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34 pages, 15014 KB  
Review
Polymeric Nanofiltration Membranes with Enhanced Hydrophilic, Morphological, Transport, and Antifouling Properties—A Review
by Mohammad Ebrahimi
Polymers 2026, 18(17), 2066; https://doi.org/10.3390/polym18172066 - 25 Aug 2026
Viewed by 539
Abstract
Nanofiltration membranes have emerged as a crucial class of pressure-driven separation materials, positioned between ultrafiltration and reverse osmosis in terms of selectivity, permeance, operating pressure, and energy consumption. Their ability to remove fine contaminants—including multivalent ions, organic micropollutants, dyes, and macromolecules—has made them [...] Read more.
Nanofiltration membranes have emerged as a crucial class of pressure-driven separation materials, positioned between ultrafiltration and reverse osmosis in terms of selectivity, permeance, operating pressure, and energy consumption. Their ability to remove fine contaminants—including multivalent ions, organic micropollutants, dyes, and macromolecules—has made them essential in water and wastewater treatment, pharmaceutical processing, and various industrial applications. In spite of their growing relevance, the performance of polymeric nanofiltration membranes, such as polyamide, polysulfone, polyethersulfone, polyvinylidene fluoride, and polyimide, is still constrained by weak hydrophilicity and a strong susceptibility to fouling, which collectively decrease permeance, increase operational costs, and shorten membrane lifespan. In recent years, substantial research efforts have focused on designing and engineering the surface chemistry and structural characteristics of nanofiltration membranes to improve water permeance, reduce foulant adhesion, and improve long-term stability. This review provides a comprehensive and comparative assessment of the most recent modification techniques applied to polymer-based nanofiltration membranes. Strategies such as polymer blending, nanoparticle incorporation, physical surface coating, plasma treatment, chemical attachment, layer-by-layer assembly, and interfacial polymerization are critically examined with respect to their effectiveness and practical limitations supported by recent research examples. Special attention is given to how these modification methods affect membrane morphology, hydrophilicity, permeance, and antifouling properties. Eventually, the review highlights emerging ideas and forward-looking design directions that may guide the next generation of nanofiltration membranes toward higher efficiency, improved durability, and broader industrial applicability. Full article
(This article belongs to the Special Issue Preparation and Application of Polymer Membranes)
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22 pages, 291 KB  
Review
Mitigating Monomer Leaching and Resin-Related Hypersensitivity in Removable Orthodontics Through Bio-Inspired Surface Modifications: A Narrative Review
by Lucia Giannini, Marco Farronato, Antonino Manti and Cinzia Maspero
Biomimetics 2026, 11(8), 555; https://doi.org/10.3390/biomimetics11080555 - 5 Aug 2026
Viewed by 333
Abstract
Background: During clinical service, removable orthodontic appliances are continuously exposed to environmental challenges that may compromise material stability and contribute to potentially increasing the risk of local inflammatory responses and hypersensitivity reactions. Method: A literature search was conducted using PubMed/MEDLINE, Scopus, and Web [...] Read more.
Background: During clinical service, removable orthodontic appliances are continuously exposed to environmental challenges that may compromise material stability and contribute to potentially increasing the risk of local inflammatory responses and hypersensitivity reactions. Method: A literature search was conducted using PubMed/MEDLINE, Scopus, and Web of Science databases. Studies investigating bio-inspired and surface-engineering approaches applicable to orthodontic polymers, acrylic resins, aligner materials, and related dental biomaterials were considered. Evidence from orthodontic adhesives and non-bio-inspired barrier coatings was included when relevant as comparative or translational support. Particular attention was given to polydopamine coatings, polyphenol- and tannic acid-based coatings, chitosan systems, peptide-functionalized surfaces, titanium and titanium oxide-based modifications, nanoparticle-enriched coatings, biomimetic hydrogel-like barriers, and conventional barrier coatings used as comparators. Results: Available evidence suggests that surface modifications reduce monomer diffusion, bacterial adhesion, biofilm formation, and improve cellular responses. Bio-inspired and titanium-based coatings show particular promise by enhancing biocompatibility while providing antimicrobial, antioxidant, anti-inflammatory, and protective barrier properties. Conclusions Bio-inspired surface engineering is a promising approach to improve the biological safety of removable orthodontic appliances. However, further standardized in vitro, in situ, and clinical studies are needed to confirm their long-term stability, durability, and clinical effectiveness in reducing hypersensitivity and other adverse biological effects. Full article
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8 pages, 5571 KB  
Proceeding Paper
Broadening ZnO: Ag Potential for Hydrogen Detection Applications via iCVD-Coated Thin-Film Polymer
by Mihai Brînză, Dinu Litra, Nicolae Magariu, Adrian Bîrnaz, Cristian Lupan, Lynn Schwäke, Vasilii Crețu, Stefan Schröder and Oleg Lupan
Eng. Proc. 2026, 148(1), 41; https://doi.org/10.3390/engproc2026148041 - 31 Jul 2026
Viewed by 313
Abstract
Considering the various applications where detection is required—whether for industrial or medical purposes—providing cost-efficient, stable, and highly selective solutions remains challenging. Different industries require hydrogen detectors, because this gas has the potential to serve as a clean and versatile energy carrier; therefore, precise [...] Read more.
Considering the various applications where detection is required—whether for industrial or medical purposes—providing cost-efficient, stable, and highly selective solutions remains challenging. Different industries require hydrogen detectors, because this gas has the potential to serve as a clean and versatile energy carrier; therefore, precise monitoring and feedback in such systems are of enormous importance. Simultaneously, the medical field is developing new therapeutic methods using hydrogen as a medical gas, while also utilizing it as a biomarker in exhaled breath for various gastric diseases. In this paper, a ZnO-based gas sensor, doped with Ag nanoparticles produced via the Solution Chemical Synthesis (SCS) method, was coated with a thin polymer film of poly(1,3,5,7-tetravinyl-1,3,5,7-tetramethylcyclotetrasiloxane) PV4D4 via initiated Chemical Vapor Deposition (iCVD). The results are promising: at a relatively high operating temperature of 350 °C, the sensor showed its highest registered response to H2 gas (up to 23%). Compared to other gases studied at the same temperature, the sensor also showed potential for detecting 2-propanol, n-butanol, and ethanol, albeit with lower responses. Based on the dynamic response analysis, the fastest reaction time was also recorded at the highest operating temperature, thus showing versatile possibilities for using the specified detector. Full article
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43 pages, 12995 KB  
Review
Sustainable Nanocomposite Films and Coatings for Meat Product Preservation: Recent Advances, Challenges, and Future Perspectives
by Wondemu Bogale Teseme, Shuai Wei, Jun Zhang and Shucheng Liu
Foods 2026, 15(15), 2632; https://doi.org/10.3390/foods15152632 - 27 Jul 2026
Viewed by 652
Abstract
Meat and meat products are highly susceptible to microbial spoilage, lipid oxidation, moisture loss, discoloration, and sensory deterioration, creating a need for effective, safe, and sustainable packaging solutions. Although previous studies have investigated biodegradable polymers, nanomaterials, and active packaging systems separately, an integrated [...] Read more.
Meat and meat products are highly susceptible to microbial spoilage, lipid oxidation, moisture loss, discoloration, and sensory deterioration, creating a need for effective, safe, and sustainable packaging solutions. Although previous studies have investigated biodegradable polymers, nanomaterials, and active packaging systems separately, an integrated assessment connecting material design, preservation mechanisms, safety, sustainability, and commercial feasibility remains limited. This review addresses this gap by critically evaluating recent advances in biodegradable nanocomposite films and coatings for meat preservation. Current evidence demonstrates that the incorporation of nanoscale reinforcements and bioactive agents into biopolymer matrices can enhance their mechanical performance, gas and moisture barrier properties, antimicrobial activity, antioxidant capacity, and controlled release behavior. However, these advantages are strongly influenced by the nanofiller characteristics, concentration, dispersion, polymer-nanofiller interactions, food matrix composition, and storage conditions. Excessive nanomaterial incorporation may promote aggregation, induce structural defects, reduce flexibility, and increase migration concerns. Despite promising preservation outcomes, most available studies remain limited to laboratory-scale investigations, variable testing protocols, and insufficient validation under real commercial conditions. Key challenges hindering industrial adoption include nanoparticle migration, long-term safety assessment, regulatory uncertainty, production costs, consumer acceptance, and limited life-cycle evaluation. Future research should focus on safe-by-design formulations, standardized real-food testing, scalable manufacturing approaches, controlled-release technologies, and integrated assessments of preservation efficiency, safety, economic feasibility, and environmental sustainability. Overall, biodegradable nanocomposite packaging represents a promising approach for extending meat shelf life; however, successful commercialization requires balancing enhanced preservation performance with safety assurance and industrial practicality. Full article
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38 pages, 1503 KB  
Review
Nanoparticle-Mediated Radiosensitization in Breast Cancer: A Systematic Review of Preclinical Evidence and Translational Challenges
by Sorinel Lunca, Stefan Morarasu and Gabriel Mihail Dimofte
Int. J. Mol. Sci. 2026, 27(14), 6522; https://doi.org/10.3390/ijms27146522 - 22 Jul 2026
Viewed by 560
Abstract
Radiotherapy is a cornerstone of breast cancer treatment, but its efficacy is frequently limited by intrinsic and acquired radioresistance as well as dose-limiting toxicity to surrounding normal tissues. Nanoparticle-mediated radiosensitization has emerged as a promising strategy to enhance the therapeutic index of irradiation [...] Read more.
Radiotherapy is a cornerstone of breast cancer treatment, but its efficacy is frequently limited by intrinsic and acquired radioresistance as well as dose-limiting toxicity to surrounding normal tissues. Nanoparticle-mediated radiosensitization has emerged as a promising strategy to enhance the therapeutic index of irradiation by combining physical dose amplification with biological, microenvironmental, and immunological modulation. In this systematic review, we evaluated preclinical evidence on nanoparticle-mediated radiosensitization in breast cancer, with emphasis on nanoplatform design, mechanistic patterns, therapeutic efficacy, and translational relevance. A total of 66 studies published between 2015 and 2026 were included. The identified systems encompassed a broad range of materials, including gold-, silver-, platinum-, bismuth-, gadolinium-, polymer-, lipid-, and hybrid-based nanoplatforms, frequently incorporating targeting ligands, catalytic components, biomimetic coatings, or therapeutic payloads. Enhanced radiation responses were most commonly associated with high-atomic-number (high-Z)-mediated energy deposition, increased reactive oxygen species generation, and enhanced DNA damage persistence. Additional mechanisms, including redox modulation, hypoxia targeting, regulated cell death, and immune activation, reflect the evolution of nanoparticle-assisted radiotherapy from predominantly physical radioenhancement toward multifunctional physicobiological strategies. Triple-negative breast cancer models predominated throughout the literature. Across preclinical models, nanoparticle-assisted irradiation consistently improved clonogenic survival, tumor control, and, in selected studies, survival. However, substantial heterogeneity in study design and limited use of rigorous radiobiological endpoints restricted cross-study comparability. The available preclinical evidence indicates that the most promising nanoparticle-mediated radiosensitization strategies integrate physical dose enhancement with biologically active mechanisms targeting oxidative stress, hypoxia, persistent DNA damage, immune signaling, and tumor microenvironmental resistance. Collectively, these findings suggest that the field is evolving from predominantly physical radioenhancement toward multifunctional, mechanism-driven physicobiological strategies. However, clinical translation remains constrained by methodological heterogeneity and limited radiobiological validation, highlighting the need for standardized preclinical evaluation and clinically feasible nanoplatforms tailored to subtype-specific mechanisms of radioresistance. Full article
(This article belongs to the Section Molecular Oncology)
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28 pages, 16133 KB  
Review
Combination-Based Biofunctional Coatings for Veterinary Biofilm-Associated Infections
by Muhammad Hassan Khalid, Bilal Aslam and Sulaiman F. Aljasir
Antibiotics 2026, 15(7), 703; https://doi.org/10.3390/antibiotics15070703 - 19 Jul 2026
Viewed by 637
Abstract
Biofilm-associated infections present a significant but insufficiently acknowledged problem in veterinary medicine because they result in persistent infections that lead to unsuccessful treatments and drive the growth of antimicrobial resistance throughout animal healthcare systems. The extracellular matrix of biofilms together with their resistance [...] Read more.
Biofilm-associated infections present a significant but insufficiently acknowledged problem in veterinary medicine because they result in persistent infections that lead to unsuccessful treatments and drive the growth of antimicrobial resistance throughout animal healthcare systems. The extracellular matrix of biofilms together with their resistance mechanisms make traditional antimicrobial methods ineffective against these structures. The development of combination-based biomaterial coatings represents an effective solution for biofilm control since these coatings combine different antimicrobial capabilities into one surface treatment. This review offers an in-depth evaluation of veterinary-focused combination-based coating systems which scientists developed to create solutions for catheterization, orthopedic, dental implant procedures, wound treatment and aquaculture infrastructure. This review also examines various coating methods to determine their effectiveness in creating surfaces that optimize antimicrobial delivery. However, the development of veterinary medical solutions faces major obstacles because the technology needs to overcome some key issues, which include maintaining stability through time, protecting animal health, preventing environmental harm and meeting regulatory standards. Overall, the use of multifunctional biomaterial functional coatings provides veterinary medicine with a revolutionary method to handle biofilm-related infections in animals, which decreases the need for antibiotics while improving infection control according to One Health principles. Full article
(This article belongs to the Special Issue Antibacterial and Antibiofilm Properties of Biomaterial)
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30 pages, 2708 KB  
Review
Quaternary Ammonium-Functionalized Chitosan as a Next-Generation Antifungal Platform: Chemistry, Mechanisms, and Therapeutic Applications
by Neha Jain, Shreya Kaul, Rupali Verma, Triveni, Krishna Kant Jangde, Unnati Garg, Dinesh Kumar Mishra, Upendra Nagaich and Mahmoud H. Abu Elella
Mar. Drugs 2026, 24(7), 249; https://doi.org/10.3390/md24070249 - 17 Jul 2026
Cited by 1 | Viewed by 1231
Abstract
Fungal infection remains a significant therapeutic concern owing to the scarcity of drugs, resistance development, and high levels of toxicity of many conventional antifungals. In this regard, chitosan is one such natural polymer whose biocompatibility, biodegradability, and antimicrobial nature have made it the [...] Read more.
Fungal infection remains a significant therapeutic concern owing to the scarcity of drugs, resistance development, and high levels of toxicity of many conventional antifungals. In this regard, chitosan is one such natural polymer whose biocompatibility, biodegradability, and antimicrobial nature have made it the focus of scientific interest. However, the main problem lies in the polymer’s limited aqueous solubility under physiological conditions and its poor efficacy against fungi. Thus, quaternary ammonium functionalization represents a convenient approach to solving the problem by introducing permanent positive charges into the molecular structure of chitosan, thereby improving water solubility, enabling membrane interactions, and conferring broad-spectrum antifungal activity. Such derivatives can exhibit strong interactions with the negatively charged surface of fungal cells, compromising membrane integrity and inhibiting biofilm formation. Apart from their antifungal activity, such compounds are also promising in local delivery systems, which include coatings, nanoparticles, hydrogels, and wound dressings. Considering their unique chemistry, such compounds appear quite promising for the development of novel antifungal biomaterials that can be adapted to different clinical and pharmaceutical needs. Overall, quaternary ammonium-modified chitosan could be considered a promising platform for the development of next-generation antifungal agents. This review offers a comprehensive discussion regarding the synthesis, mode of action, formulation advancements, safety profile, potential applications, and future directions of quaternary ammonium-functionalized chitosan derivatives as an antifungal agent, with an emphasis on artificial intelligence contributions to this area of research. Full article
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31 pages, 9920 KB  
Article
Structure–Property–Transport Relationship in Hyaluronic Acid/ZnO Nanocomposite Dissolving Microneedles for Transdermal Ciprofloxacin Delivery
by Kolawole S. Dada, Roman O. Olekhnovich, Falia F. Zaripova, Vladimir D. Kalganov and Oleg N. Petrovich
Macromol 2026, 6(3), 46; https://doi.org/10.3390/macromol6030046 - 10 Jul 2026
Viewed by 590
Abstract
Polymeric microneedles are introduced as a promising platform for minimally invasive drug delivery and molecular transport control. In the present study, hollow dissolving nanocomposite microneedles based on a mixture of high- and low-molecular-weight hyaluronic acid (HA) in a 40:60 ratio, including zinc oxide [...] Read more.
Polymeric microneedles are introduced as a promising platform for minimally invasive drug delivery and molecular transport control. In the present study, hollow dissolving nanocomposite microneedles based on a mixture of high- and low-molecular-weight hyaluronic acid (HA) in a 40:60 ratio, including zinc oxide nanoparticles (ZnO NPs), have been created and evaluated as hydrated polymer transport matrices. Surface modification of ZnO nanoparticles using citric acid was proposed to improve dispersion by reducing agglomeration of nanoparticles in the polymer matrix. ZnO nanoparticles in concentrations ranging from 1 to 10% (w/w) were used to study the effects of the loading level of nanoparticles on the structure, mechanical response, and controlled diffusion behavior of hydrated polymer matrices. The created nanocomposites exhibited clear hollow structures with tip radius of 18–23 μm, height of 1500 μm, and aspect ratio of 5.7. Nanoscale surface organization and particle dispersion in the polymer matrix were studied by scanning electron microscope (SEM) and atomic force microscope (AFM). Low nanoparticle concentrations were favorable for maintaining high matrix homogeneity, while high concentrations resulted in increased surface roughness and nanoparticle agglomeration. Mechanical compression testing confirmed that hydrated HA/ZnO microneedles were characterized by elastic bending behavior until fracture. Diffusion experiments performed in Franz diffusion cells showed that nanoparticle concentration significantly impacted the cumulative transport and flux of molecules through the hydrated microneedle matrix. Formulations with 5% and 7% ZnO nanoparticles were characterized by a prolonged diffusion behavior attributed to ZnO-induced tortuous transport channels in the polymer matrix. In contrast, formulations with 10% ZnO nanoparticles exhibited accelerated heterogeneous transport due to ZnO-induced changes in structure and morphology. The experimental diffusion data correlated well with the Higuchi kinetic model, and anomalous transport was detected using the Korsmeyer–Peppas model, which indicated a synergistic effect of diffusion and polymer relaxation on molecular transport. As compared to coating and tip-loaded microneedle designs, the obtained HA/ZnO nanocomposite microneedles offered a simple approach for embedding Ciprofloxacin in the hydrated polymer matrix. This was achieved due to the direct creation of microneedles containing dissolved particles. Full article
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69 pages, 2040 KB  
Review
Chitosan and Chitin-Derived Biomaterials in Orthopedics: A Structured Narrative Review of Polymer Design, Quantitative Performance, and Clinical Translation
by Furkan Yapıcı
Polymers 2026, 18(13), 1644; https://doi.org/10.3390/polym18131644 - 1 Jul 2026
Viewed by 568
Abstract
Chitosan and chitin-derived biomaterials, including native chitosan and chemically modified derivatives, have been widely investigated across orthopedic tissue engineering, implant functionalization, infection control, local delivery, and interface repair, but the evidence is dispersed across heterogeneous formats and indications. This single-author structured narrative review [...] Read more.
Chitosan and chitin-derived biomaterials, including native chitosan and chemically modified derivatives, have been widely investigated across orthopedic tissue engineering, implant functionalization, infection control, local delivery, and interface repair, but the evidence is dispersed across heterogeneous formats and indications. This single-author structured narrative review synthesizes 258 unique publications and interprets chitosan through a polymer design, quantitative performance, and clinical translation framework. Literature was identified (January–May 2026) using PubMed/MEDLINE as the primary database, with targeted verification in Web of Science, Scopus, and Google Scholar; no formal risk-of-bias or certainty grading was performed. Chitosan was studied as scaffolds, hydrogels, coatings, nanoparticles, microspheres, fibers, bioadhesives, bone-cement additives, cartilage adjuncts, tendon-to-bone systems, and intervertebral disk biomaterials. The highest human clinical evidence supported BST-CarGel/chitosan–blood implant augmentation of knee marrow stimulation, where randomized, 5-year, and biopsy data favored structural repair over microfracture alone; most other applications—bone regeneration, coatings, osteomyelitis hydrogels, bone cements, tendon/rotator cuff systems, and disk biomaterials—remain preclinical or translational-preclinical. Chitosan should be interpreted as a tunable polymer platform, not a single material; translation requires chemistry-defined formulation, indication-specific mechanical qualification, clinically relevant comparators, and standardized reporting. Full article
(This article belongs to the Section Biobased and Biodegradable Polymers)
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29 pages, 3048 KB  
Review
Technological Paradigms in Corrosion-Protection Coatings: A Citation Network Analysis of Evolution and Integration
by José Saúl Arias-Cerón, Ángel Guillén-Cervantes, Juan Carlos Pérez-García, Eva Ugarte-Pineda and Gilberto Parra-Huerta
Coatings 2026, 16(7), 785; https://doi.org/10.3390/coatings16070785 - 1 Jul 2026
Viewed by 490
Abstract
Corrosion-protective coatings have progressed from passive barrier systems and chromate-based technologies toward multifunctional materials that integrate barrier durability, interfacial adhesion, active inhibition, electrochemical response, and self-healing capabilities. However, the intellectual framework connecting these technological developments remains fragmented, as most reviews focus on specific [...] Read more.
Corrosion-protective coatings have progressed from passive barrier systems and chromate-based technologies toward multifunctional materials that integrate barrier durability, interfacial adhesion, active inhibition, electrochemical response, and self-healing capabilities. However, the intellectual framework connecting these technological developments remains fragmented, as most reviews focus on specific material families rather than on the broader evolution of the field. This study examines technological paradigms in corrosion-protective coatings through a citation network analysis of highly cited publications retrieved from Web of Science and processed with CitNetExplorer. The most influential publications were thematically reviewed to identify dominant materials, coating architectures, protection mechanisms, seminal contributions, and bridge articles. Four principal paradigms were identified: smart and self-healing coatings based on nanocontainers, layered double hydroxides, mesoporous silica, halloysite, zeolites, hydroxyapatite reservoirs, and microcapsules; chromate-free sol–gel and silane pretreatments based on organic–inorganic hybrid matrices, organosilanes, rare-earth inhibitors, and oxide nanoparticles; graphene and graphene oxide-based nanocomposite coatings in which two-dimensional fillers enhance tortuosity, reduce water uptake, and reinforce polymer matrices and coating–substrate interfaces; and electroactive coatings based mainly on polyaniline and polypyrrole, where protection is associated with passivation, redox mediation, and dopant-controlled inhibition. The findings indicate that corrosion-protective coatings have evolved through partially overlapping and increasingly integrated paradigms rather than through a single technological trajectory. This citation network analysis clarifies the transition from chromate replacement toward active, nanostructured, electroactive, and self-healing corrosion-protective systems. Full article
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32 pages, 989 KB  
Review
Chitosan-Based Technologies in the Food Industry: Functional Properties, Advanced Applications, and Future Perspectives
by Ioana Cristina Crivei, Roxana Nicoleta Ratu, Ionuț-Dumitru Velescu, Florin Daniel Lipșa, Florina Stoica, Andreea Bianca Balint, Ina Iuliana Pavel and Luciana Alexandra Crivei
Appl. Sci. 2026, 16(12), 6197; https://doi.org/10.3390/app16126197 - 18 Jun 2026
Cited by 2 | Viewed by 802
Abstract
Chitosan, produced through deacetylation of chitin from crustacean byproducts and, increasingly, fungal biomass and insects, is attracting food-sector interest because it combines antimicrobial activity, antioxidant capacity, biodegradability, and film-forming behavior in a single polymer. This review discusses how source, molecular weight (MW), degree [...] Read more.
Chitosan, produced through deacetylation of chitin from crustacean byproducts and, increasingly, fungal biomass and insects, is attracting food-sector interest because it combines antimicrobial activity, antioxidant capacity, biodegradability, and film-forming behavior in a single polymer. This review discusses how source, molecular weight (MW), degree of deacetylation, solubility, and charge density shape its performance in food systems. The paper then follows the main technological routes now tested or used: edible films and coatings, hydrogels, cryogels, nanoparticles, microcapsules, and hybrid matrices. These formats can protect fresh produce, meat, poultry, fish, seafood, and dairy foods, while also supporting beverage clarification, emulsion control, release of natural antimicrobials or antioxidants, and freshness monitoring in active or intelligent packaging. The evidence indicates strong promise, especially where microbial growth, lipid oxidation, moisture transfer, and short shelf life remain limiting factors. Yet, wider industrial use is still slowed by water sensitivity, sensory effects, raw-material variation, cost, process scale-up, and regulatory alignment. Future work should move beyond laboratory efficacy and address reproducible production, food-specific validation, and consumer acceptance. Full article
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29 pages, 5125 KB  
Article
Sustainable Production of High-Performance Antimicrobial Scaffold via an Engineered Halomonas Dual-Product Factory
by Ehab Marwan-Abdelbaset, Xiaoyun Lu and Dan Tan
Biomolecules 2026, 16(6), 889; https://doi.org/10.3390/biom16060889 - 17 Jun 2026
Viewed by 530
Abstract
This study presents a transformative “one-pot” biorefinery approach for the simultaneous production of hyaluronic acid (HA) and polyhydroxybutyrate (PHB) using an engineered, non-pathogenic Halomonas bluephagenesis TD01 chassis. By leveraging the principles of Next-Generation Industrial Biotechnology (NGIB), a one-step fermentation process was developed in [...] Read more.
This study presents a transformative “one-pot” biorefinery approach for the simultaneous production of hyaluronic acid (HA) and polyhydroxybutyrate (PHB) using an engineered, non-pathogenic Halomonas bluephagenesis TD01 chassis. By leveraging the principles of Next-Generation Industrial Biotechnology (NGIB), a one-step fermentation process was developed in nutrient-rich 40-LBG-Y medium, achieving a balanced metabolic flux that yielded 1.99 g/L and high-molecular-weight (HMw) HA (9.6 × 106 Da) as the highest HA-Mw reported by heterogeneous bacteria, alongside intracellular PHB (0.68 to 1.6 g/L). A bioactive HA-PHB nanoparticle scaffold was fabricated, exhibiting a highly porous, interconnected 3D sponge-like architecture with a significant particle size shift from 12 nm to 450 nm, confirming successful polymer complexation. Antimicrobial evaluations revealed that the scaffold exhibited preliminary antimicrobial potential against representative Gram-positive and Gram-negative strains against Staphylococcus aureus, Klebsiella variicola, and Candida albicans. Notably, while Pseudomonas aeruginosa metabolically exploited purified HA, the integrated scaffold reversed this effect, providing preliminary antimicrobial potential by sterically hindering bacterial hyaluronidases. Furthermore, Halomonas-derived HA consistently outperformed Moringa oil and complex emulsions in preliminary tests against a wide range of pathogenic microbes. These results demonstrate that this dual-product platform provides a sustainable, cost-effective source of high-performance functional materials for advanced antimicrobial coatings and clinical wound management. Full article
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30 pages, 8149 KB  
Review
Recent Advances in Modification Strategies and Functional Applications of Raw Lacquer: A Comprehensive Review
by Xiao Li, Yihua Qian, Xiaoyu Wu, Yunyao Zheng, Xinhao Feng and Xinyou Liu
Materials 2026, 19(12), 2489; https://doi.org/10.3390/ma19122489 - 10 Jun 2026
Cited by 2 | Viewed by 448
Abstract
Raw lacquer, a natural polymer derived from the bast of lacquer trees (Toxicodendron vernicifluum), is renowned as the “King of Coatings” due to its exceptional film-forming properties, abrasion resistance, corrosion resistance, and biocompatibility. However, its inherent limitations—including stringent drying conditions, slow [...] Read more.
Raw lacquer, a natural polymer derived from the bast of lacquer trees (Toxicodendron vernicifluum), is renowned as the “King of Coatings” due to its exceptional film-forming properties, abrasion resistance, corrosion resistance, and biocompatibility. However, its inherent limitations—including stringent drying conditions, slow curing rates, deep coloration, and difficult application—have severely restricted its modernization and widespread adoption. This review systematically summarizes recent research advances in the modification and application of raw lacquer, focusing on four major modification strategies: (1) Nanocomposite modification—incorporating functional nanofillers such as Al2O3, cellulose nanofibrils (CNF), polydopamine (PDA) melanin-like nanoparticles, and SiO2 to significantly enhance film hardness, compactness, UV-aging resistance, and drying kinetics. (2) Chemical structure modification—employing molecular design strategies including aminoanthraquinone grafting, tung oil blending, water-based emulsification, and terpene/allyl group functionalization to improve hydrophobicity, flexibility, fast-drying properties, and achieve dual photo/oxygen curing. (3) Biomass synergistic composites—utilizing natural polymers such as chitosan and lignin, along with bio-inspired adhesion mechanisms (e.g., PDA), to confer advanced functionalities including antibacterial and antifouling properties. (4) Curing behavior regulation—precisely controlling drying kinetics through inorganic salt ion microenvironment engineering, nonionic surfactants, and salicylaldehyde Schiff base-based driers. Building upon these foundations, this review further expands on the emerging high-value applications of modified lacquer in preventive conservation of cultural heritage, advanced functional coatings (anti-corrosion, super-hydrophobicity, flame retardancy), biomedical materials (hemostasis, antibacterial activity, drug-controlled release, water treatment adsorption), and intelligent responsive flexible electronics. Finally, addressing challenges including weak fundamental research, bottlenecks in green industrialization, and lack of standardization, future development directions are proposed encompassing interdisciplinary innovation, sustainable modification strategies, integration of multifunctional intelligent systems, and big data-driven research paradigms, aiming to provide theoretical guidance and technical references for the high-value utilization and modernization of lacquer resources. Full article
(This article belongs to the Section Green Materials)
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39 pages, 1619 KB  
Review
Why Graphene Oxide and Nano-SiO2 Continue to Face Challenges in Architectural Coatings: A Systematic Review and Meta-Analysis
by Kseniia Burkovskaia, Michał Strankowski and Krzysztof Szafran
Coatings 2026, 16(6), 634; https://doi.org/10.3390/coatings16060634 - 23 May 2026
Viewed by 567
Abstract
Graphene derivatives and nano-silicon dioxide (nano-SiO2) have been widely studied as functional nanofillers for architectural coatings. They have the potential to improve mechanical performance, barrier properties, durability, and versatility. However, despite encouraging results in laboratory settings, their use in commercial coating [...] Read more.
Graphene derivatives and nano-silicon dioxide (nano-SiO2) have been widely studied as functional nanofillers for architectural coatings. They have the potential to improve mechanical performance, barrier properties, durability, and versatility. However, despite encouraging results in laboratory settings, their use in commercial coating formulations is still limited. This is mainly due to challenges with dispersing nanoparticles, ensuring compatibility with polymer binders, maintaining long-term durability, and achieving formulation stability. In this work, we conducted a thorough review and meta-analysis of 20 peer-reviewed studies to evaluate the performance and limitations of graphene-based materials and nano-SiO2 in architectural and protective coatings. Our literature search followed PRISMA guidelines and included studies that provided quantitative data on dispersion methods, surface functionalization strategies, nanofiller loading levels, and coating performance metrics. This review highlights key relationships between structure, properties, and processing. It points out ongoing challenges that prevent practical use and suggests future research directions to enhance formulation design, improve dispersion stability, and extend the long-term performance of graphene- and nano-SiO2-modified architectural and protective coatings. Full article
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39 pages, 1430 KB  
Review
Polymer Nanoparticles in Medical Applications—Future Directions
by Barbara Zawidlak-Węgrzyńska and Joanna Rydz
Nanomaterials 2026, 16(10), 630; https://doi.org/10.3390/nano16100630 - 19 May 2026
Cited by 4 | Viewed by 1179
Abstract
Polymer-based nanoparticle systems have emerged as a versatile platform for advancing precision medicine by enabling controlled, targeted, and multifunctional drug delivery. This narrative review synthesizes recent progress in the design, functionalization, and clinical translation of polymer-based nanoparticles, with a focused scope on drug [...] Read more.
Polymer-based nanoparticle systems have emerged as a versatile platform for advancing precision medicine by enabling controlled, targeted, and multifunctional drug delivery. This narrative review synthesizes recent progress in the design, functionalization, and clinical translation of polymer-based nanoparticles, with a focused scope on drug delivery, diagnostics, theranostics, nanosponges, and regenerative medicine. Specifically, it highlights three key insights: (i) surface engineering strategies, including ligand conjugation and stealth coatings, substantially enhance targeting specificity and reduce off-target toxicity; (ii) stimulus-responsive polymers enable spatiotemporally controlled drug release, improving therapeutic outcomes in complex disease microenvironments; and (iii) integration with artificial intelligence (AI) supports the rational design of personalized nanomedicines based on patient-specific molecular profiles. The innovative nature of this review lies in its comprehensive approach, which combines material design parameters with clinical outcomes and the barriers to implementation. Despite significant progress, serious challenges remain, including scalable and reproducible manufacturing, regulatory harmonization, and comprehensive long-term biosafety assessment. In the future, the priority should be to develop reliable manufacturing processes, a harmonized regulatory framework, and data-driven, clinically validated design methodologies. Overall, polymer-based nanoparticles are poised to redefine targeted therapy, but their clinical impact will depend on bridging the gap between laboratory innovation and scalable, safe, and personalized medical applications. Full article
(This article belongs to the Special Issue Nanosomes in Precision Nanomedicine (Second Edition))
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