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Search Results (282)

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Keywords = natural and synthetic potential for biodegradation

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21 pages, 833 KB  
Review
Biodegradable Guided Bone Regeneration Membranes for Periodontal Regeneration in Dogs
by Laura Costa Pinho, Catarina Santos, Maria Helena Fernandes and Bruno Colaço
Dent. J. 2026, 14(8), 522; https://doi.org/10.3390/dj14080522 - 14 Aug 2026
Viewed by 332
Abstract
Guided bone regeneration (GBR) is a widely used clinical approach for managing bone defects associated with periodontal disease in dogs, employing barrier membranes to selectively direct tissue regeneration. The performance of these membranes is influenced by composition, structural design, and degradation behavior, which [...] Read more.
Guided bone regeneration (GBR) is a widely used clinical approach for managing bone defects associated with periodontal disease in dogs, employing barrier membranes to selectively direct tissue regeneration. The performance of these membranes is influenced by composition, structural design, and degradation behavior, which together determine biological responses and clinical outcomes. Biodegradable GBR membranes, fabricated from natural polymers, synthetic polymers, or composite materials, offer advantages over non-biodegradable membranes, including controlled resorption, elimination of secondary surgery, and the potential for delivery of bioactive agents. Preclinical studies in dogs have demonstrated that GBR membranes can promote periodontal regeneration, including bone and cementum formation and space maintenance; however, optimization of degradation behavior remains critical to align membrane resorption with tissue healing in some cases. Clinical studies in dogs with naturally occurring periodontal disease remain scarce, and only two biodegradable membranes (Ossiflex® and Doxirobe®) are commercially approved for veterinary use, while all others are applied off-label. These limitations highlight the need for more adaptable and cost-effective regenerative strategies, including membranes that can be customized to different defect sizes and multifunctional membranes incorporating bioactive agents that will offer an advanced regenerative potential and improved predictability in veterinary periodontal therapy. Full article
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74 pages, 7813 KB  
Review
Biopolymer-Based Hydrogels for Wound Healing: Advances in Cellulose, Chitosan, Alginate, and Hyaluronic Acid from Design to Clinical Translation
by Shery Jacob, Namitha Raichel Varkey, Sai H. S. Boddu, Jigar N. Shah, Rekha Rao and Anroop B. Nair
Pharmaceuticals 2026, 19(8), 1210; https://doi.org/10.3390/ph19081210 - 1 Aug 2026
Viewed by 753
Abstract
Wound healing is a multifaceted biological process comprising the phases of hemostasis, inflammation, proliferation, and remodeling, all of which require supportive microenvironment for optimal tissue regeneration. Biopolymer-based hydrogels, derived from materials such as cellulose and its derivatives, chitosan, alginate, and hyaluronic acid, have [...] Read more.
Wound healing is a multifaceted biological process comprising the phases of hemostasis, inflammation, proliferation, and remodeling, all of which require supportive microenvironment for optimal tissue regeneration. Biopolymer-based hydrogels, derived from materials such as cellulose and its derivatives, chitosan, alginate, and hyaluronic acid, have emerged as promising wound dressing materials due to their excellent biocompatibility, biodegradability, moisture-retention capacity, and potential to mimic the native extracellular matrix. The structural characteristics, wound healing functions, and underlying mechanisms of these biopolymers are critically examined and summarized in tabular form. The review further highlights the incorporation of natural and synthetic therapeutic agents, growth factors, stem-cell-derived products, and peptides into biopolymer matrices to enhance therapeutic efficacy. The examined research findings indicate significant increases in fluid intake, moisture retention, antibacterial activity, angiogenesis, collagen deposition, tissue regeneration, and wound healing rates. Translational difficulties, regulatory issues, clinical research, and new patent activity pertaining to advanced wound healing biomaterials are also covered in the review. Despite tremendous improvements, issues still exist in bulk manufacturing, long-term safety, reproducibility, mechanical stability, and clinical validation. Future innovations are anticipated to concentrate on smart, multipurpose, and customized hydrogel systems that can integrate drug delivery, biosensing, and regenerative capabilities while reacting dynamically to wound microenvironments. Overall, biopolymer-based hydrogels are a flexible, rapidly developing platform with significant promise to improve next-generation skin tissue engineering and change the treatment of both acute and chronic wounds. Full article
(This article belongs to the Section Pharmaceutical Technology)
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22 pages, 19596 KB  
Article
Hierarchical Silica–Cellulose Nanoarchitectures from Rice Straw: A Waste-to-Value Platform for Autonomous Osteogenic Bone Regeneration
by Zahra Khaleghi Moghadam, Mohammad Nourany, Saadi Hosseini, Naser Farokhi, Atefeh Alipour, Pär K. Ingvarsson and Hosein Shahsavarani
J. Funct. Biomater. 2026, 17(8), 367; https://doi.org/10.3390/jfb17080367 - 30 Jul 2026
Viewed by 354
Abstract
Current bone regeneration strategies face significant constraints, relying either on synthetic scaffolds with slow degradation that require biochemical supplements or on bioactive fillers. Recently, the focus has shifted towards functional natural biomaterials with inherent osteoinductive potential. This study presents a promising candidate based [...] Read more.
Current bone regeneration strategies face significant constraints, relying either on synthetic scaffolds with slow degradation that require biochemical supplements or on bioactive fillers. Recently, the focus has shifted towards functional natural biomaterials with inherent osteoinductive potential. This study presents a promising candidate based on a silica-containing plant-derived scaffold fabricated from rice straw, a sustainable resource with >20 wt.% silica. Morphological analyses revealed that the decellularised rice straw scaffold exhibits a unique surface pattern with a three-dimensional nanoarchitecture featuring parallel fibrillar protrusions and cellulosic spikes evenly distributed across the surface. Elemental mapping revealed abundant silicon, with minor traces of calcium and phosphorus, all of which are crucial components of bioactive minerals. The scaffold was highly biodegradable, with 81.7% weight loss after 90 days, attributed to its high water absorption (337%). The scaffold demonstrated excellent biocompatibility, maintaining MG63 cell viability and promoting robust adhesion and proliferation, with relative metabolic activity increasing from 105% at day 5 to 125% at day 7 relative to TCPS controls. Most remarkably, when seeded with adipose-derived human mesenchymal stem cells (hMSCs) in the absence of osteogenic medium, the scaffold induced significant biomineralisation. This osteoinductive capacity is attributed to its unique surface pattern, high roughness, and polar cellulosic substrate, together with bioactive silica that releases soluble silicon species. This work represents how agricultural waste can be upcycled for autonomous bone regeneration. Full article
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43 pages, 1474 KB  
Review
Natural Macromolecules as Building Blocks for Microcapsule Formation in Drug Delivery
by Isidora Lajevec, Nebojša Pavlović, Dejan Ćirin and Veljko Krstonošić
Pharmaceutics 2026, 18(7), 839; https://doi.org/10.3390/pharmaceutics18070839 - 9 Jul 2026
Viewed by 876
Abstract
Background/Objectives: Microcapsules are particles 1–1000 µm in size, with a core containing the active substance (in liquid, solid, or gaseous state) and a shell typically composed of natural, synthetic, or semi-synthetic polymers. Although natural polymer-based microcapsules have applications in food, cosmetics, and [...] Read more.
Background/Objectives: Microcapsules are particles 1–1000 µm in size, with a core containing the active substance (in liquid, solid, or gaseous state) and a shell typically composed of natural, synthetic, or semi-synthetic polymers. Although natural polymer-based microcapsules have applications in food, cosmetics, and other industries, this review primarily focuses on their role in pharmaceutical drug delivery. In recent years, natural macromolecules have gained increasing attention as coating materials due to their biocompatibility, biodegradability, low toxicity, mucoadhesive properties, and ability to enable controlled and targeted drug release. Based on previous research, this review provides an overview of microcapsules, the most common microencapsulation methods, natural polymers used as wall materials, and their pharmaceutical applications across different routes of administration. Results: By encapsulating active ingredients, microcapsules enhance their bioavailability, prolong their release, protect them, enable targeted delivery, and mask unpleasant tastes and odors. Among the most commonly used microencapsulation techniques are physical methods (spray drying, spray cooling, solvent evaporation, spray coating, and freeze drying) and physicochemical methods (coacervation). Natural polymers, particularly polysaccharides and proteins, have been successfully used in oral, topical, transdermal, pulmonary, and colon-targeted drug delivery systems, as well as for the stabilization and delivery of peptides, proteins, probiotics, and vaccines. Conclusions: Proper selection of microencapsulation technique depends on the properties of the polymer and the core material. Natural polymers represent versatile pharmaceutical excipients owing to their biocompatibility, biodegradability, safety, mucoadhesive behavior, and ability to provide controlled and targeted drug delivery. Their successful application with a wide range of therapeutic agents and administration routes highlights their considerable potential for the development of advanced drug delivery systems. Full article
(This article belongs to the Special Issue Biocompatible Polymers for Drug Delivery)
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28 pages, 680 KB  
Review
Selected Alien Macroalgae Species from Madeira Archipelago as a Source of Sustainable Antifungal and Elicitor Agents: A Review on Their Valorization Potential and Green Extraction Approaches
by Emmanuel Nunes, Nuno Nunes and Miguel Â. A. Pinheiro de Carvalho
Mar. Drugs 2026, 24(6), 206; https://doi.org/10.3390/md24060206 - 10 Jun 2026
Viewed by 2462
Abstract
Non-indigenous or alien macroalgae are increasingly recognized as ecological threats, sources of raw material, and reservoirs of bioactive compounds for industry and agriculture. This review analyses the valorization potential of this biomass, focusing on their antifungal and elicitor activities against phytopathogenic fungi, particularly [...] Read more.
Non-indigenous or alien macroalgae are increasingly recognized as ecological threats, sources of raw material, and reservoirs of bioactive compounds for industry and agriculture. This review analyses the valorization potential of this biomass, focusing on their antifungal and elicitor activities against phytopathogenic fungi, particularly Mediterranean (De Bary) Whetzel, 1945. The literature published since 2020 was retrieved from Scopus using targeted keyword combinations. Three major topics were examined: (i) invasive and beach-cast macroalgal and their ecological context, (ii) antifungal and elicitor properties of macroalgal extracts, and (iii) the use of deep eutectic solvents (DES) for the green extraction of bioactive compounds. Species such as Asparagopsis armata, Rugulopteryx okamurae, and Sargassum muticum have shown promising antifungal and elicitor effects, frequently associated with phenolic compounds and polysaccharides. Extracts from these algae can inhibit the growth of fungi or activate plant defense pathways, providing environmentally friendly alternatives to synthetic pesticides. Moreover, DES and natural DES (NADES) offer tunable, biodegradable solvents capable of efficiently extracting these bioactive molecules while reducing the environmental impact associated with conventional organic solvents. Overall, the valorization of this biomass represents a sustainable strategy that simultaneously mitigates ecological and economic impacts and contributes to the development of sustainable inputs in agriculture. Full article
(This article belongs to the Special Issue Pharmacognostic Potential of Seaweed Extracts and Metabolites)
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14 pages, 1696 KB  
Review
Sustainable Potential of Piper Essential Oils Against Agricultural Pests of the Order Lepidoptera: A Review
by Igor Alencar Sales da Silva and Fernando Cotinguiba
Sustain. Chem. 2026, 7(2), 25; https://doi.org/10.3390/suschem7020025 - 9 Jun 2026
Viewed by 704
Abstract
Lepidopteran pests cause severe global economic damage; they are currently mitigated by synthetic pesticides that trigger widespread resistance and environmental toxicity. This systematic review evaluates the potential of Piper essential oils (EOs) as high-performance, sustainable bio-based insecticides, aligning with the 12 Principles of [...] Read more.
Lepidopteran pests cause severe global economic damage; they are currently mitigated by synthetic pesticides that trigger widespread resistance and environmental toxicity. This systematic review evaluates the potential of Piper essential oils (EOs) as high-performance, sustainable bio-based insecticides, aligning with the 12 Principles of Green Chemistry. Analyzing studies covering Piper species, we identified phenylpropanoids (e.g., dillapiole and safrole) and terpenoids as key biodegradable scaffolds for pest management. The results highlight P. aduncum and P. divaricatum for their exceptional efficacy against Spodoptera frugiperda and Plutella xylostella, often exhibiting toxicity levels comparable to botanical standards like azadirachtin. Crucially, this review reveals that Piper EOs can outperform the synthetic industrial synergist piperonyl butoxide (BPO), with natural binary mixtures enhancing insecticidal potency by up to 11-fold. Furthermore, specific EOs contribute to a preventative green strategy by causing the structural disintegration of the egg chorion. By focusing on renewable biomass and design for degradation (Principles 7 and 10), this work anchors the Piper genus as a cornerstone for the circular bioeconomy and sustainable agricultural innovation, reducing the chemical footprint of modern crop protection. Full article
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33 pages, 2869 KB  
Review
Biodegradation of Microplastics by Filamentous Fungi: A Novel Approach for Polymer Remediation
by Alex Graça Contato and Carlos Adam Conte-Junior
Microplastics 2026, 5(2), 109; https://doi.org/10.3390/microplastics5020109 - 4 Jun 2026
Cited by 1 | Viewed by 1197
Abstract
Microplastic pollution has become a significant environmental concern due to its persistence and widespread impact across ecosystems. These plastic particles (1 μm to 5 mm), originating from larger plastic debris or industrial sources, accumulate in diverse habitats, affecting biodiversity and human health. Microplastics [...] Read more.
Microplastic pollution has become a significant environmental concern due to its persistence and widespread impact across ecosystems. These plastic particles (1 μm to 5 mm), originating from larger plastic debris or industrial sources, accumulate in diverse habitats, affecting biodiversity and human health. Microplastics resist natural degradation, posing challenges to both ecological sustainability and waste management strategies. Although numerous studies have explored microbial degradation, most existing research focuses primarily on bacteria, leaving the role of filamentous fungi comparatively underexplored. This represents a significant research gap, because fungi secrete a variety of extracellular enzymes, including laccases, peroxidases, and esterases, which play crucial roles in the breakdown of synthetic polymers. These enzymes facilitate the depolymerization of microplastics by targeting polymer chains and increasing their susceptibility to further microbial degradation. However, the underlying enzymatic mechanisms and their effectiveness in microplastic remediation remain insufficiently characterized. Here, we critically review the potential of filamentous fungi for microplastic biodegradation, emphasizing their oxidative and hydrolytic enzyme systems, biosurfactant production, and mechanisms of adsorption and mineralization. The novelty of this review lies in consolidating the most recent mechanistic insights into fungal-driven depolymerization pathways, integrating them with advances in genetic engineering, bioprocess scale-up, and regulatory perspectives, areas rarely combined in previous reviews. We identify current limitations related to environmental applicability, enzyme accessibility, and the lack of standardized protocols, and propose strategies to overcome these challenges through enzyme immobilization, microbial consortia design, and synthetic biology approaches. By addressing these gaps, filamentous fungi may contribute to the development of sustainable strategies for plastic pollution mitigation and support circular economy approaches toward polymer biodegradation. Full article
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32 pages, 11583 KB  
Review
Ulvan in Agriculture: An Eco-Friendly Approach to Plant Disease Management
by Subhasini Sahoo, Debajyoti Saha, Pallavi Saxena, Anupam Kundu, Sasmita Das, Maheswari Behera, Ruchi Pathania and Lakshmi Singh
Phycology 2026, 6(2), 51; https://doi.org/10.3390/phycology6020051 - 11 May 2026
Cited by 1 | Viewed by 1059
Abstract
Plant pathogens can result in massive crop destruction globally, thereby increasing starvation, while conventional or synthetic pesticides are harmful to the environment and human health. The urgent need for sustainable and eco-friendly disease management strategies has driven interest in natural biocontrol agents. Ulva [...] Read more.
Plant pathogens can result in massive crop destruction globally, thereby increasing starvation, while conventional or synthetic pesticides are harmful to the environment and human health. The urgent need for sustainable and eco-friendly disease management strategies has driven interest in natural biocontrol agents. Ulva sp. produce a sulfated polysaccharide named ulvan, which serves as a multifunctional biostimulant with pronounced antibacterial, antiviral, and antifungal properties against a broad spectrum of phytopathogens. Its complex anionic structure plays a dual role by directly inhibiting pathogen growth through cell membrane disruption and biofilm suppression, while simultaneously inducing plant defense mechanisms through reactive oxygen species (ROS) signaling and activation of pathogenesis-related (PR) proteins. Recent advances in ulvan extraction, purification, structural analysis, and inhibitory mechanisms of phytopathogens are discussed in this review. Furthermore, the biodegradability and biocompatibility of ulvan highlight its potential applications beyond agriculture, including biomedical and sustainable biomaterial development. By comprehensively analyzing the bioactivity spectrum and mechanistic pathways of ulvan, this review proposes strategic approaches for integrating ulvan into environmentally friendly plant disease management systems, supporting its role in advancing a circular bioeconomy. Full article
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43 pages, 3453 KB  
Review
Polysaccharides: Nature’s Guardians of Freshness in Food Preservation
by Amanullah Sabir, Sadaqat Ali, Muhammad Zubair Khalid, Ashoka Shankarappa, V. J. Sangeetha, Samreen Ahsan, Anand Kumar, Kamran, Kit-Leong Cheong and Saiyi Zhong
Molecules 2026, 31(9), 1545; https://doi.org/10.3390/molecules31091545 - 6 May 2026
Cited by 3 | Viewed by 1351
Abstract
Polysaccharides are structurally diverse biopolymers composed of multiple monosaccharide units linked through glycosidic bonds. Their complexity, biodegradability, and functional versatility make them integral to biological systems as well as modern industrial application. Sourced from plants, fungi, marine organisms, animals, and microbes, these natural [...] Read more.
Polysaccharides are structurally diverse biopolymers composed of multiple monosaccharide units linked through glycosidic bonds. Their complexity, biodegradability, and functional versatility make them integral to biological systems as well as modern industrial application. Sourced from plants, fungi, marine organisms, animals, and microbes, these natural polymers exhibit a broad spectrum of bioactivities, including antioxidant, antimicrobial, immunomodulatory, and physicochemical protective functions. In the context of food preservation, polysaccharides have gained significant attention as sustainable alternatives to synthetic preservatives and conventional packaging materials. This review summarizes the classification and structural attributes of polysaccharides that influence their functional performance, particularly their ability to scavenge free radicals, inhibit foodborne pathogens, and form protective barrier systems. Special emphasis is placed on their use in edible films, coatings, and encapsulation systems that enhance the shelf life of fruits, vegetables, meats, dairy, beverages, and bakery products. Challenges related to stability, sensory impact, and regulatory compliance are also discussed. Overall, polysaccharides demonstrate substantial potential as eco-friendly, bioactive packaging agents and controlled-release carriers, contributing to safer, greener, and more sustainable food preservation technologies. Full article
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32 pages, 2930 KB  
Review
Review of the Phosphorylation of Lignocellulosic Fibers: Reaction Products, Characterization, and Potential Applications
by Lahbib Abenghal, Dan Belosinschi, Hamid Lamoudan, Aleksandra Mikhailidi and François Brouillette
Fibers 2026, 14(5), 50; https://doi.org/10.3390/fib14050050 - 27 Apr 2026
Cited by 2 | Viewed by 2214
Abstract
Natural fibers are among the most extensively exploited bio-based materials in industry due to their abundance, affordability, and biodegradability. However, their intrinsic properties often require improvement through chemical, mechanical, or enzymatic treatments to expand their applications. Phosphorylation is a highly effective chemical modification [...] Read more.
Natural fibers are among the most extensively exploited bio-based materials in industry due to their abundance, affordability, and biodegradability. However, their intrinsic properties often require improvement through chemical, mechanical, or enzymatic treatments to expand their applications. Phosphorylation is a highly effective chemical modification that enables the covalent grafting of phosphate groups onto the fiber backbone. These functionalities enhance hydrophilicity, anionic charge density, swelling capacity, and water uptake, while significantly improving flame-retardant performance. In addition, phosphorylation can reduce energy consumption and production costs in the manufacture of functionalized micro- and nanofibrillated fibers, as the increased swelling facilitates fibrillation. Consequently, phosphorylated fibers are suitable for water treatment, biomedical devices, construction materials, and other advanced materials. Dozens of reagents and various synthetic routes have been explored to perform this reaction, each producing materials with distinct properties. Phosphorus content remains the primary parameter used to assess modification efficiency. This literature review examines existing phosphorylation methods, including reagents, substrates, and characterization techniques, and discusses applications such as flame retardancy, thermal insulation, ion exchange, energy storage, electrodes, and battery recycling. It also briefly addresses key challenges, including limited hydroxyl accessibility, control of the degree of substitution, potential cellulose degradation, and scalability constraints. Full article
(This article belongs to the Collection Review Papers of Fibers)
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20 pages, 7267 KB  
Review
3D Printing for Pelvic Organ Prolapse Management: A Narrative Review of Emerging Applications
by Xinyi Wei, Xiaolong Wang, Xin Yang, Mingjing Qiao, Yannan Chen, Andre Hoerning, Xianhu Liu and Chenchen Ren
Bioengineering 2026, 13(5), 488; https://doi.org/10.3390/bioengineering13050488 - 23 Apr 2026
Viewed by 1336
Abstract
Pelvic organ prolapse (POP) is a common benign gynecological disorder that substantially affects quality of life, particularly in aging female populations. Current management strategies, including standardized vaginal pessaries and synthetic surgical meshes, are often limited by poor anatomical adaptability, mechanical mismatch with native [...] Read more.
Pelvic organ prolapse (POP) is a common benign gynecological disorder that substantially affects quality of life, particularly in aging female populations. Current management strategies, including standardized vaginal pessaries and synthetic surgical meshes, are often limited by poor anatomical adaptability, mechanical mismatch with native pelvic tissues, and long-term safety concerns. These limitations have driven increasing interest in personalized and biomechanically compatible therapeutic solutions. Three-dimensional (3D) printing, also known as additive manufacturing, has emerged as a promising bioengineering technology to address these unmet clinical needs. By enabling layer-by-layer fabrication directly from digital models, 3D printing allows for precise control over device geometry, mechanical properties, and material composition, facilitating patient-specific design. This narrative review summarizes recent progress in 3D printing for POP management across three major application domains: (i) next-generation meshes based on biodegradable polymers, elastomeric materials, natural biomaterials, and hydrogel systems; (ii) customized vaginal pessaries tailored to individual pelvic anatomy using imaging-assisted workflows; and (iii) imaging-based pelvic models and prototype devices for surgical planning, education, and exploratory assessment. Overall, existing studies demonstrate that 3D printing enables improved biomechanical compatibility, enhanced tissue integration, and multifunctional device design, including drug delivery capability. Although current evidence is largely pre-clinical or based on pilot studies, additive manufacturing holds strong potential to advance POP management toward safer, personalized, and functionally optimized clinical solutions. Full article
(This article belongs to the Collection 3D Bioprinting in Bioengineering)
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20 pages, 5863 KB  
Article
Feasibility Study of Fiber-Reinforced Dredged Reservoir Sediment for Landfill Cover Applications
by Rafika Lachache, Salim Kouloughli, Ana Bras and Halima Belhadad
Geotechnics 2026, 6(2), 32; https://doi.org/10.3390/geotechnics6020032 - 31 Mar 2026
Viewed by 1584
Abstract
Dredged reservoir sediments (DRS), generated in large volumes during dam desilting operations, pose significant stockpiling and land-use challenges in Mediterranean regions. Owing to their high fines content and moderate plasticity, these sediments present potential for reuse as compacted hydraulic barrier materials. This study [...] Read more.
Dredged reservoir sediments (DRS), generated in large volumes during dam desilting operations, pose significant stockpiling and land-use challenges in Mediterranean regions. Owing to their high fines content and moderate plasticity, these sediments present potential for reuse as compacted hydraulic barrier materials. This study evaluates the feasibility of using DRS as a liner material and, for the first time, provides a direct comparative assessment of natural (wheat straw fibers, WSF) and synthetic (polypropylene fibers, PPF) reinforcement within the same sediment matrix under liner-relevant conditions. Fiber contents of 0–0.9% (by dry mass) were investigated. Mechanical and consolidation behaviors were assessed using direct shear and oedometer tests. Fiber inclusion significantly improved shear strength, with an optimal response at 0.6%. At this dosage, PPF reduced the compression index by ~50%, while WSF provided moderate but consistent improvement. Estimated hydraulic conductivity increased slightly with fiber addition but remained within the range typically reported for compacted barrier materials. FTIR analysis indicated distinct reinforcement mechanisms, with lignocellulosic interactions for WSF and mechanical bridging for PPF. These results demonstrate that DRS can be effectively valorized as liner materials, while highlighting the contrasting performance of biodegradable and synthetic fibers, with 0.6% identified as a balance between mechanical efficiency and material sustainability. Full article
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37 pages, 2866 KB  
Review
Silk Fibroin for Biomedical Applications with Emphasis on Bioimaging, Biosensing and Regenerative Systems: A Review
by Snjezana Tomljenovic-Hanic and Asma Khalid
Molecules 2026, 31(7), 1142; https://doi.org/10.3390/molecules31071142 - 30 Mar 2026
Viewed by 1489
Abstract
Biomaterials are engineered to interact with biological systems for therapeutic or diagnostic purposes. Among them, natural biomaterials offer important advantages over many synthetic polymers, including intrinsic biocompatibility, non-toxicity and biodegradability. Silk fibroin, a fibrous protein derived mainly from Bombyx mori cocoons, has re-emerged [...] Read more.
Biomaterials are engineered to interact with biological systems for therapeutic or diagnostic purposes. Among them, natural biomaterials offer important advantages over many synthetic polymers, including intrinsic biocompatibility, non-toxicity and biodegradability. Silk fibroin, a fibrous protein derived mainly from Bombyx mori cocoons, has re-emerged as a particularly versatile platform because it combines favourable mechanical, thermal, electrical and optical properties with aqueous processing and tuneable degradation. In this review, we first summarise the key structural, physicochemical and functional properties of regenerated silk fibroin, including its mechanical behaviour, thermal stability, dielectric and piezoelectric response, optical transparency and low autofluorescence. We then describe how extraction and regeneration protocols are used to produce defined material formats—fibres and nanofibrous mats, porous 3D scaffolds and hydrogels, sub-micron particles, thin films and microstructured devices—and outline major functionalisation strategies, ranging from physical blending and encapsulation to covalent chemistry, genetic engineering of recombinant silk variants, and enzyme-mediated conjugation approaches. Building on this foundation, we critically examine biomedical applications of silk fibroin with a particular emphasis on (i) hybrid silk–fluorophore systems for bioimaging and biosensing (nanodiamonds, quantum dots and organic dyes), (ii) optical fibre, wearable and edible sensors for health and food monitoring, (iii) wound dressings and wound-sensing platforms, and (iv) tissue engineering scaffolds and drug-delivery depots. Finally, we discuss current limitations, including process variability, the trade-offs introduced by blending and cross-linking, and the challenges posed by non-degradable inorganic fillers and clinical translation. Together, these perspectives highlight silk fibroin’s potential and constraints as a multifunctional biomaterial for next-generation biomedical devices and theranostic systems. Full article
(This article belongs to the Special Issue Advances in Nanomaterials for Biomedical Applications, 2nd Edition)
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39 pages, 1821 KB  
Review
Hydrogel Development, Processing and Applications in Agriculture: A Review
by Carmen Mª. Granados-Carrera, Victor M. Perez-Puyana, Mercedes Jiménez-Rosado and Alberto Romero
Gels 2026, 12(3), 259; https://doi.org/10.3390/gels12030259 - 20 Mar 2026
Cited by 6 | Viewed by 4081
Abstract
Hydrogels have emerged as promising functional materials for improving water management and nutrient delivery in agriculture, particularly under conditions of increasing water scarcity and declining soil fertility. However, most commercially available superabsorbent hydrogels are based on petroleum-derived polymers, raising concerns regarding their persistence [...] Read more.
Hydrogels have emerged as promising functional materials for improving water management and nutrient delivery in agriculture, particularly under conditions of increasing water scarcity and declining soil fertility. However, most commercially available superabsorbent hydrogels are based on petroleum-derived polymers, raising concerns regarding their persistence in soils, potential microplastic formation and long-term environmental impact. In response, significant research efforts are being directed toward the development of biodegradable hydrogels derived from renewable biopolymers. This review provides a critical overview of recent advances in hydrogel systems designed for agricultural applications, with a particular focus on biopolymer-based materials. First, the current landscape of hydrogel technologies used as soil conditioners and controlled-release systems for agrochemicals is contextualized, highlighting the limitations of conventional synthetic hydrogels. Subsequently, the main classes of natural polymers explored for hydrogel fabrication, including polysaccharides (e.g., chitosan, alginate, cellulose and starch) and proteins (e.g., gelatin, keratin and soy protein), are analyzed in terms of raw material sources, gelation mechanisms and structure–property relationships. Their performance in key agricultural functions, such as water retention, controlled nutrient release, soil conditioning and enhancement of plant growth, is also discussed. Finally, the review identifies major challenges that currently hinder large-scale implementation, including mechanical stability, degradation behavior in complex soil environments, nutrient release control and economic scalability. By integrating recent progress and outlining emerging research directions, this work aims to support the rational design of next-generation biodegradable hydrogels capable of contributing to sustainable agriculture and circular bioeconomy strategies. Full article
(This article belongs to the Special Issue Innovative Gels: Structure, Properties, and Emerging Applications)
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24 pages, 18390 KB  
Article
Intelligent Biopolymer-Based Films for Food Quality Monitoring
by Diana-Ionela Dăescu, Diana-Maria Dreavă, Florina Stoica, Iulia Păușescu, Raluca Danciar, Gabriela Râpeanu, Anamaria Todea and Francisc Péter
Polymers 2026, 18(6), 694; https://doi.org/10.3390/polym18060694 - 12 Mar 2026
Viewed by 942
Abstract
pH-responsive indicator films for intelligent food packaging applications are based on the embedding of a natural or synthetic dye in a polymeric substrate, preferably biobased and biodegradable. Although natural colorants like anthocyanins were extensively investigated in this respect, nature-inspired synthetic flavylium compounds could [...] Read more.
pH-responsive indicator films for intelligent food packaging applications are based on the embedding of a natural or synthetic dye in a polymeric substrate, preferably biobased and biodegradable. Although natural colorants like anthocyanins were extensively investigated in this respect, nature-inspired synthetic flavylium compounds could represent an alternative based on their higher stability. In this work, five novel synthetic 4′-aminoflavylium derivatives with different substitution patterns in the benzopyrylium core (compounds 15) were synthesized and characterized. Polyvinyl alcohol (PVA), as well as chitosan–PVA and chitosan–starch blends, were used to prepare pH-responsive indicator films having inserted each of the synthesized flavylium dyes or a natural onion peel extract. The PVA films with compounds 1 and 3, and the PVA–chitosan film with compound 1, exhibited antioxidant activity, highlighting their potential for active packaging applications. All indicator films showed pH responsiveness in the range of 2 to 12 and were subsequently tested in contact with the packaging atmosphere or in direct contact with pork and fish meat, at different temperatures (4 °C, 20 °C, and 40 °C) for 24 h to assess their colorimetric response to progressive spoilage. Although the differences were small, the films with the 7-hydroxy-4′-aminoflavylium derivative exhibited the earliest and most intense color change during storage of meat, starting from direct contact at 4 °C for 24 h, being able to identify the initial stages of meat spoilage, while the performance of the dihydroxy-substituted derivative was attenuated by incorporation in polymer matrices. This behavior was comparable to that of onion peel extract, but the synthetic flavylium derivative was more stable. The results can provide new opportunities for intelligent food packaging applications using biopolymer indicator films with 4′-aminoflavylium derivatives. Full article
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