose derived from wood or cotton, which subjects supply chains to sustainability issues and fluctuations in feedstock prices. Annually, sugarcane bagasse, estimated at approximately 490–600 million tons annualy, presents a scalable, residue-based cellulose source for HPC production within circular bioeconomy frameworks. This review compiles findings from 106 peer-reviewed studies on cellulose and HPC derived from bagasse, addressing synthesis methods, structure–property relationships, and pharmaceutical applications. Published studies indicate that HPC derived from bagasse can achieve a degree of substitution (DS 1.87) compared to commonly reported commercial wood-pulp HPC grades (DS 1.8–2.5). Crystallinity reduction relative to commercial HPC has been proposed based on the lower crystallinity of the underlying bagasse cellulose feedstock, but this has not yet been directly measured for the hydroxypropylated product. Beyond performance, bagasse is an agricurtural residue available at negligible feedstock cost, in contrast to the established market prices of purified wood pulp and cotton linter (US$18–25 per kg) used in commercial HPC manufacturing. Life-cycle assessments of bagasse valorization pathways have similarly reported favorable environmental profiles relative to conventional biomass feedstocks. However, no dedicated techno-economic or life-cycle assessment specific to pharmaceutical-grade HPC production from bagasse has been published, and these potential sustainability and cost advantages therefore remain to be formally validated at industrial scale. Key challenges remain in regulatory acceptance, impurity control, batch-to-batch standardization, and scaling up etherification under pharmaceutical good manufacturing practice (GMP) constraints. Overall, the reviewed literature positions sugarcane bagasse (SCB)-derived HPC as a promising candidate for combining excipient performance with potential sustainability and cost benefits, necessitating targeted process optimization and qualification studies to expedite industrial adoption. Full article
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21 pages, 2038 KB  
Review
Retinoic Acid Receptor γ Is a Ligand-Activated Gatekeeper to Stem Cell Developmental Progression
by William Eustace Basil Johnson, Caitlin McQueen and Geoffrey Brown
Int. J. Mol. Sci. 2026, 27(16), 7160; https://doi.org/10.3390/ijms27167160 - 11 Aug 2026
Viewed by 226
Abstract
RARγ is expressed during embryogenesis by stem/primitive progenitor cells, indicating a role in controlling their development. Supporting this view is that a physiological level of 10 nM of the RARγ agonist AGN205327 blocked stem/progenitor cell differentiation during zebrafish embryogenesis, mouse gastruloid development, and [...] Read more.
RARγ is expressed during embryogenesis by stem/primitive progenitor cells, indicating a role in controlling their development. Supporting this view is that a physiological level of 10 nM of the RARγ agonist AGN205327 blocked stem/progenitor cell differentiation during zebrafish embryogenesis, mouse gastruloid development, and adult chondro- and osteogenesis. Similarly, transgene expression of RARγ or the use of the RARγ agonist CD437 enhanced the generation of induced pluripotent stem cells (iPSCs) from human and mouse somatic cells. RARγ regulates many events that control the behavior of stem/progenitor cells regarding whether they develop to give rise to mature cells. RARγ positively regulates the expressions of NOTCH ligands and their receptors, transforming growth factors (TGFs), and molecules pertaining to cell identity, extracellular matrix communication, and all-trans retinoic acid synthesis and catabolism. The genes that are repressed by RARγ include RARγ, PPARγ, and RXRα. RARγ integrates into Wnt/β-catenin and TGFβ signaling by acting as a co-factor to the gene co-activator β-catenin and transcription factor Smad3, respectively. Within the cytoplasm, RARγ regulates Akt/NF-κB signaling. As a model, we propose that ATRA ligand-activated RARγ acts as a gatekeeper to stem cell developmental progression during embryogenesis and that this role extends to stem/progenitor cell homeostasis within adult tissues. Full article
(This article belongs to the Collection Latest Review Papers in Molecular and Cellular Biology)
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